这是一篇来自已证抗体库的有关小鼠 Ly 6C的综述,是根据1258篇发表使用所有方法的文章归纳的。这综述旨在帮助来邦网的访客找到最适合Ly 6C 抗体。
Ly 6C 同义词: AA682074; AA959465; Ly-6C; Ly-6C1; Ly6c

其他
  • 流式细胞仪; 小鼠; 图 s4
Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s4). Sci Adv (2019) ncbi
Ly 6C抗体(BioLegend, RB6-8C5)被用于. J Exp Med (2017) ncbi
Ly 6C抗体(BioLegend, RB6-8C5)被用于. J Exp Med (2017) ncbi
Ly 6C抗体(BioLegend, RB6-8C5)被用于. Oncogene (2017) ncbi
BioLegend
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100
BioLegend Ly 6C抗体(Biolegend, 108415)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. Nat Commun (2022) ncbi
大鼠 单克隆(1A8)
  • 其他; 小鼠
BioLegend Ly 6C抗体(BioLegend, 127650)被用于被用于其他在小鼠样本上. elife (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6a, 6b, 6c, 6d
BioLegend Ly 6C抗体(BioLegend, 127617)被用于被用于流式细胞仪在小鼠样本上 (图 6a, 6b, 6c, 6d). Allergy Asthma Immunol Res (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 108457)被用于被用于流式细胞仪在小鼠样本上. Vaccine (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6c
BioLegend Ly 6C抗体(BioLegend, 127654)被用于被用于流式细胞仪在小鼠样本上 (图 6c). Vaccine (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s6a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s6a). Leukemia (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s6a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s6a). Leukemia (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(Biolegend, 127618)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. PLoS Biol (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s3
BioLegend Ly 6C抗体(BioLegend, 127639)被用于被用于流式细胞仪在小鼠样本上 (图 s3). J Clin Invest (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s3
BioLegend Ly 6C抗体(BioLegend, 108421)被用于被用于流式细胞仪在小鼠样本上 (图 s3). J Clin Invest (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5h
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 5h). NPJ Aging (2022) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 图 2d
BioLegend Ly 6C抗体(BioLegend, 127626)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 2d). Cell Rep (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 3a
BioLegend Ly 6C抗体(BioLegend, 128005)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 3a). Nat Commun (2022) ncbi
大鼠 单克隆(1A8)
  • 其他; 小鼠; 1:100; 图 s2c
BioLegend Ly 6C抗体(Biolegend, 127607)被用于被用于其他在小鼠样本上浓度为1:100 (图 s2c). Nat Commun (2022) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s3a
BioLegend Ly 6C抗体(BioLegend, 108112)被用于被用于流式细胞仪在小鼠样本上 (图 s3a). Immunohorizons (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s2c
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s2c). Front Immunol (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6g
BioLegend Ly 6C抗体(BioLegend, 127607)被用于被用于流式细胞仪在小鼠样本上 (图 6g). J Neuroinflammation (2022) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:500; 图 e2e
BioLegend Ly 6C抗体(BioLegend, 108121)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 e2e). Nat Cancer (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3e
BioLegend Ly 6C抗体(BioLegend, 127607)被用于被用于流式细胞仪在小鼠样本上 (图 3e). Clin Transl Med (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s2). J Immunother Cancer (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 3e
BioLegend Ly 6C抗体(BioLegend, 108443)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 3e). Cell Rep (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:150; 图 s10e
BioLegend Ly 6C抗体(BioLegend, 108422)被用于被用于流式细胞仪在小鼠样本上浓度为1:150 (图 s10e). Nat Commun (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:80; 图 s5a
BioLegend Ly 6C抗体(BioLegend, 127651)被用于被用于流式细胞仪在小鼠样本上浓度为1:80 (图 s5a). Nat Commun (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:40; 图 5g
BioLegend Ly 6C抗体(BioLegend, 128033)被用于被用于流式细胞仪在小鼠样本上浓度为1:40 (图 5g). Nat Commun (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:400; 图 3a
BioLegend Ly 6C抗体(Biolegend, 108430)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 3a). Nat Commun (2022) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:100; 图 3a, 3d, s8a
BioLegend Ly 6C抗体(Biolegend, 108114)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 3a, 3d, s8a). Nat Commun (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 7d
BioLegend Ly 6C抗体(BioLegend, 127651)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 7d). J Clin Invest (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:500; 图 7e
BioLegend Ly 6C抗体(BioLegend, 128033)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 7e). J Clin Invest (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3). In Vivo (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 2f, s2l
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 2f, s2l). PLoS Pathog (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:400; 图 s2f
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 s2f). PLoS Pathog (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2c, 2d
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2c, 2d). Proc Natl Acad Sci U S A (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Cells (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 s6c
BioLegend Ly 6C抗体(Biolegend, 108405)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s6c). J Immunother Cancer (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 e7b
BioLegend Ly 6C抗体(Biolegend, 127612)被用于被用于流式细胞仪在小鼠样本上 (图 e7b). Nat Immunol (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4a, 4c
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4a, 4c). Basic Res Cardiol (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2b). Basic Res Cardiol (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3b
BioLegend Ly 6C抗体(Biolegend, 127612)被用于被用于流式细胞仪在小鼠样本上 (图 3b). Adv Sci (Weinh) (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3b
BioLegend Ly 6C抗体(Biolegend, 128006)被用于被用于流式细胞仪在小鼠样本上 (图 3b). Adv Sci (Weinh) (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 6c, s10a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 6c, s10a). Cell Mol Life Sci (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6e
BioLegend Ly 6C抗体(BioLegend, 127622)被用于被用于流式细胞仪在小鼠样本上 (图 6e). J Immunol (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 6e
BioLegend Ly 6C抗体(BioLegend, 128035)被用于被用于流式细胞仪在小鼠样本上 (图 6e). J Immunol (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 5e
BioLegend Ly 6C抗体(Biolegend, 128012)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 5e). Brain Pathol (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s1g, s1h, s1i, s5f
BioLegend Ly 6C抗体(Biolegend, 128032)被用于被用于流式细胞仪在小鼠样本上 (图 s1g, s1h, s1i, s5f). J Exp Med (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1g, s1h, s1i, s5f
BioLegend Ly 6C抗体(Biolegend, 108412)被用于被用于流式细胞仪在小鼠样本上 (图 s1g, s1h, s1i, s5f). J Exp Med (2022) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s2f
BioLegend Ly 6C抗体(Biolegend, 108142)被用于被用于流式细胞仪在小鼠样本上 (图 s2f). J Exp Med (2022) ncbi
大鼠 单克隆(1A8)
  • 免疫印迹; 小鼠; 2 ug/ml; 图 1c
BioLegend Ly 6C抗体(Biolegend, 127,602)被用于被用于免疫印迹在小鼠样本上浓度为2 ug/ml (图 1c). Sci Rep (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 s13b
BioLegend Ly 6C抗体(Biolegend, 108443)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s13b). J Clin Invest (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s20b
BioLegend Ly 6C抗体(Biolegend, 108415)被用于被用于流式细胞仪在小鼠样本上 (图 s20b). Nat Commun (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 5b
BioLegend Ly 6C抗体(BioLegend, 128005)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 5b). elife (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:400; 图 5b
BioLegend Ly 6C抗体(Biolegend, 127610)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 5b). Eneuro (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6e
BioLegend Ly 6C抗体(BioLegend, 108437)被用于被用于流式细胞仪在小鼠样本上 (图 6e). J Immunother Cancer (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s4a
BioLegend Ly 6C抗体(BioLegend, RB68C5)被用于被用于流式细胞仪在小鼠样本上 (图 s4a). Gut Microbes (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 6e
BioLegend Ly 6C抗体(Biolegend, 127623)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 6e). Proc Natl Acad Sci U S A (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:150; 图 s2
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:150 (图 s2). PLoS Pathog (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(Biolegend, 127614)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). Cell Rep (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(Biolegend, 128023)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). Cell Rep (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s3a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s3a). Helicobacter (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3a, s3b, s3c
BioLegend Ly 6C抗体(BioLegend, 128017)被用于被用于流式细胞仪在小鼠样本上 (图 s3a, s3b, s3c). Signal Transduct Target Ther (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:500; 图 4d, s2c
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 4d, s2c). Immunol Cell Biol (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s5a
BioLegend Ly 6C抗体(Biolegend, 128017)被用于被用于流式细胞仪在小鼠样本上 (图 s5a). Nat Commun (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(Biolegend, 127608)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Nat Commun (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4b, 4f
BioLegend Ly 6C抗体(Biolegend, 108407)被用于被用于流式细胞仪在小鼠样本上 (图 4b, 4f). Nat Commun (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1e
BioLegend Ly 6C抗体(BioLegend, 127618)被用于被用于流式细胞仪在小鼠样本上 (图 1e). Int J Mol Sci (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:1000; 图 7
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 7). J Crohns Colitis (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2e
BioLegend Ly 6C抗体(BioLegend, 127604)被用于被用于流式细胞仪在小鼠样本上 (图 s2e). Sci Immunol (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:1000; 图 2d
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 2d). Mol Psychiatry (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 人类; 图 s3a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在人类样本上 (图 s3a). Front Immunol (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 人类; 图 s3a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在人类样本上 (图 s3a). Front Immunol (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, 127622)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). iScience (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, 128018)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). iScience (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:200; 图 5a
BioLegend Ly 6C抗体(Biolegend, 108105)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 5a). Int J Mol Sci (2021) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 图 2f
BioLegend Ly 6C抗体(Biolegend, 127614)被用于被用于免疫组化在小鼠样本上 (图 2f). Nat Commun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s5b
BioLegend Ly 6C抗体(Biolegend, 127618)被用于被用于流式细胞仪在小鼠样本上 (图 s5b). PLoS Pathog (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:400
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:400. J Immunother Cancer (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s1c
BioLegend Ly 6C抗体(Biolegend, 128017)被用于被用于流式细胞仪在小鼠样本上 (图 s1c). Cell Death Dis (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3c
BioLegend Ly 6C抗体(Biolegend, 127641)被用于被用于流式细胞仪在小鼠样本上 (图 3c). Cell Death Dis (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 s3b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s3b). Nat Commun (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:1500; 图 s2d
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:1500 (图 s2d). Sci Adv (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:1000; 图 s6g
BioLegend Ly 6C抗体(Biolegend, 127639)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 s6g). Nat Commun (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:1000; 图 s6g
BioLegend Ly 6C抗体(Biolegend, 128026)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 s6g). Nat Commun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6c
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 6c). Cells (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 6c
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 6c). Cells (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6c
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 6c). Cells (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. Antioxidants (Basel) (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2a, s1
BioLegend Ly 6C抗体(Biolegend, 127608)被用于被用于流式细胞仪在小鼠样本上 (图 2a, s1). Front Immunol (2021) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 s2a). Mediators Inflamm (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 5b, 5d
BioLegend Ly 6C抗体(Biolegend, Hk1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 5b, 5d). Nat Commun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:500; 图 5b, 5d
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 5b, 5d). Nat Commun (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:400; 图 1c
BioLegend Ly 6C抗体(Biolegend, 128018)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 1c). Nat Commun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 127633)被用于被用于流式细胞仪在小鼠样本上. Nat Commun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3). PLoS Pathog (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 5a). PLoS Pathog (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 5b, 5h
BioLegend Ly 6C抗体(Biolegend, 108426)被用于被用于流式细胞仪在小鼠样本上 (图 5b, 5h). J Immunother Cancer (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5b, 5h
BioLegend Ly 6C抗体(Biolegend, 127622)被用于被用于流式细胞仪在小鼠样本上 (图 5b, 5h). J Immunother Cancer (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5b, 5h
BioLegend Ly 6C抗体(Biolegend, 128028)被用于被用于流式细胞仪在小鼠样本上 (图 5b, 5h). J Immunother Cancer (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 图 3a
BioLegend Ly 6C抗体(BioLegend, 108402)被用于被用于免疫组化在小鼠样本上 (图 3a). Clin Transl Med (2021) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 1:200
BioLegend Ly 6C抗体(BioLegend, 127601)被用于被用于免疫组化在小鼠样本上浓度为1:200. J Pathol (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Front Immunol (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 s1
BioLegend Ly 6C抗体(Biolegend, 108404)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s1). Front Immunol (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Cancer Res (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Cancer Res (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Cancer Res (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Cancer Res (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 128002)被用于被用于流式细胞仪在小鼠样本上. Cancer Cell (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Front Immunol (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Front Immunol (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 5k
BioLegend Ly 6C抗体(BioLegend, 127616)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 5k). NPJ Breast Cancer (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 s6f
BioLegend Ly 6C抗体(Biolegend, 108405)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s6f). Clin Exp Metastasis (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 4a, s3a
BioLegend Ly 6C抗体(Biolegend, 128035)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 4a, s3a). Clin Exp Metastasis (2021) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 ds1c
BioLegend Ly 6C抗体(Biolegend, 122520)被用于被用于流式细胞仪在小鼠样本上 (图 ds1c). Cell Rep (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 ds1a
BioLegend Ly 6C抗体(Biolegend, 128024)被用于被用于流式细胞仪在小鼠样本上 (图 ds1a). Cell Rep (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(BioLegend, 128026)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Brain Behav Immun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(BioLegend, 127628)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Brain Behav Immun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(Biolegend, 127617)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. elife (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 128035)被用于被用于流式细胞仪在小鼠样本上. Int J Mol Sci (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Adv Sci (Weinh) (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6c
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 6c). BMC Cancer (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(Biolegend, 108115)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Nat Commun (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 s3c
BioLegend Ly 6C抗体(BioLegend, 128006)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s3c). Nat Commun (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(Biolegend, 108418)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Cell Death Dis (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3e
BioLegend Ly 6C抗体(BioLegend, 128012)被用于被用于流式细胞仪在小鼠样本上 (图 3e). Cell Death Dis (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 9e
BioLegend Ly 6C抗体(Biolegend, 127623)被用于被用于流式细胞仪在小鼠样本上 (图 9e). Nat Commun (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 9e
BioLegend Ly 6C抗体(Biolegend, 128005)被用于被用于流式细胞仪在小鼠样本上 (图 9e). Nat Commun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5a). Front Immunol (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2c
BioLegend Ly 6C抗体(Biolegend, 128035)被用于被用于流式细胞仪在小鼠样本上 (图 2c). Mol Cancer (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3i
BioLegend Ly 6C抗体(Biolegend, 127618)被用于被用于流式细胞仪在小鼠样本上 (图 3i). Mol Cancer (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:200; 图 s21
  • 免疫组化; 小鼠; 1:200; 图 2a
BioLegend Ly 6C抗体(BioLegend, 108131)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s21) 和 被用于免疫组化在小鼠样本上浓度为1:200 (图 2a). elife (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:400; 图 1s4a
BioLegend Ly 6C抗体(Biolegend, 127616)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 1s4a). elife (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1a). elife (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1a). elife (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 5d
BioLegend Ly 6C抗体(BioLegend, 127618)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 5d). Cell Prolif (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 8a
BioLegend Ly 6C抗体(BioLegend, 127614)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 8a). Microbiome (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1.5 ug/ml; 图 2a
BioLegend Ly 6C抗体(Biolegend, 128,016)被用于被用于流式细胞仪在小鼠样本上浓度为1.5 ug/ml (图 2a). Acta Neuropathol Commun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:400
BioLegend Ly 6C抗体(Biolegend, 127608)被用于被用于流式细胞仪在小鼠样本上浓度为1:400. Aging (Albany NY) (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5a
BioLegend Ly 6C抗体(BioLegend, 127613)被用于被用于流式细胞仪在小鼠样本上 (图 5a). PLoS Pathog (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. elife (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. elife (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1-1f
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s1-1f). elife (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 5m
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 5m). Aging Cell (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1c
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1c). Cell Mol Gastroenterol Hepatol (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1c
BioLegend Ly 6C抗体(BioLegend, 128006)被用于被用于流式细胞仪在小鼠样本上 (图 1c). Cell Mol Gastroenterol Hepatol (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 人类; 图 s14b
BioLegend Ly 6C抗体(BioLegend, 128018)被用于被用于流式细胞仪在人类样本上 (图 s14b). Commun Biol (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, 128025)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). PLoS ONE (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 127624)被用于被用于流式细胞仪在小鼠样本上. EMBO Mol Med (2021) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 1:250; 图 1e
BioLegend Ly 6C抗体(BioLegend, 122512)被用于被用于流式细胞仪在小鼠样本上浓度为1:250 (图 1e). Nat Commun (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 128012)被用于被用于流式细胞仪在小鼠样本上. Cell (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3a, s2b, s2c
BioLegend Ly 6C抗体(Biolegend, 128022)被用于被用于流式细胞仪在小鼠样本上 (图 3a, s2b, s2c). Proc Natl Acad Sci U S A (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3a, s2b, s2c
BioLegend Ly 6C抗体(Biolegend, 127624)被用于被用于流式细胞仪在小鼠样本上 (图 3a, s2b, s2c). Proc Natl Acad Sci U S A (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:500; 图 6a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 6a). Front Immunol (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 108406)被用于被用于流式细胞仪在小鼠样本上. Br J Cancer (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 人类; 1:250; 图 s9
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在人类样本上浓度为1:250 (图 s9). PLoS Pathog (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Front Med (Lausanne) (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6f
BioLegend Ly 6C抗体(Biolegend, 108,406)被用于被用于流式细胞仪在小鼠样本上 (图 6f). Am J Cancer Res (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 7c
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 7c). Leukemia (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(Biolegend, 108412)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Commun Biol (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100
BioLegend Ly 6C抗体(BioLegend, 127615)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. Nat Commun (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100
BioLegend Ly 6C抗体(BioLegend, 128018)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. Nat Commun (2021) ncbi
大鼠 单克隆(1A8)
  • mass cytometry; 小鼠; 图 s3
BioLegend Ly 6C抗体(Biolegend, 127637)被用于被用于mass cytometry在小鼠样本上 (图 s3). EMBO J (2021) ncbi
大鼠 单克隆(HK1.4)
  • mass cytometry; 小鼠; 图 s3
BioLegend Ly 6C抗体(Biolegend, 128039)被用于被用于mass cytometry在小鼠样本上 (图 s3). EMBO J (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 5b). JCI Insight (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5b
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5b). JCI Insight (2021) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 1:1000; 图 2
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于免疫组化在小鼠样本上浓度为1:1000 (图 2). NPJ Breast Cancer (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4f
BioLegend Ly 6C抗体(Biolegend, 128011)被用于被用于流式细胞仪在小鼠样本上 (图 4f). Cell Rep (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 108411)被用于被用于流式细胞仪在小鼠样本上. Cell Rep (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 3h, 4d
BioLegend Ly 6C抗体(BioLegend, 127604)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 3h, 4d). Transl Psychiatry (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 3h, 4d
BioLegend Ly 6C抗体(BioLegend, 128016)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 3h, 4d). Transl Psychiatry (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(Biolegend, 127605)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). JCI Insight (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Front Immunol (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 8a, 9a
BioLegend Ly 6C抗体(BioLegend, 127605)被用于被用于流式细胞仪在小鼠样本上 (图 8a, 9a). Cell Mol Gastroenterol Hepatol (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 11a
BioLegend Ly 6C抗体(BioLegend, 128016)被用于被用于流式细胞仪在小鼠样本上 (图 11a). Cell Mol Gastroenterol Hepatol (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:500; 图 s1b, s1c, s1d
  • 免疫组化; 小鼠; 1:500; 图 4d
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 s1b, s1c, s1d) 和 被用于免疫组化在小鼠样本上浓度为1:500 (图 4d). Sci Adv (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 s5a
BioLegend Ly 6C抗体(BioLegend, 108427)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s5a). Mol Metab (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1c, s4d
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s1c, s4d). J Immunother Cancer (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s1c, s4d
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s1c, s4d). J Immunother Cancer (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3a-c
BioLegend Ly 6C抗体(BioLegend, 128037)被用于被用于流式细胞仪在小鼠样本上 (图 3a-c). Sci Adv (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4b
BioLegend Ly 6C抗体(Biolegend, 108412)被用于被用于流式细胞仪在小鼠样本上 (图 4b). Front Immunol (2020) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 1:50; 图 8c
BioLegend Ly 6C抗体(Biolegend, 127609)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:50 (图 8c). Nat Commun (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 5d
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 5d). Front Immunol (2020) ncbi
大鼠 单克隆(1A8)
  • 抑制或激活实验; 小鼠; 图 4c
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于抑制或激活实验在小鼠样本上 (图 4c). Front Immunol (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4d, s16c
BioLegend Ly 6C抗体(Biolegend, 127622)被用于被用于流式细胞仪在小鼠样本上 (图 4d, s16c). Cancer Res (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4d, s16c
BioLegend Ly 6C抗体(Biolegend, 128033)被用于被用于流式细胞仪在小鼠样本上 (图 4d, s16c). Cancer Res (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 108406)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5
BioLegend Ly 6C抗体(BioLegend, 128012)被用于被用于流式细胞仪在小鼠样本上 (图 5). PLoS ONE (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5
BioLegend Ly 6C抗体(BioLegend, 127614)被用于被用于流式细胞仪在小鼠样本上 (图 5). PLoS ONE (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 1:200; 图 3a
BioLegend Ly 6C抗体(BioLegend, 108402)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:200 (图 3a). Front Physiol (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:300; 图 s9h
BioLegend Ly 6C抗体(BioLegend, 108445)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 s9h). Nature (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:300
BioLegend Ly 6C抗体(BioLegend, 127604)被用于被用于流式细胞仪在小鼠样本上浓度为1:300. Nature (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 4d
BioLegend Ly 6C抗体(BioLegend, 108127)被用于被用于流式细胞仪在小鼠样本上 (图 4d). Sci Adv (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4a, 4b, s4e
BioLegend Ly 6C抗体(Biolegend, 128015)被用于被用于流式细胞仪在小鼠样本上 (图 4a, 4b, s4e). Clin Cancer Res (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:250; 图 5g
BioLegend Ly 6C抗体(BioLegend, 108426)被用于被用于流式细胞仪在小鼠样本上浓度为1:250 (图 5g). Cancer Res (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:1000; 图 s3d
BioLegend Ly 6C抗体(BioLegend, 128006)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 s3d). Nat Commun (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). J Immunother Cancer (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). J Immunother Cancer (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:200; 图 3s1a
BioLegend Ly 6C抗体(BioLegend, 108124)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 3s1a). elife (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 e8c, e8d
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 e8c, e8d). Nat Neurosci (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 e8c, e8d
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 e8c, e8d). Nat Neurosci (2021) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 1b
BioLegend Ly 6C抗体(BioLegend, 127,601)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 1b). Int J Mol Sci (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s12
BioLegend Ly 6C抗体(Biolegend, 127643)被用于被用于流式细胞仪在小鼠样本上 (图 s12). Sci Rep (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s12
BioLegend Ly 6C抗体(Biolegend, 128018)被用于被用于流式细胞仪在小鼠样本上 (图 s12). Sci Rep (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4d, 5a, 5e
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4d, 5a, 5e). Sci Rep (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Sci Rep (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 s8a
BioLegend Ly 6C抗体(BioLegend, 128041)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s8a). Nature (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100
BioLegend Ly 6C抗体(BioLegend, 127608)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. Nature (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s7a, s7b, s7c
BioLegend Ly 6C抗体(Biolegend, 108129)被用于被用于流式细胞仪在小鼠样本上 (图 s7a, s7b, s7c). J Hematol Oncol (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 108405)被用于被用于流式细胞仪在小鼠样本上. J Hematol Oncol (2021) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 s5a, s5b, s5c
BioLegend Ly 6C抗体(Biolegend, 122513)被用于被用于流式细胞仪在小鼠样本上 (图 s5a, s5b, s5c). J Hematol Oncol (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1e
BioLegend Ly 6C抗体(Biolegend, 127645)被用于被用于流式细胞仪在小鼠样本上 (图 1e). J Hematol Oncol (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2a, s2a, s2b, s2k
BioLegend Ly 6C抗体(Biolegend, 127608)被用于被用于流式细胞仪在小鼠样本上 (图 2a, s2a, s2b, s2k). Nat Commun (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 108404)被用于被用于流式细胞仪在小鼠样本上. J Clin Invest (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Antioxidants (Basel) (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 3e
BioLegend Ly 6C抗体(Biolegend, 128005)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 3e). Front Immunol (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4k
BioLegend Ly 6C抗体(Biolegend, 108406)被用于被用于流式细胞仪在小鼠样本上 (图 4k). Nat Commun (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:250; 图 s8a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:250 (图 s8a). Nat Commun (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:250; 图 s8a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:250 (图 s8a). Nat Commun (2020) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 1:250
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于免疫组化在小鼠样本上浓度为1:250. MBio (2020) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(Biolegend, 108113)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Peerj (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 128016)被用于被用于流式细胞仪在小鼠样本上. Cell (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 127616)被用于被用于流式细胞仪在小鼠样本上. Cell (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:2000; 图 s1-1
BioLegend Ly 6C抗体(Bio-Legend, 108114)被用于被用于流式细胞仪在小鼠样本上浓度为1:2000 (图 s1-1). elife (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3d
BioLegend Ly 6C抗体(Biolegend, 128035)被用于被用于流式细胞仪在小鼠样本上 (图 s3d). Gastroenterology (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Front Immunol (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1d
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1d). Front Immunol (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 6
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 6). Invest Ophthalmol Vis Sci (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 6). Invest Ophthalmol Vis Sci (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 5a
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 5a). Invest Ophthalmol Vis Sci (2020) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 6e
BioLegend Ly 6C抗体(Biolegend, 108114)被用于被用于流式细胞仪在小鼠样本上 (图 6e). Cancer Sci (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. elife (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. elife (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Int J Mol Sci (2020) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 108120)被用于被用于流式细胞仪在小鼠样本上. Cell Res (2020) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 1:200; 图 5h
BioLegend Ly 6C抗体(Biolegend, 122512)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 5h). Thyroid (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s2d
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s2d). Proc Natl Acad Sci U S A (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1f
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1f). Proc Natl Acad Sci U S A (2020) ncbi
大鼠 单克隆(D7)
BioLegend Ly 6C抗体(BioLegend, 108128)被用于. Aging Cell (2020) ncbi
大鼠 单克隆(HK1.4)
BioLegend Ly 6C抗体(BioLegend, 128018)被用于. Aging Cell (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6d
BioLegend Ly 6C抗体(BioLegend, 127607)被用于被用于流式细胞仪在小鼠样本上 (图 6d). J Clin Invest (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2s1a
BioLegend Ly 6C抗体(Biolegend, 108412)被用于被用于流式细胞仪在小鼠样本上 (图 2s1a). elife (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s3a). Sci Adv (2020) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:50; 图 1e
BioLegend Ly 6C抗体(Biolegend, 108120)被用于被用于流式细胞仪在小鼠样本上浓度为1:50 (图 1e). Cell (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:300; 图 2s1b
BioLegend Ly 6C抗体(BioLegend, 127606)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 2s1b). elife (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 2b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 2b). elife (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Mucosal Immunol (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s3
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s3). Mucosal Immunol (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:800; 图 2s1a
BioLegend Ly 6C抗体(BioLegend, 127624)被用于被用于流式细胞仪在小鼠样本上浓度为1:800 (图 2s1a). elife (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 1a, 6a, 6s1a, 7s1a
BioLegend Ly 6C抗体(Biolegend, 108406)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 1a, 6a, 6s1a, 7s1a). elife (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 2d, 3s3c
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 2d, 3s3c). elife (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:800; 图 2d, 3s3c
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:800 (图 2d, 3s3c). elife (2020) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:100
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. J Allergy Clin Immunol (2021) ncbi
大鼠 单克隆(RB6-8C5)
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于. Nature (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 s5
BioLegend Ly 6C抗体(Biolegend, 128023)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s5). Nat Commun (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s5
BioLegend Ly 6C抗体(Biolegend, 127645)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s5). Nat Commun (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:300; 图 2s2b
BioLegend Ly 6C抗体(BioLegend, 127617)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 2s2b). elife (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:300; 图 2s2b
BioLegend Ly 6C抗体(BioLegend, 128010)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 2s2b). elife (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:300; 图 2s2a
BioLegend Ly 6C抗体(BioLegend, 108411)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 2s2a). elife (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 3i
BioLegend Ly 6C抗体(BioLegend, 108408)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 3i). elife (2020) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 1:1000; 图 2d
BioLegend Ly 6C抗体(Biolegend, 127602)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:1000 (图 2d). J Thromb Haemost (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4d
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4d). J Biol Chem (2020) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 4d
BioLegend Ly 6C抗体(Biolegend, E13-161.7)被用于被用于流式细胞仪在小鼠样本上 (图 4d). J Biol Chem (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Front Immunol (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s17
BioLegend Ly 6C抗体(BioLegend, 108419)被用于被用于流式细胞仪在小鼠样本上 (图 s17). Nat Commun (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:400; 图 1a, 1d, s2f
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 1a, 1d, s2f). Commun Biol (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s3d
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s3d). Commun Biol (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Biochem Biophys Rep (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2). Biochem Biophys Rep (2020) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 1:500; 图 6b
BioLegend Ly 6C抗体(Biolegend, 127601)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:500 (图 6b). Stem Cell Res Ther (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s1). BMC Immunol (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s1
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s1). BMC Immunol (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 s7a, s7b
  • 流式细胞仪; 小鼠; 图 s3e
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 s7a, s7b) 和 被用于流式细胞仪在小鼠样本上 (图 s3e). BMC Immunol (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1d
BioLegend Ly 6C抗体(Biolegend, 108401)被用于被用于流式细胞仪在小鼠样本上 (图 1d). Nature (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2c
BioLegend Ly 6C抗体(Biolegend, 128008)被用于被用于流式细胞仪在小鼠样本上 (图 2c). Nature (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2c
BioLegend Ly 6C抗体(Biolegend, 127606)被用于被用于流式细胞仪在小鼠样本上 (图 2c). Nature (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s4, 2
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s4, 2). PLoS Pathog (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. PLoS Pathog (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Aging Cell (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Aging Cell (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 3a
BioLegend Ly 6C抗体(BioLegend, 108448)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 3a). elife (2020) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 108108)被用于被用于流式细胞仪在小鼠样本上. Cell Prolif (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 2 ug/ml; 图 s3a, s3b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为2 ug/ml (图 s3a, s3b). Science (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 2 ug/ml; 图 s3a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为2 ug/ml (图 s3a). Science (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2c
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2c). J Virol (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4m
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4m). Sci Adv (2020) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:50; 图 2a
BioLegend Ly 6C抗体(BioLegend, 108111)被用于被用于流式细胞仪在小鼠样本上浓度为1:50 (图 2a). Stem Cell Res Ther (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:300; 图 1s4a
BioLegend Ly 6C抗体(Biolegend, 127622)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 1s4a). elife (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 1s4a
BioLegend Ly 6C抗体(Biolegend, 128030)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 1s4a). elife (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). Sci Rep (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s3a, s3b, s3c, s4a
BioLegend Ly 6C抗体(BioLegend, 108412)被用于被用于流式细胞仪在小鼠样本上 (图 s3a, s3b, s3c, s4a). Cancers (Basel) (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s10a, s10d
BioLegend Ly 6C抗体(BioLegend, 127622)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s10a, s10d). Nat Commun (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:400; 图 3g
BioLegend Ly 6C抗体(BioLegend, 128014)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 3g). Nat Commun (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1b
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s1b). Science (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s4e, s6a
BioLegend Ly 6C抗体(Biolegend, 108443)被用于被用于流式细胞仪在小鼠样本上 (图 s4e, s6a). Nat Commun (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 6s2
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 6s2). elife (2020) ncbi
大鼠 单克隆(HK1.4)
  • mass cytometry; 小鼠; 1:300; 图 s33c
BioLegend Ly 6C抗体(Biolegend, 128002)被用于被用于mass cytometry在小鼠样本上浓度为1:300 (图 s33c). Nat Commun (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1i
BioLegend Ly 6C抗体(BioLegend, 127616)被用于被用于流式细胞仪在小鼠样本上 (图 s1i). Cell Rep (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s16d
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s16d). Nat Commun (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 7b
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 7b). elife (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 s19b
BioLegend Ly 6C抗体(Biolegend, 108405)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s19b). Nat Commun (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1c
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1c). Acta Neuropathol Commun (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1c
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1c). Acta Neuropathol Commun (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Acta Neuropathol Commun (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1d
BioLegend Ly 6C抗体(BioLegend, 108404)被用于被用于流式细胞仪在小鼠样本上 (图 1d). Cell Rep (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3, 5
BioLegend Ly 6C抗体(BioLegend, 127601)被用于被用于流式细胞仪在小鼠样本上 (图 3, 5). JCI Insight (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s5b
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s5b). Sci Adv (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s4
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s4). Sci Adv (2019) ncbi
大鼠 单克隆(HK1.4)
  • mass cytometry; 小鼠; 0.75 ug/ml; 图 5d
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于mass cytometry在小鼠样本上浓度为0.75 ug/ml (图 5d). Science (2019) ncbi
大鼠 单克隆(1A8)
  • mass cytometry; 小鼠; 1.5 ug/ml; 图 5d
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于mass cytometry在小鼠样本上浓度为1.5 ug/ml (图 5d). Science (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2a, s3b, s7c
BioLegend Ly 6C抗体(Biolegend, 128033)被用于被用于流式细胞仪在小鼠样本上 (图 2a, s3b, s7c). Cell Rep (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:100; 图 e1b
BioLegend Ly 6C抗体(BioLegend, 108120)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 e1b). Nature (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 e1a, e3c
BioLegend Ly 6C抗体(BioLegend, 128033)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 e1a, e3c). Nature (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1g
BioLegend Ly 6C抗体(BioLegend, 127618)被用于被用于流式细胞仪在小鼠样本上 (图 1g). Sci Adv (2019) ncbi
大鼠 单克隆(E13-161.7)
  • 免疫组化-石蜡切片; 小鼠; 图 3c
BioLegend Ly 6C抗体(Biolegend, 122505)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 3c). Cell (2019) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 3c
BioLegend Ly 6C抗体(Biolegend, 127601)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 3c). Cell (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 0.1 ug/ml; 图 s1g
BioLegend Ly 6C抗体(BioLegend, 127617)被用于被用于流式细胞仪在小鼠样本上浓度为0.1 ug/ml (图 s1g). Sci Adv (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1c
BioLegend Ly 6C抗体(Biolegend, 127614)被用于被用于流式细胞仪在小鼠样本上 (图 1c). JCI Insight (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1c
BioLegend Ly 6C抗体(Biolegend, 128032)被用于被用于流式细胞仪在小鼠样本上 (图 1c). JCI Insight (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s1f
BioLegend Ly 6C抗体(Biolegend, 127654)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s1f). Nat Commun (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 s1f
BioLegend Ly 6C抗体(Biolegend, 128018)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s1f). Nat Commun (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:1000; 图 s2
BioLegend Ly 6C抗体(BioLegend, 128037)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 s2). Nature (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2a, 2b, 5b
BioLegend Ly 6C抗体(BioLegend, 108406)被用于被用于流式细胞仪在小鼠样本上 (图 2a, 2b, 5b). J Exp Med (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 e10a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 e10a). Nature (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s9b, s9c
BioLegend Ly 6C抗体(Biolegend, 128016)被用于被用于流式细胞仪在小鼠样本上 (图 s9b, s9c). J Clin Invest (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 8d
BioLegend Ly 6C抗体(Biolegend, 127633)被用于被用于流式细胞仪在小鼠样本上 (图 8d). J Clin Invest (2019) ncbi
大鼠 单克隆(E13-161.7)
  • 免疫组化-冰冻切片; 小鼠; 1:200; 图 2a
BioLegend Ly 6C抗体(Biolegend, 122516)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:200 (图 2a). Nat Metab (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 e6f
BioLegend Ly 6C抗体(Biolegend, 127625)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 e6f). Nature (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2s2a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2s2a). elife (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:200; 图 e3m
BioLegend Ly 6C抗体(BioLegend, 108102)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 e3m). Nature (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 e10
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 e10). Nature (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:500
BioLegend Ly 6C抗体(Biolegend, 127601)被用于被用于流式细胞仪在小鼠样本上浓度为1:500. Cell Stem Cell (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 4d
BioLegend Ly 6C抗体(Biolegend, 127624)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 4d). Nat Commun (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:150; 图 e7b
BioLegend Ly 6C抗体(Biolegend, 127652)被用于被用于流式细胞仪在小鼠样本上浓度为1:150 (图 e7b). Nature (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:200; 图 4i
BioLegend Ly 6C抗体(Biolegend, 108111)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 4i). Nature (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1c
BioLegend Ly 6C抗体(BioLegend, 127637)被用于被用于流式细胞仪在小鼠样本上 (图 s1c). Cell (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s1c
BioLegend Ly 6C抗体(BioLegend, 128039)被用于被用于流式细胞仪在小鼠样本上 (图 s1c). Cell (2019) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(Biolegend, 122514)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Cell (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 e6a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 e6a). Nature (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 e6a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 e6a). Nature (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3c
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3c). elife (2019) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 1:200; 图 2i
BioLegend Ly 6C抗体(BioLegend, 127610)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:200 (图 2i). Nature (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:400; 图 ex3a
BioLegend Ly 6C抗体(BioLegend, 128022)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 ex3a). Nature (2019) ncbi
大鼠 单克隆(1A8)
  • mass cytometry; 小鼠; 图 3, s2
BioLegend Ly 6C抗体(Biolegend, 127637)被用于被用于mass cytometry在小鼠样本上 (图 3, s2). Science (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s3a
BioLegend Ly 6C抗体(Biolegend, 108420)被用于被用于流式细胞仪在小鼠样本上 (图 s3a). Cell (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 3c
BioLegend Ly 6C抗体(BioLegend, 108412)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 3c). Nat Commun (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(BioLegend, 127608)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). PLoS Pathog (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(BioLegend, 128016)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). PLoS Pathog (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1b
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1b). JCI Insight (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2o
BioLegend Ly 6C抗体(Biolegend, 127606)被用于被用于流式细胞仪在小鼠样本上 (图 s2o). JCI Insight (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s4b
BioLegend Ly 6C抗体(Biolegend, 108112)被用于被用于流式细胞仪在小鼠样本上 (图 s4b). Cell Rep (2019) ncbi
大鼠 单克隆(E13-161.7)
  • 免疫组化; 小鼠; 图 3m
BioLegend Ly 6C抗体(Biolegend, 122502)被用于被用于免疫组化在小鼠样本上 (图 3m). Cell Stem Cell (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2e
BioLegend Ly 6C抗体(Biolegend, 108424)被用于被用于流式细胞仪在小鼠样本上 (图 s2e). Cell (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 其他; 小鼠; 图 2b
BioLegend Ly 6C抗体(BioLegend, 108408)被用于被用于其他在小鼠样本上 (图 2b). Int Immunol (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 7h
BioLegend Ly 6C抗体(BioLegend, 127618)被用于被用于流式细胞仪在小鼠样本上 (图 7h). Immunity (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1d
BioLegend Ly 6C抗体(BioLegend, HK 1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1d). elife (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:150; 图 s3d
BioLegend Ly 6C抗体(Biolegend, 128018)被用于被用于流式细胞仪在小鼠样本上浓度为1:150 (图 s3d). Nat Commun (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s3d
BioLegend Ly 6C抗体(Biolegend, 127622)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s3d). Nat Commun (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 7a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 7a). J Clin Invest (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:100; 图 e4b
BioLegend Ly 6C抗体(Biolegend, 108105)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 e4b). Nature (2019) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 1:700; 图 e1b, e2f
BioLegend Ly 6C抗体(BioLegend, 122508)被用于被用于流式细胞仪在小鼠样本上浓度为1:700 (图 e1b, e2f). Nature (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s7c
BioLegend Ly 6C抗体(Biolegend, 108431)被用于被用于流式细胞仪在小鼠样本上 (图 s7c). Cell (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1l
BioLegend Ly 6C抗体(Biolegend, 108127)被用于被用于流式细胞仪在小鼠样本上 (图 s1l). Cell (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. Nature (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Nature (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 e7f
BioLegend Ly 6C抗体(Biolegend, 127623)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 e7f). Nat Med (2019) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 图 1a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 1a). elife (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 s3b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s3b). J Clin Invest (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 4b
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 4b). J Clin Invest (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3b
BioLegend Ly 6C抗体(Biolegend, 127618)被用于被用于流式细胞仪在小鼠样本上 (图 3b). Cell (2019) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 1.25 ug/ml; 图 3b
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1.25 ug/ml (图 3b). Stroke (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 e8a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 e8a). Nature (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 e8a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 e8a). Nature (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 4g
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 4g). Nature (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 s2d
BioLegend Ly 6C抗体(Biolegend, 108408)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s2d). Nat Commun (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:100; 图 s1a
BioLegend Ly 6C抗体(Biolegend, 108108)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s1a). Nat Commun (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. elife (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫细胞化学; 小鼠; 图 s1f
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于免疫细胞化学在小鼠样本上 (图 s1f). Cell (2019) ncbi
大鼠 单克隆(1A8)
  • 免疫细胞化学; 小鼠; 图 s1d
BioLegend Ly 6C抗体(BioLegend, 127605)被用于被用于免疫细胞化学在小鼠样本上 (图 s1d). Cell (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1e
BioLegend Ly 6C抗体(Biolegend, 128037)被用于被用于流式细胞仪在小鼠样本上 (图 1e). Cell (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(BioLegend, 127614)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). Immunity (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1 ug/ml; 图 s12
BioLegend Ly 6C抗体(BioLegend, 108416)被用于被用于流式细胞仪在小鼠样本上浓度为1 ug/ml (图 s12). Science (2019) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 e5c
  • 流式细胞仪; 小鼠; 图 e5b
BioLegend Ly 6C抗体(Biolegend, 127602)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 e5c) 和 被用于流式细胞仪在小鼠样本上 (图 e5b). Nature (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 图 1d
BioLegend Ly 6C抗体(BioLegend, 108401)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 1d). Cancer Cell (2019) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 3i
BioLegend Ly 6C抗体(Biolegend, 127602)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 3i). Nat Commun (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 人类; 1:100; 图 11a
BioLegend Ly 6C抗体(BioLegend, 127624)被用于被用于流式细胞仪在人类样本上浓度为1:100 (图 11a). Nat Commun (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1f
BioLegend Ly 6C抗体(Biolegend, 108106)被用于被用于流式细胞仪在小鼠样本上 (图 1f). EMBO J (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1a, s2
BioLegend Ly 6C抗体(BioLegend, 108410)被用于被用于流式细胞仪在小鼠样本上 (图 1a, s2). Antioxid Redox Signal (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1a, s9
BioLegend Ly 6C抗体(BioLegend, 108119)被用于被用于流式细胞仪在小鼠样本上 (图 1a, s9). Antioxid Redox Signal (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(Biolegend, 108114)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Cell Rep (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6c
BioLegend Ly 6C抗体(Biolegend, 127625)被用于被用于流式细胞仪在小鼠样本上 (图 6c). Cell (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 6c
BioLegend Ly 6C抗体(Biolegend, 128015)被用于被用于流式细胞仪在小鼠样本上 (图 6c). Cell (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:700; 图 ex2a
BioLegend Ly 6C抗体(BioLegend, 128006)被用于被用于流式细胞仪在小鼠样本上浓度为1:700 (图 ex2a). Nature (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:700; 图 ex2a
BioLegend Ly 6C抗体(BioLegend, 127614)被用于被用于流式细胞仪在小鼠样本上浓度为1:700 (图 ex2a). Nature (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:700; 图 ex3a
BioLegend Ly 6C抗体(BioLegend, 108126)被用于被用于流式细胞仪在小鼠样本上浓度为1:700 (图 ex3a). Nature (2019) ncbi
大鼠 单克隆(D7)
  • 免疫细胞化学; 小鼠; 图 ev3a
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于免疫细胞化学在小鼠样本上 (图 ev3a). EMBO J (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:250; 图 s9
BioLegend Ly 6C抗体(BioLegend, 128006)被用于被用于流式细胞仪在小鼠样本上浓度为1:250 (图 s9). Nat Commun (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:250; 图 s9
BioLegend Ly 6C抗体(BioLegend, 127614)被用于被用于流式细胞仪在小鼠样本上浓度为1:250 (图 s9). Nat Commun (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:500; 图 e2d
BioLegend Ly 6C抗体(Biolegend, 128005)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 e2d). Nature (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). J Exp Med (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Blood (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Blood (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6a
BioLegend Ly 6C抗体(Biolegend, 127622)被用于被用于流式细胞仪在小鼠样本上 (图 6a). Cell (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s6a
BioLegend Ly 6C抗体(Biolegend, 128014)被用于被用于流式细胞仪在小鼠样本上 (图 s6a). Cell (2019) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(BioLegend, 122508)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). Cell (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 6s2
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 6s2). elife (2019) ncbi
大鼠 单克隆(HK1.4)
BioLegend Ly 6C抗体(Biolegend, 128028)被用于. Cell (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1c
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1c). J Immunol (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 5c
BioLegend Ly 6C抗体(Biolegend, 128035)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 5c). Nat Cell Biol (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 5c
BioLegend Ly 6C抗体(Biolegend, 12761)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 5c). Nat Cell Biol (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Glia (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 4d
BioLegend Ly 6C抗体(Biolegend, 127608)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 4d). Neurochem Int (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s5f
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s5f). Science (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 e1b
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 e1b). Nature (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s3c
BioLegend Ly 6C抗体(biolegend, 108126)被用于被用于流式细胞仪在小鼠样本上 (图 s3c). Cell Rep (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s20b
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s20b). Nat Commun (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2c
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2c). Nature (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s1). Proc Natl Acad Sci U S A (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2f, s2e
BioLegend Ly 6C抗体(Biolegend, 127612)被用于被用于流式细胞仪在小鼠样本上 (图 2f, s2e). Cell Rep (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2f, s2e
BioLegend Ly 6C抗体(Biolegend, 128015)被用于被用于流式细胞仪在小鼠样本上 (图 2f, s2e). Cell Rep (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1d
BioLegend Ly 6C抗体(BioLegend, 108126)被用于被用于流式细胞仪在小鼠样本上 (图 1d). Cell Stem Cell (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1b
BioLegend Ly 6C抗体(BioLegend, 127606)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Cell Stem Cell (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 4a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 4a). Nat Commun (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 s13k
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s13k). Nat Commun (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s8a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s8a). JCI Insight (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s8a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s8a). JCI Insight (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:300; 图 3e, 3h
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 3e, 3h). Front Immunol (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 3e, 3h
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 3e, 3h). Front Immunol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). PLoS ONE (2018) ncbi
大鼠 单克隆(HK1.4)
  • 免疫组化-冰冻切片; 小鼠; 图 4d
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 4d). J Clin Invest (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Nat Commun (2018) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 1b
BioLegend Ly 6C抗体(eBiosciences, E13-161.7)被用于被用于流式细胞仪在小鼠样本上 (图 1b). EMBO J (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5p
BioLegend Ly 6C抗体(Biolegend, 128028)被用于被用于流式细胞仪在小鼠样本上 (图 5p). Cell Rep (2018) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 图 s2a
BioLegend Ly 6C抗体(Biolegend, 127601)被用于被用于免疫组化在小鼠样本上 (图 s2a). Sci Rep (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3b
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3b). J Clin Invest (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3d
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3d). J Clin Invest (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3d
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 3d). J Clin Invest (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1d
BioLegend Ly 6C抗体(BioLegend, 127624)被用于被用于流式细胞仪在小鼠样本上 (图 1d). J Exp Med (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1d
BioLegend Ly 6C抗体(BioLegend, 128032)被用于被用于流式细胞仪在小鼠样本上 (图 1d). J Exp Med (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Front Immunol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5d
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 5d). Front Immunol (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s6b
BioLegend Ly 6C抗体(BioLegend, 108412)被用于被用于流式细胞仪在小鼠样本上 (图 s6b). Immunity (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4c
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4c). J Neuroinflammation (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 2.5 ug/ml; 图 s4
BioLegend Ly 6C抗体(Biolegend, 128011)被用于被用于流式细胞仪在小鼠样本上浓度为2.5 ug/ml (图 s4). Nat Commun (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2c
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 2c). Sci Rep (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2a). J Exp Med (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 人类; 图 s1a
BioLegend Ly 6C抗体(Biolegend, 128030)被用于被用于流式细胞仪在人类样本上 (图 s1a). Immunity (2018) ncbi
大鼠 单克隆(E13-161.7)
  • 免疫组化-冰冻切片; 小鼠; 图 2a
BioLegend Ly 6C抗体(Biolegend, e13-161.7)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 2a). Nature (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2d
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 2d). Nature (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s4a
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s4a). Nature (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5b
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5b). J Neurosci (2018) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(BioLegend, E13-161.7)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Exp Med (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 3d
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 3d). J Cell Biol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4b
BioLegend Ly 6C抗体(Biolegend, 128032)被用于被用于流式细胞仪在小鼠样本上 (图 4b). J Clin Invest (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4b
BioLegend Ly 6C抗体(Biolegend, 127608)被用于被用于流式细胞仪在小鼠样本上 (图 4b). J Clin Invest (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(Biolegend, 108408)被用于被用于流式细胞仪在小鼠样本上 (图 2a). J Clin Invest (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s3b
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s3b). J Immunol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s3b). J Immunol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2c
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2c). J Clin Invest (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2c
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2c). J Clin Invest (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:1000; 图 s3e
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 s3e). Circulation (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:1000; 图 s3e
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 s3e). Circulation (2018) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(BioLegend, 122505)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). EBioMedicine (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s2a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s2a). J Exp Med (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 4d
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 4d). J Immunol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1s3a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1s3a). elife (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1s1a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1s1a). elife (2018) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, 122520)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Nat Genet (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1b
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Oncoimmunology (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(BioLegend, 128012)被用于被用于流式细胞仪在小鼠样本上 (图 2a). PLoS Pathog (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(BioLegend, 127608)被用于被用于流式细胞仪在小鼠样本上 (图 2a). PLoS Pathog (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s5
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s5). Eur J Immunol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 s1a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s1a). Exp Mol Med (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s1a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s1a). Exp Mol Med (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s11
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s11). Oncoimmunology (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(Biolegend, 108113)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). Cell (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:300; 图 s3a
BioLegend Ly 6C抗体(BioLegend, 127622)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 s3a). PLoS Biol (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2c
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s2c). PLoS ONE (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 1:50; 图 2b
BioLegend Ly 6C抗体(BioLegend, 108402)被用于被用于免疫组化在小鼠样本上浓度为1:50 (图 2b). J Immunol Res (2018) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 1:50; 图 4b
BioLegend Ly 6C抗体(BioLegend, 127605)被用于被用于免疫组化在小鼠样本上浓度为1:50 (图 4b). J Immunol Res (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 7s1a
BioLegend Ly 6C抗体(BioLegend, 127645)被用于被用于流式细胞仪在小鼠样本上 (图 7s1a). elife (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 1b
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 1b). Oncotarget (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 1b
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 1b). Oncotarget (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 1b
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 1b). Oncotarget (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2b
BioLegend Ly 6C抗体(BioLegend, IA8)被用于被用于流式细胞仪在小鼠样本上 (图 s2b). Cell Metab (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s1c
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s1c). Proc Natl Acad Sci U S A (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Proc Natl Acad Sci U S A (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Mucosal Immunol (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s1). Front Microbiol (2018) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 4b
BioLegend Ly 6C抗体(Biolegend, 127601)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 4b). Int J Cancer (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 s4a
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s4a). Front Immunol (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:300; 图 6e
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 6e). Nat Commun (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s3b
BioLegend Ly 6C抗体(BioLegend, 1A85)被用于被用于流式细胞仪在小鼠样本上 (图 s3b). J Immunol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s3b). J Immunol (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(Biolegend, 1A-8)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Infect Immun (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Infect Immun (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:600; 图 1a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:600 (图 1a). Nat Commun (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1c
  • 免疫组化; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1c) 和 被用于免疫组化在小鼠样本上. Proc Natl Acad Sci U S A (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1d
BioLegend Ly 6C抗体(BioLegend, 127606)被用于被用于流式细胞仪在小鼠样本上 (图 1d). Nature (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1d
BioLegend Ly 6C抗体(BioLegend, 128024)被用于被用于流式细胞仪在小鼠样本上 (图 1d). Nature (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:20; 图 3c
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:20 (图 3c). Mol Pain (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 1:500; 图 3i
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于免疫组化在小鼠样本上浓度为1:500 (图 3i). Mol Pain (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Exp Med (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 s5e
BioLegend Ly 6C抗体(BioLegend, 108424)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s5e). J Clin Invest (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2c
BioLegend Ly 6C抗体(BioLegend, 128037)被用于被用于流式细胞仪在小鼠样本上 (图 2c). Cell (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2b
BioLegend Ly 6C抗体(BioLegend, 128015)被用于被用于流式细胞仪在小鼠样本上 (图 2b). Cell (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2b
BioLegend Ly 6C抗体(BioLegend, 127605)被用于被用于流式细胞仪在小鼠样本上 (图 2b). Cell (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s2d
BioLegend Ly 6C抗体(BioLegend, 108120)被用于被用于流式细胞仪在小鼠样本上 (图 s2d). Cell (2018) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(BioLegend, 122514)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Cell (2018) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(Biolegend, El3-161.7)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Cell Res (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4e
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4e). Nat Commun (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Nat Commun (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 5a
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 5a). Exp Hematol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3c
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 3c). J Immunol (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, 108111)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Cancer Cell (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1d
BioLegend Ly 6C抗体(BioLegend, 108407)被用于被用于流式细胞仪在小鼠样本上 (图 1d). Cancer Cell (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 5h, 5i
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 5h, 5i). J Immunol (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Infect Immun (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Infect Immun (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1e
BioLegend Ly 6C抗体(Biolegend, 108109)被用于被用于流式细胞仪在小鼠样本上 (图 1e). Cell Stem Cell (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s7g
BioLegend Ly 6C抗体(BioLegend, 108120)被用于被用于流式细胞仪在小鼠样本上 (图 s7g). Cell (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s5a
BioLegend Ly 6C抗体(BioLegend, 108430)被用于被用于流式细胞仪在小鼠样本上 (图 s5a). Cell (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 5a). J Lipid Res (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3a
BioLegend Ly 6C抗体(Biolegend, Hk1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s3a). Science (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4f
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4f). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4f
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4f). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2). Exp Neurol (2018) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 图 4c
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于免疫组化在小鼠样本上 (图 4c). Science (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 s1d
BioLegend Ly 6C抗体(BioLegend, 108430)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s1d). Leukemia (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:20; 图 s1d
BioLegend Ly 6C抗体(BioLegend, 108134)被用于被用于流式细胞仪在小鼠样本上浓度为1:20 (图 s1d). Leukemia (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s4e
BioLegend Ly 6C抗体(BioLegend, 108116)被用于被用于流式细胞仪在小鼠样本上 (图 s4e). J Clin Invest (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3
BioLegend Ly 6C抗体(BioLegend, 127602)被用于被用于流式细胞仪在小鼠样本上 (图 3). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2b
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2b). Science (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Diabetologia (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. Diabetologia (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s6a
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s6a). Cancer Res (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Cancer Res (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Cancer Res (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 s2d
BioLegend Ly 6C抗体(BioLegend, 127612)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s2d). J Endocrinol (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3b
BioLegend Ly 6C抗体(BioLegend, 127623)被用于被用于流式细胞仪在小鼠样本上 (图 3b). Immunity (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3b
BioLegend Ly 6C抗体(BioLegend, 128006)被用于被用于流式细胞仪在小鼠样本上 (图 3b). Immunity (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 st1
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 st1). Nature (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2b
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2b). Nature (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1e
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s1e). Nature (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 s5
BioLegend Ly 6C抗体(BioLegend, 127613)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s5). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 表 s1
BioLegend Ly 6C抗体(BioLegend, 108120)被用于被用于流式细胞仪在小鼠样本上 (表 s1). J Clin Invest (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s2b
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s2b). J Clin Invest (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s6a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s6a). Cell Mol Immunol (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s6a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s6a). Cell Mol Immunol (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2d
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2d). Cell Mol Immunol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Science (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Science (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3e
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3e). Science (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Exp Med (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(Biolegend, 127624)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Nature (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5a). J Exp Med (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6c
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 6c). J Clin Invest (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5b
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5b). J Clin Invest (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s3c
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s3c). J Clin Invest (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1f
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1f). J Exp Med (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 st1a
BioLegend Ly 6C抗体(BioLegend, 108424)被用于被用于流式细胞仪在小鼠样本上 (图 st1a). Nature (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2b
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2b). J Exp Med (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3a). J Clin Invest (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1b
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Nat Med (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 7a
BioLegend Ly 6C抗体(biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 7a). J Exp Med (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 7a
BioLegend Ly 6C抗体(biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 7a). J Exp Med (2017) ncbi
大鼠 单克隆(1A8)
  • 其他; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于其他在小鼠样本上 (图 s2a). J Clin Invest (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1a
BioLegend Ly 6C抗体(BioLegend, 108120)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). Nature (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 s2d
BioLegend Ly 6C抗体(BioLegend, 108418)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 s2d). Nature (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 108405)被用于被用于流式细胞仪在小鼠样本上. Oncogene (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:300; 图 5d
BioLegend Ly 6C抗体(BioLegend, 128012)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 5d). Nat Commun (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 1:200; 图 4g
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:200 (图 4g). Nat Commun (2017) ncbi
大鼠 单克隆(HK1.4)
  • 免疫组化-冰冻切片; 小鼠; 1:200; 图 6d
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:200 (图 6d). Nat Commun (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Exp Med (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 3g, 4a, s8a
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 3g, 4a, s8a). Nature (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 图 s6b
BioLegend Ly 6C抗体(BioLegend, 108401)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 s6b). Nature (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s3a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s3a). Nat Commun (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1b
BioLegend Ly 6C抗体(Biolegend, 1a8)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1g
BioLegend Ly 6C抗体(BioLegend, 108120)被用于被用于流式细胞仪在小鼠样本上 (图 s1g). Nature (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 4a). J Exp Med (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 表 2
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (表 2). Methods Mol Biol (2017) ncbi
大鼠 单克隆(RB6-8C5)
BioLegend Ly 6C抗体(BioLegend, 108416)被用于. Mol Cell (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5). Sci Rep (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 表 2
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (表 2). Sci Rep (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:3000; 图 2b
BioLegend Ly 6C抗体(BioLegend, 128017)被用于被用于流式细胞仪在小鼠样本上浓度为1:3000 (图 2b). J Immunol (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:2000; 图 2b
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:2000 (图 2b). J Immunol (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3c
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 3c). Nat Commun (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 2p
BioLegend Ly 6C抗体(BioLegend, 128033)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 2p). J Neurosci (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 2o
BioLegend Ly 6C抗体(BioLegend, 127615)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 2o). J Neurosci (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3). Eur J Immunol (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s3
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Invest Ophthalmol Vis Sci (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1b
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Sci Rep (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1b
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Sci Rep (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2c
BioLegend Ly 6C抗体(biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2c). Leuk Res (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4b
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4b). JCI Insight (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4a). JCI Insight (2017) ncbi
大鼠 单克隆(E13-161.7)
BioLegend Ly 6C抗体(BioLegend, 122520)被用于. PLoS ONE (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4b
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4b). Mediators Inflamm (2016) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, E13-161.7)被用于被用于流式细胞仪在小鼠样本上. Nature (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3i
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 3i). PLoS ONE (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3h
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3h). PLoS ONE (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 3b
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 3b). Nat Commun (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 1:200; 图 s4
BioLegend Ly 6C抗体(BioLegend, 108401)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:200 (图 s4). Mol Cancer Res (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上. Oncotarget (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:160; 图 5e
BioLegend Ly 6C抗体(Biolegend, 108408)被用于被用于流式细胞仪在小鼠样本上浓度为1:160 (图 5e). Nat Commun (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 图 1d
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 1d). Cancer Sci (2017) ncbi
大鼠 单克隆(1A8)
  • 其他; 小鼠; 图 3a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于其他在小鼠样本上 (图 3a). Cancer Sci (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:300; 图 s3c
BioLegend Ly 6C抗体(BioLegend, 108426)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 s3c). Nature (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s3a
BioLegend Ly 6C抗体(BioLegend, 108418)被用于被用于流式细胞仪在小鼠样本上 (图 s3a). Nat Med (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s5
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s5). PLoS ONE (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 1:200; 图 s8b
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:200 (图 s8b). J Clin Invest (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s1a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s1a). J Clin Invest (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 s1a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s1a). J Clin Invest (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 7e
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 7e). J Exp Med (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 5a
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 5a). Am J Physiol Lung Cell Mol Physiol (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, RB6-8CJ)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). PLoS Pathog (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1b
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1b). PLoS Pathog (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1b). PLoS Pathog (2016) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, E13-161.7)被用于被用于流式细胞仪在小鼠样本上. J Leukoc Biol (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:25; 图 s8
BioLegend Ly 6C抗体(BioLegend, 128003)被用于被用于流式细胞仪在小鼠样本上浓度为1:25 (图 s8). Nat Commun (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3d
BioLegend Ly 6C抗体(BioLegend, RB-6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3d). Cancer Res (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1G
BioLegend Ly 6C抗体(Biolegend, 108412)被用于被用于流式细胞仪在小鼠样本上 (图 1G). Cell (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1G
BioLegend Ly 6C抗体(Biolegend, 108114)被用于被用于流式细胞仪在小鼠样本上 (图 1G). Cell (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5c
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 5c). J Exp Med (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s2b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s2b). Nature (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 1:15,000; 图 st1
BioLegend Ly 6C抗体(Biolegend, 127611)被用于被用于免疫组化在小鼠样本上浓度为1:15,000 (图 st1). Sci Rep (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 3a
BioLegend Ly 6C抗体(BioLegend, 128018)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 3a). Nat Commun (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s5b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s5b). Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4b
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4b). Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. J Virol (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. J Virol (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Infect Immun (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s2
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s2). Oncotarget (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 人类; 图 5
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在人类样本上 (图 5). Nature (2016) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 人类; 图 5
BioLegend Ly 6C抗体(BioLegend, E13-161.7)被用于被用于流式细胞仪在人类样本上 (图 5). Nature (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 127624)被用于被用于流式细胞仪在小鼠样本上. Nat Commun (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 128018)被用于被用于流式细胞仪在小鼠样本上. Nat Commun (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 st2
BioLegend Ly 6C抗体(Biolegend, 127633)被用于被用于流式细胞仪在小鼠样本上 (图 st2). Nature (2016) ncbi
大鼠 单克隆(D7)
BioLegend Ly 6C抗体(Biolegend, 108112)被用于. Nat Commun (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 6a). Mol Ther (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 6a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 6a). Mol Ther (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2b
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2b). Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s2a
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:400; 图 7b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 7b). Nat Commun (2016) ncbi
大鼠 单克隆(D7)
BioLegend Ly 6C抗体(BioLegend, 108102)被用于. Nat Commun (2016) ncbi
大鼠 单克隆(RB6-8C5)
BioLegend Ly 6C抗体(Biolegend, 108408)被用于. Stem Cell Reports (2016) ncbi
大鼠 单克隆(D7)
BioLegend Ly 6C抗体(Biolegend, 108105)被用于. Stem Cell Reports (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 st1
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 st1). J Immunol (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 st1
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 st1). J Immunol (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 st1
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 st1). J Immunol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 st1
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 st1). J Immunol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(E13-161.7)
  • 免疫细胞化学; 小鼠; 图 2
BioLegend Ly 6C抗体(Biolegend, E13-61.7)被用于被用于免疫细胞化学在小鼠样本上 (图 2). PLoS ONE (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6D
BioLegend Ly 6C抗体(Biolegend, 127624)被用于被用于流式细胞仪在小鼠样本上 (图 6D). Oncoimmunology (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6D
BioLegend Ly 6C抗体(Biolegend, 108422)被用于被用于流式细胞仪在小鼠样本上 (图 6D). Oncoimmunology (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 8A
BioLegend Ly 6C抗体(Biolegend, 12760)被用于被用于流式细胞仪在小鼠样本上 (图 8A). Oncoimmunology (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Nat Commun (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:100
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. Nat Commun (2016) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 1:100
BioLegend Ly 6C抗体(BioLegend, E13-161.7)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. Nat Commun (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 2b
BioLegend Ly 6C抗体(BioLegend, 127611)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 2b). Nat Methods (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 表 1
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (表 1). Nat Commun (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 表 1
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (表 1). Nat Commun (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1d
BioLegend Ly 6C抗体(Biolegend, 127605)被用于被用于流式细胞仪在小鼠样本上 (图 1d). J Neurosci (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Nature (2016) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 1b
BioLegend Ly 6C抗体(BioLegend, E13-161.7)被用于被用于流式细胞仪在小鼠样本上 (图 1b). J Immunol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 7f
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 7f). J Immunol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1g
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1g). J Exp Med (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Infect Immun (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 5a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 5a). PLoS Negl Trop Dis (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5a). PLoS Negl Trop Dis (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Oncogene (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1a
BioLegend Ly 6C抗体(biolegend, 128006)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1
BioLegend Ly 6C抗体(BioLegend, 108422)被用于被用于流式细胞仪在小鼠样本上 (图 1). elife (2016) ncbi
大鼠 单克隆(HK1.4)
  • 免疫组化-冰冻切片; 小鼠; 1:1000; 图 4e
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(BioLegend, 128017)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:1000 (图 4e) 和 被用于流式细胞仪在小鼠样本上 (图 4a). Nat Commun (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫细胞化学; 小鼠; 图 2e
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于免疫细胞化学在小鼠样本上 (图 2e). Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫细胞化学; 小鼠; 图 s6b
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于免疫细胞化学在小鼠样本上 (图 s6b). Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Antimicrob Agents Chemother (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5a). Am J Pathol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5e
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 5e). Am J Pathol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2). elife (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2). elife (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 6a
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 6a). Nat Commun (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6a
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 6a). Nat Commun (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1
BioLegend Ly 6C抗体(biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s1). PLoS ONE (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 3c
BioLegend Ly 6C抗体(BioLegend, 127601)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 3c). Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s6b
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s6b). Nat Med (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s6b
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s6b). Nat Med (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Cancer Immunol Immunother (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 2.5 ug/ml; 图 5f
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于免疫组化在小鼠样本上浓度为2.5 ug/ml (图 5f). Lab Invest (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1c
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1c). Sci Rep (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1e
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1e). Oncogene (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s9
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s9). Oncogene (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. Science (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s3a
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s3a). PLoS Pathog (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 st2
BioLegend Ly 6C抗体(BioLegend, 128017)被用于被用于流式细胞仪在小鼠样本上 (图 st2). Atherosclerosis (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 st2
BioLegend Ly 6C抗体(BioLegend, 127613)被用于被用于流式细胞仪在小鼠样本上 (图 st2). Atherosclerosis (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2b
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2b). J Immunol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 6). Oncotarget (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:400; 图 3a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 3a). Nat Commun (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 6b
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 6b). Infect Immun (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:75
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上浓度为1:75. Nat Biotechnol (2016) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 7
BioLegend Ly 6C抗体(BioLegend, 122514)被用于被用于流式细胞仪在小鼠样本上 (图 7). Blood (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3
BioLegend Ly 6C抗体(Biolegend/Ozyme, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Sci Rep (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 5
BioLegend Ly 6C抗体(BioLegend, 108120)被用于被用于流式细胞仪在小鼠样本上 (图 5). Nat Cell Biol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 128012)被用于被用于流式细胞仪在小鼠样本上. Nat Cell Biol (2016) ncbi
大鼠 单克隆(1A8)
BioLegend Ly 6C抗体(Biolegend, 127618)被用于. Nat Commun (2016) ncbi
大鼠 单克隆(HK1.4)
BioLegend Ly 6C抗体(Biolegend, 128026)被用于. Nat Commun (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 4a
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 4a). J Leukoc Biol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1c
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1c). J Leukoc Biol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 st1
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 st1). Nature (2016) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 st1
  • 免疫细胞化学; 小鼠; 图 st1
BioLegend Ly 6C抗体(Biolegend, E13-161.7)被用于被用于流式细胞仪在小鼠样本上 (图 st1) 和 被用于免疫细胞化学在小鼠样本上 (图 st1). Nature (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 图 4i
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 4i). Cancer Discov (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 1:150
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于免疫组化在小鼠样本上浓度为1:150. Nat Commun (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Oncoimmunology (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4i
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4i). Nature (2016) ncbi
大鼠 单克隆(D7)
BioLegend Ly 6C抗体(Biolegend, 108113)被用于. Nat Commun (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 8a
BioLegend Ly 6C抗体(BioLegend, 108418)被用于被用于流式细胞仪在小鼠样本上 (图 8a). J Biol Chem (2016) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 8a
BioLegend Ly 6C抗体(BioLegend, 122514)被用于被用于流式细胞仪在小鼠样本上 (图 8a). J Biol Chem (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5b
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5b). J Immunol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s4
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s4). Oncotarget (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s6
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s6). Oncotarget (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 S7
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 S7). J Clin Invest (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 S7
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 S7). J Clin Invest (2016) ncbi
大鼠 单克隆(1A8)
  • 抑制或激活实验; 小鼠; 图 8
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于抑制或激活实验在小鼠样本上 (图 8). Oncotarget (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:500; 图 9
BioLegend Ly 6C抗体(Biolegend, 127624)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 9). J Clin Invest (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 5d
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 5d). Oncotarget (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫细胞化学; 小鼠; 0.25 ug/ml; 图 3d
BioLegend Ly 6C抗体(BioLegend, 127601)被用于被用于免疫细胞化学在小鼠样本上浓度为0.25 ug/ml (图 3d). J Biol Chem (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4c
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4c). Gastroenterology (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Transl Med (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 s5a
BioLegend Ly 6C抗体(Biolegend, 128012)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s5a). Acta Neuropathol (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 大鼠; 图 4
BioLegend Ly 6C抗体(biolegend, D7)被用于被用于流式细胞仪在大鼠样本上 (图 4). Sci Rep (2016) ncbi
大鼠 单克隆(1A8)
BioLegend Ly 6C抗体(Biolegend, 127613)被用于. Nat Commun (2016) ncbi
大鼠 单克隆(D7)
  • 免疫细胞化学; 小鼠; 图 1b
BioLegend Ly 6C抗体(biolegend, 108101)被用于被用于免疫细胞化学在小鼠样本上 (图 1b). Stem Cells (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Nature (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1
BioLegend Ly 6C抗体(Biolegend, 12760)被用于被用于流式细胞仪在小鼠样本上 (图 1). Oncotarget (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. J Leukoc Biol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. J Leukoc Biol (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:500; 图 8a
BioLegend Ly 6C抗体(Biolegend, 127624)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 8a). Sci Rep (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:1000; 图 8a
BioLegend Ly 6C抗体(Biolegend, 128028)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 8a). Sci Rep (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s13
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s13). Science (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. J Thorac Oncol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. J Thorac Oncol (2016) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 1.5:100; 图 9
BioLegend Ly 6C抗体(BioLegend, 122507)被用于被用于流式细胞仪在小鼠样本上浓度为1.5:100 (图 9). Nat Commun (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 10k
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 10k). J Exp Med (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 10k
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 10k). J Exp Med (2016) ncbi
大鼠 单克隆(1A8)
BioLegend Ly 6C抗体(Biolegend, 127616)被用于. Brain Behav (2015) ncbi
大鼠 单克隆(HK1.4)
BioLegend Ly 6C抗体(Biolegend, 128016)被用于. Brain Behav (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 1:1000
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:1000. J Immunol (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 图 1
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 1). Dis Model Mech (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 108120)被用于被用于流式细胞仪在小鼠样本上. Nature (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2). PLoS ONE (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上. EMBO Mol Med (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 30 ug/ml; 图 s1
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为30 ug/ml (图 s1). EMBO Mol Med (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s5
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s5). EMBO Mol Med (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s5
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s5). EMBO Mol Med (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, HK1-4)被用于被用于流式细胞仪在小鼠样本上. Aging (Albany NY) (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1). Aging (Albany NY) (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上. Aging (Albany NY) (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 108113/14)被用于被用于流式细胞仪在小鼠样本上. Nature (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 6). PLoS Biol (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 6
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 6). PLoS Biol (2015) ncbi
大鼠 单克隆(HK1.4)
BioLegend Ly 6C抗体(Biolegend, 128006)被用于. PLoS ONE (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2
BioLegend Ly 6C抗体(biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2). Theranostics (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2
BioLegend Ly 6C抗体(biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2). Theranostics (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2
BioLegend Ly 6C抗体(biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2). Theranostics (2015) ncbi
大鼠 单克隆(D7)
BioLegend Ly 6C抗体(BioLegend, 108120)被用于. Nat Commun (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Arthritis Rheumatol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Arthritis Rheumatol (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1
BioLegend Ly 6C抗体(BioLegend, clone D7)被用于被用于流式细胞仪在小鼠样本上 (图 1). Nat Protoc (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Exp Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 其他; 小鼠; 1:100; 图 5c
BioLegend Ly 6C抗体(Biolegend, RB6-C8C5)被用于被用于其他在小鼠样本上浓度为1:100 (图 5c). Oncotarget (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 1AB)被用于被用于流式细胞仪在小鼠样本上. Mucosal Immunol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:400; 图 1
BioLegend Ly 6C抗体(Biolegend, 108416)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 1). Nature (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:400; 图 1
BioLegend Ly 6C抗体(Biolegend, 108114)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 1). Nature (2015) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 s3.e,g
BioLegend Ly 6C抗体(BioLegend, 122520)被用于被用于流式细胞仪在小鼠样本上 (图 s3.e,g). Nature (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2b
BioLegend Ly 6C抗体(BioLegend, 108422)被用于被用于流式细胞仪在小鼠样本上 (图 2b). Nature (2015) ncbi
大鼠 单克隆(HK1.4)
BioLegend Ly 6C抗体(Biolegend, 128006)被用于. PLoS ONE (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1). Sci Rep (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1). Sci Rep (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s2
BioLegend Ly 6C抗体(BioLegend, 128011)被用于被用于流式细胞仪在小鼠样本上 (图 s2). PLoS Pathog (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2
BioLegend Ly 6C抗体(BioLegend, 127627)被用于被用于流式细胞仪在小鼠样本上 (图 s2). PLoS Pathog (2015) ncbi
大鼠 单克隆(1A8)
  • 抑制或激活实验; 小鼠; 图 7
BioLegend Ly 6C抗体(BioLegend, 127632)被用于被用于抑制或激活实验在小鼠样本上 (图 7). Am J Respir Cell Mol Biol (2016) ncbi
大鼠 单克隆(HK1.4)
BioLegend Ly 6C抗体(BioLegend, 128016)被用于. Cancer Res (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:50; 图 1
BioLegend Ly 6C抗体(BioLegend, #108402)被用于被用于流式细胞仪在小鼠样本上浓度为1:50 (图 1). Exp Ther Med (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s3
BioLegend Ly 6C抗体(biolegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Immunity (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2a). J Exp Med (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2a
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2a). J Exp Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 9
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 9). PLoS ONE (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2
BioLegend Ly 6C抗体(Biolegend, 108126)被用于被用于流式细胞仪在小鼠样本上 (图 2). Stem Cell Reports (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4b
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4b). Sci Rep (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Free Radic Biol Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1
BioLegend Ly 6C抗体(Biolegend, 108412)被用于被用于流式细胞仪在小鼠样本上 (图 1). PLoS ONE (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1). Immunity (2015) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 8
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 8). Mol Cancer (2015) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 表 s1
BioLegend Ly 6C抗体(BioLegend, E13-161.7)被用于被用于流式细胞仪在小鼠样本上 (表 s1). Biochem Biophys Res Commun (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 5g
BioLegend Ly 6C抗体(Biolegend, 128007)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 5g). Brain (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 3
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 3). J Immunol (2015) ncbi
大鼠 单克隆(1A8)
  • 抑制或激活实验; 小鼠; 图 2
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于抑制或激活实验在小鼠样本上 (图 2). PLoS ONE (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2). PLoS ONE (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s2
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s2). PLoS ONE (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, # 108406)被用于被用于流式细胞仪在小鼠样本上. Biomaterials (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1
BioLegend Ly 6C抗体(Biolegend, # 108114)被用于被用于流式细胞仪在小鼠样本上 (图 1). Biomaterials (2015) ncbi
大鼠 单克隆(HK1.4)
  • 免疫组化; 小鼠
BioLegend Ly 6C抗体(BioLegend, 128011)被用于被用于免疫组化在小鼠样本上. J Virol (2015) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 图 4
BioLegend Ly 6C抗体(BioLegend, 127611)被用于被用于免疫组化在小鼠样本上 (图 4). J Virol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:300; 图 s3
BioLegend Ly 6C抗体(Biolegend, 127617)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 s3). Nat Commun (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 8
BioLegend Ly 6C抗体(BioLegend, 128021)被用于被用于流式细胞仪在小鼠样本上 (图 8). Oncoimmunology (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 8
BioLegend Ly 6C抗体(BioLegend, 127618)被用于被用于流式细胞仪在小鼠样本上 (图 8). Oncoimmunology (2014) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2). Proc Natl Acad Sci U S A (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 5). J Immunol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5
BioLegend Ly 6C抗体(Biolegend, IA8)被用于被用于流式细胞仪在小鼠样本上 (图 5). J Immunol (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2). PLoS Pathog (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Tuberculosis (Edinb) (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4). Stem Cell Res (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(Biolegend, 108108)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Proc Natl Acad Sci U S A (2015) ncbi
大鼠 单克隆(E13-161.7)
BioLegend Ly 6C抗体(Biolegend, E13-161.7)被用于. Nature (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s3
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Exp Dermatol (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Exp Dermatol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s4
BioLegend Ly 6C抗体(Biolegend, 108424)被用于被用于流式细胞仪在小鼠样本上 (图 s4). Proc Natl Acad Sci U S A (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. Front Immunol (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s2
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s2). PLoS Pathog (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Oncotarget (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1
BioLegend Ly 6C抗体(BioLegend, 108108)被用于被用于流式细胞仪在小鼠样本上 (图 1). J Clin Invest (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:50; 图 4
BioLegend Ly 6C抗体(BioLegend, 128030)被用于被用于流式细胞仪在小鼠样本上浓度为1:50 (图 4). J Immunol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 大鼠
BioLegend Ly 6C抗体(BioLegend, 108421)被用于被用于流式细胞仪在大鼠样本上. Transpl Immunol (2015) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 表 s3
BioLegend Ly 6C抗体(Biolegend, E13-161.7)被用于被用于流式细胞仪在小鼠样本上 (表 s3). PLoS ONE (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2c
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2c). EMBO Mol Med (2015) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠; 图 s3
BioLegend Ly 6C抗体(BioLegend, E13-161.7)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Blood (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 127607)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 108407)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4). Arthritis Rheumatol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s12
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s12). Nat Commun (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 6). Cancer Immunol Res (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100
BioLegend Ly 6C抗体(BioLegend, 108410)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. PLoS ONE (2015) ncbi
大鼠 单克隆(E13-161.7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, E13-161.7)被用于被用于流式细胞仪在小鼠样本上. J Cell Mol Med (2015) ncbi
大鼠 单克隆(HK1.4)
BioLegend Ly 6C抗体(Biolegend, 128012)被用于. J Vis Exp (2014) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 108125)被用于被用于流式细胞仪在小鼠样本上. Lab Anim (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 108406)被用于被用于流式细胞仪在小鼠样本上. Lab Anim (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 表 1
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (表 1). J Neuroinflammation (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4). Biomed Mater Eng (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 3
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 3). Development (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s1
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s1). J Leukoc Biol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s1). J Leukoc Biol (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, HK 1.4)被用于被用于流式细胞仪在小鼠样本上. PLoS Pathog (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. PLoS Pathog (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫细胞化学; 小鼠
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于免疫细胞化学在小鼠样本上. PLoS Pathog (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 108410)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2015) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 3
  • 流式细胞仪; 小鼠; 图 4
BioLegend Ly 6C抗体(Biolegend, 127612)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 3) 和 被用于流式细胞仪在小鼠样本上 (图 4). EMBO Mol Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 5
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 5). AAPS J (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1
BioLegend Ly 6C抗体(Biolegend, RB-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s1). J Immunol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4). Mol Pharmacol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. FASEB J (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 6
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 6). FASEB J (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 3
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上 (图 3). Stem Cells (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 5). J Virol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5). J Virol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Immunology (2014) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4). Am J Respir Cell Mol Biol (2015) ncbi
大鼠 单克隆(HK1.4)
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于. J Immunol (2014) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. Cell Res (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Cell Res (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2). Nat Immunol (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 1,3,4,6
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 1,3,4,6). PLoS ONE (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 人类
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在人类样本上. Cancer Res (2014) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1
BioLegend Ly 6C抗体(BioLegend, 108120)被用于被用于流式细胞仪在小鼠样本上 (图 s1). Nature (2014) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Proc Natl Acad Sci U S A (2014) ncbi
大鼠 单克隆(RB6-8C5)
BioLegend Ly 6C抗体(Biolegend, 108408)被用于. Cancer Res (2014) ncbi
大鼠 单克隆(RB6-8C5)
BioLegend Ly 6C抗体(Biolegend, 108423)被用于. J Vis Exp (2014) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. J Virol (2014) ncbi
大鼠 单克隆(1A8)
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于. J Immunol (2014) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2014) ncbi
大鼠 单克隆(RB6-8C5)
BioLegend Ly 6C抗体(Biolegend, 108412)被用于. Proc Natl Acad Sci U S A (2014) ncbi
大鼠 单克隆(HK1.4)
BioLegend Ly 6C抗体(Biolegend, 128015)被用于. Proc Natl Acad Sci U S A (2014) ncbi
大鼠 单克隆(RB6-8C5)
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于. J Exp Med (2014) ncbi
大鼠 单克隆(1A8)
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于. J Immunol (2014) ncbi
大鼠 单克隆(HK1.4)
BioLegend Ly 6C抗体(BioLegend, 128008)被用于. J Neurosci (2014) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上. Int Immunol (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2014) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1
  • 流式细胞仪; 人类; 图 s1
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s1) 和 被用于流式细胞仪在人类样本上 (图 s1). J Immunol (2014) ncbi
大鼠 单克隆(RB6-8C5)
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于. PLoS ONE (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Proc Natl Acad Sci U S A (2014) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. J Leukoc Biol (2014) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. J Leukoc Biol (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Leukoc Biol (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 表 1
  • 免疫细胞化学; 小鼠; 表 1
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (表 1) 和 被用于免疫细胞化学在小鼠样本上 (表 1). Nat Immunol (2014) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 108114)被用于被用于流式细胞仪在小鼠样本上. Nature (2014) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Diabetes (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(BioLegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Int Immunol (2014) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:60
BioLegend Ly 6C抗体(BioLegend, D7)被用于被用于流式细胞仪在小鼠样本上浓度为1:60. J Cell Biol (2013) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 11
BioLegend Ly 6C抗体(BioLegend, 108415)被用于被用于流式细胞仪在小鼠样本上 (图 11). PLoS ONE (2013) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上. Obesity (Silver Spring) (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上. Obesity (Silver Spring) (2014) ncbi
大鼠 单克隆(D7)
BioLegend Ly 6C抗体(Biolegend, 108113)被用于. PLoS ONE (2013) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(Biolegend, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 3a). PLoS ONE (2013) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3a
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3a). PLoS ONE (2013) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s3b
BioLegend Ly 6C抗体(Biolegend, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s3b). PLoS ONE (2013) ncbi
大鼠 单克隆(1A8)
  • 免疫细胞化学; 小鼠; 0.5 ug/ml
  • 免疫组化; 小鼠; 0.5 ug/ml
BioLegend Ly 6C抗体(Biolegend, 1A8)被用于被用于免疫细胞化学在小鼠样本上浓度为0.5 ug/ml 和 被用于免疫组化在小鼠样本上浓度为0.5 ug/ml. Proc Natl Acad Sci U S A (2013) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
BioLegend Ly 6C抗体(Biolegend, D7)被用于被用于流式细胞仪在小鼠样本上. Biol Proced Online (2010) ncbi
赛默飞世尔
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5931-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. Nat Commun (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 人类; 1:100; 图 s5a
赛默飞世尔 Ly 6C抗体(Invitrogen, 25-5931-81)被用于被用于流式细胞仪在人类样本上浓度为1:100 (图 s5a). Nat Commun (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 1:50; 图 4b
赛默飞世尔 Ly 6C抗体(e-Bioscience, RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:50 (图 4b). In Vivo (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1l
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 s1l). Cell Rep (2022) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(ThermoFisher, 17-9668-82)被用于被用于流式细胞仪在小鼠样本上. JCI Insight (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1b
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Front Immunol (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 2f
赛默飞世尔 Ly 6C抗体(Thermo Fisher, 25-5931-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 2f). Nat Med (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 1:500; 图 s6b
赛默飞世尔 Ly 6C抗体(Thermo Fisher, 14-5931-82)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:500 (图 s6b). Mol Ther (2022) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1o
赛默飞世尔 Ly 6C抗体(Thermo Fisher, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1o). Front Immunol (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5981-82)被用于被用于流式细胞仪在小鼠样本上. Front Immunol (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, 13-5931-85)被用于被用于流式细胞仪在小鼠样本上. Immunity (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 1:150; 图 5d
赛默飞世尔 Ly 6C抗体(Invitrogen, 14-5931-85)被用于被用于免疫组化在小鼠样本上浓度为1:150 (图 5d). Int J Mol Sci (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3b
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5932-82)被用于被用于流式细胞仪在小鼠样本上 (图 s3b). Cell Rep (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:1000
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5981-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000. Cells (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, 12-5981-82)被用于被用于流式细胞仪在小鼠样本上. BMC Biol (2021) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 6a
赛默飞世尔 Ly 6C抗体(eBioscience, 9668-82)被用于被用于流式细胞仪在小鼠样本上 (图 6a). Aging (Albany NY) (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 6b
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5932-82)被用于被用于流式细胞仪在小鼠样本上 (图 6b). Aging (Albany NY) (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:200
赛默飞世尔 Ly 6C抗体(ThermoFisher, 25-5981)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. elife (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:130; 图 3a
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5932-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:130 (图 3a). MBio (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 1k
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, 45-5932-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 1k). elife (2021) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 1:100; 图 1k
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, 17-9668-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 1k). elife (2021) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 表 2
赛默飞世尔 Ly 6C抗体(Thermo Fisher, 12-5981-82)被用于被用于流式细胞仪在小鼠样本上 (表 2). Int J Mol Sci (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2e
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 s2e). Front Cell Dev Biol (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:150; 图 2f
赛默飞世尔 Ly 6C抗体(eBioscience, 11593182)被用于被用于流式细胞仪在小鼠样本上浓度为1:150 (图 2f). J Biol Chem (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1d
赛默飞世尔 Ly 6C抗体(eBioscience/Thermo Scientific, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1d). Mucosal Immunol (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2g
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2g). Redox Biol (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 2s1g
赛默飞世尔 Ly 6C抗体(eBioscience, 48-5931-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 2s1g). elife (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s3
赛默飞世尔 Ly 6C抗体(Thermo Fisher, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Cell Death Dis (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Front Immunol (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 0.25 ug/ml; 图 4j
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5931-85)被用于被用于流式细胞仪在小鼠样本上浓度为0.25 ug/ml (图 4j). J Immunol (2021) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 1d
赛默飞世尔 Ly 6C抗体(eBioscience, 48-966882)被用于被用于流式细胞仪在小鼠样本上 (图 1d). Mil Med Res (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s8
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5931-81)被用于被用于流式细胞仪在小鼠样本上 (图 s8). Commun Biol (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 1:100; 图 4e
赛默飞世尔 Ly 6C抗体(Thermo Fischer, RB6-8C5)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:100 (图 4e). Infect Immun (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3a
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5932-80)被用于被用于流式细胞仪在小鼠样本上 (图 s3a). Sci Adv (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 4e, 6g
赛默飞世尔 Ly 6C抗体(eBioscience, 14-5931-82)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 4e, 6g). Sci Adv (2021) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 免疫组化-石蜡切片; 小鼠; 1:1000; 图 s5b
  • 流式细胞仪; 小鼠; 1:1000; 图 s3d
赛默飞世尔 Ly 6C抗体(eBioscience, 17-9668-82)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:1000 (图 s5b) 和 被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 s3d). Nat Commun (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Infect Immun (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2a, s2a, s2b, s2k
赛默飞世尔 Ly 6C抗体(Fisher, 48-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 2a, s2a, s2b, s2k). Nat Commun (2021) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, 17-9668-80)被用于被用于流式细胞仪在小鼠样本上. Cell Host Microbe (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 s3-1c
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5931-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s3-1c). elife (2020) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 3b
赛默飞世尔 Ly 6C抗体(eBioscience, 46-9668-82)被用于被用于流式细胞仪在小鼠样本上 (图 3b). Aging (Albany NY) (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上. Int J Mol Sci (2020) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1f
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, 56-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 1f). Cell Res (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. elife (2020) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:200
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5981-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. elife (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Cell (2020) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 s4
赛默飞世尔 Ly 6C抗体(Thermo Fisher, 1A8-Ly6g)被用于被用于流式细胞仪在小鼠样本上 (图 s4). Eur J Immunol (2021) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:1000; 图 1e
赛默飞世尔 Ly 6C抗体(Invitrogen, 12-5932-80)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 1e). elife (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 1:50; 图 3c
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:50 (图 3c). Mucosal Immunol (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:800; 图 2s1a
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5932-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:800 (图 2s1a). elife (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3d
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5932-82)被用于被用于流式细胞仪在小鼠样本上 (图 3d). Am J Physiol Cell Physiol (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:1000; 图 1s2
赛默飞世尔 Ly 6C抗体(ThermoFisher Scientific, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 1s2). elife (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3s1f
赛默飞世尔 Ly 6C抗体(Thermo Fisher, 14-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 3s1f). elife (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Aging (Albany NY) (2020) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 1:1000; 图 5s1c
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, 17-9668-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 5s1c). elife (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2a
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). elife (2020) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 4
赛默飞世尔 Ly 6C抗体(eBioscience, 1A8-Ly6g)被用于被用于流式细胞仪在小鼠样本上 (图 4). BMC Complement Med Ther (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1b, 3c
赛默飞世尔 Ly 6C抗体(Thermo Fisher, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1b, 3c). Sci Adv (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1a, 4a
赛默飞世尔 Ly 6C抗体(Thermo Fisher, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1a, 4a). Sci Adv (2020) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1b
赛默飞世尔 Ly 6C抗体(Invitrogen, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s1b). Science (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3c
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3c). Front Immunol (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:1000; 图 s7a
赛默飞世尔 Ly 6C抗体(Invitrogen, 13-C5981-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 s7a). Nature (2020) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 1:200; 图 s1a, s2d, s3d
赛默飞世尔 Ly 6C抗体(eBioscience, 17-9668-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s1a, s2d, s3d). Sci Immunol (2020) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2a, s3b, s7c
赛默飞世尔 Ly 6C抗体(ThermoFisher, 48-5932-82)被用于被用于流式细胞仪在小鼠样本上 (图 2a, s3b, s7c). Cell Rep (2019) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 免疫组化-石蜡切片; 小鼠; 1:100; 图 4e
赛默飞世尔 Ly 6C抗体(eBiosciences, 16- 9668-82)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:100 (图 4e). Nat Microbiol (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1g
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1g). elife (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 s5a
赛默飞世尔 Ly 6C抗体(eBioscience, MA1-83934)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s5a). Nat Commun (2019) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 1:200; 图 4a
赛默飞世尔 Ly 6C抗体(eBioscience, 17966882)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 4a). Nat Commun (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 e1a, e1c
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 e1a, e1c). Nature (2020) ncbi
大鼠 单克隆(NIMP-R14)
  • 免疫组化-石蜡切片; 小鼠; 图 3e
赛默飞世尔 Ly 6C抗体(Invitrogen, NIMP-R14)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 3e). Oral Dis (2020) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 s3h
赛默飞世尔 Ly 6C抗体(eBioscience, 1A8-Ly6g)被用于被用于流式细胞仪在小鼠样本上 (图 s3h). Nature (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3h
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s3h). Nature (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s19c
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s19c). Science (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s19c
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s19c). Science (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s1a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). Eur Respir J (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:500; 图 e3d, s9i
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5931-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 e3d, s9i). Nature (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s2j
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, 12-5932-80)被用于被用于流式细胞仪在小鼠样本上 (图 s2j). Sci Adv (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 其他; 小鼠; 图 2b
赛默飞世尔 Ly 6C抗体(eBioscience, 13-5931-86)被用于被用于其他在小鼠样本上 (图 2b). Int Immunol (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 人类; 图 3b
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5931-82)被用于被用于流式细胞仪在人类样本上 (图 3b). Nat Commun (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 e3b
赛默飞世尔 Ly 6C抗体(Invitrogen, 47-5931-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 e3b). Nature (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:2000; 图 e3i
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5931-85)被用于被用于流式细胞仪在小鼠样本上浓度为1:2000 (图 e3i). Nature (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:700; 图 e1b, e2f
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5981-83)被用于被用于流式细胞仪在小鼠样本上浓度为1:700 (图 e1b, e2f). Nature (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:10; 图 3a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:10 (图 3a). Sci Adv (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1a
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Clin Invest (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4f, 4k, 4l
赛默飞世尔 Ly 6C抗体(eBioscience, 48-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 4f, 4k, 4l). Nature (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:800; 图 e5a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:800 (图 e5a). Nature (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:3000; 图 e2j, 4g
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:3000 (图 e2j, 4g). Nature (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s6f
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 s6f). Cell (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s3a
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5981-81)被用于被用于流式细胞仪在小鼠样本上 (图 s3a). Cell Stem Cell (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1s1a
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5931-81)被用于被用于流式细胞仪在小鼠样本上 (图 1s1a). elife (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4f
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4f). Immune Netw (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4f
赛默飞世尔 Ly 6C抗体(eBioscience, HK 1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4f). Immune Netw (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3i
赛默飞世尔 Ly 6C抗体(eBioscience, 48-5932-82)被用于被用于流式细胞仪在小鼠样本上 (图 3i). Immunity (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1b
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Glia (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 4e
赛默飞世尔 Ly 6C抗体(eBioscience, 47-5932-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 4e). Neurochem Int (2019) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 5a
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5981)被用于被用于流式细胞仪在小鼠样本上 (图 5a). Cell Rep (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Proc Natl Acad Sci U S A (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:400; 图 2a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 2a). Front Immunol (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2a
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Front Immunol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 s2a, s2b
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s2a, s2b). J Pathol (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:400; 图 8c
赛默飞世尔 Ly 6C抗体(Thermo Fisher, 25-5931-81)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 8c). Front Immunol (2018) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 6a
赛默飞世尔 Ly 6C抗体(Thermo Fisher, 17-9668-82)被用于被用于流式细胞仪在小鼠样本上 (图 6a). Nat Immunol (2019) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 6a
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5932-82)被用于被用于流式细胞仪在小鼠样本上 (图 6a). Nat Immunol (2019) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 5r
赛默飞世尔 Ly 6C抗体(eBioscience, 17-9668-82)被用于被用于流式细胞仪在小鼠样本上 (图 5r). Cell Rep (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1b
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Genome Biol (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s6a
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 s6a). Cell Stem Cell (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6b
赛默飞世尔 Ly 6C抗体(eBioscience, 48-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 6b). Cell Stem Cell (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Blood (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2a
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Blood (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 ev2c
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 ev2c). EMBO J (2019) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3). Nutrients (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 6g
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 6g). Obesity (Silver Spring) (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2g
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 2g). Cancer Cell (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 3a
赛默飞世尔 Ly 6C抗体(eBiosciences, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 3a). Invest Ophthalmol Vis Sci (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:75; 图 3a
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:75 (图 3a). Invest Ophthalmol Vis Sci (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 5d
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 5d). Hum Mol Genet (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 2e
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 2e). Dis Model Mech (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1a
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). Stem Cell Reports (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2a
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, 255981)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Cancer Cell (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:40; 图 8b
赛默飞世尔 Ly 6C抗体(ThermoFisher, HK 1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:40 (图 8b). PLoS Pathog (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:50; 图 7a
赛默飞世尔 Ly 6C抗体(eBioscience, 56-5981-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:50 (图 7a). Mol Cell Biol (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1b
赛默飞世尔 Ly 6C抗体(eBiosciences, 17-5931)被用于被用于流式细胞仪在小鼠样本上 (图 s1b). EBioMedicine (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1e
赛默飞世尔 Ly 6C抗体(eBiosciences, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s1e). Cell Stem Cell (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1e
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s1e). Cell Stem Cell (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3a
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3a). J Exp Med (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Exp Med (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1). J Clin Invest (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2i
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5931-85)被用于被用于流式细胞仪在小鼠样本上 (图 2i). J Exp Med (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1c
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1c). Mol Cell Biol (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1c
赛默飞世尔 Ly 6C抗体(Affymetrix eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1c). Sci Rep (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1a
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5981-83)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Biol Chem (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1f
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 1f). Cell Death Dis (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2d
赛默飞世尔 Ly 6C抗体(eBiosciences, 45-5981-80)被用于被用于流式细胞仪在小鼠样本上 (图 2d). Immunity (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:400; 图 s1a
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5931-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 s1a). J Clin Invest (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 1:50; 图 4b
赛默飞世尔 Ly 6C抗体(Thermo Fisher, 11-5931-81)被用于被用于免疫组化在小鼠样本上浓度为1:50 (图 4b). J Immunol Res (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 7s1a
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5932-82)被用于被用于流式细胞仪在小鼠样本上 (图 7s1a). elife (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 4a
赛默飞世尔 Ly 6C抗体(ebioscience, 25-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Nat Med (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 图 8b
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于免疫组化在小鼠样本上 (图 8b). Nat Commun (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2c
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2c). Antimicrob Agents Chemother (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s1a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). J Exp Med (2018) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 s1a
赛默飞世尔 Ly 6C抗体(eBioscience, 1A8-Ly6G)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). J Exp Med (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1b
赛默飞世尔 Ly 6C抗体(eBioscience, 56-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 1b). J Immunol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1a
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5932-82)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Immunol (2018) ncbi
大鼠 单克隆(D7)
  • 免疫组化-冰冻切片; 小鼠; 图 5a
赛默飞世尔 Ly 6C抗体(eBiosciences, 11-5981-81)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 5a). Cell (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2a
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5931-81)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Nat Commun (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2k
赛默飞世尔 Ly 6C抗体(eBiosciences, 48-5931)被用于被用于流式细胞仪在小鼠样本上 (图 2k). Cell (2018) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 3b
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 3b). Nature (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3b
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3b). Nature (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s5
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s5). Nat Commun (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2d
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2d). Nat Commun (2018) ncbi
大鼠 单克隆(HK1.4)
赛默飞世尔 Ly 6C抗体(eBiosciences, 45-5932-82)被用于. Cell (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200; 图 1j, 8d
赛默飞世尔 Ly 6C抗体(Ebioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 1j, 8d). J Immunol (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 抑制或激活实验; 小鼠; 图 s2
赛默飞世尔 Ly 6C抗体(eBiosciences, 16-5931-82)被用于被用于抑制或激活实验在小鼠样本上 (图 s2). Cell (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s4b
赛默飞世尔 Ly 6C抗体(eBioscience, 48-5931)被用于被用于流式细胞仪在小鼠样本上 (图 s4b). J Clin Invest (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 人类; 图 s26e
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在人类样本上 (图 s26e). Science (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:400
赛默飞世尔 Ly 6C抗体(ebioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:400. Nat Commun (2017) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 抑制或激活实验; 小鼠; 图 s4a
赛默飞世尔 Ly 6C抗体(eBiosciences, 1A8)被用于被用于抑制或激活实验在小鼠样本上 (图 s4a). J Clin Invest (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4d
赛默飞世尔 Ly 6C抗体(Invitrogen, RM3028)被用于被用于流式细胞仪在小鼠样本上 (图 4d). J Clin Invest (2017) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 5a
赛默飞世尔 Ly 6C抗体(eBioscience, 17-9668-80)被用于被用于流式细胞仪在小鼠样本上 (图 5a). Immunity (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1b
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5932)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Immunity (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s6g
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s6g). Nature (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 s5
赛默飞世尔 Ly 6C抗体(eBiosciences, 17-5932)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s5). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 s5
赛默飞世尔 Ly 6C抗体(eBiosciences, 11-5931)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s5). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2b
赛默飞世尔 Ly 6C抗体(ThermoFisher Scientific, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2b). J Clin Invest (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1.4b
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s1.4b). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:1000; 图 3a
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5981-80)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 3a). Cell (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2h
赛默飞世尔 Ly 6C抗体(eBiosciences, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2h). J Exp Med (2017) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 2h
赛默飞世尔 Ly 6C抗体(eBiosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2h). J Exp Med (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 4g
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 4g). J Clin Invest (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Eur J Immunol (2017) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 5a
赛默飞世尔 Ly 6C抗体(eBiosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5a). J Clin Invest (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5a
赛默飞世尔 Ly 6C抗体(eBiosciences, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 5a). J Clin Invest (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1a
赛默飞世尔 Ly 6C抗体(eBiosciences, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Clin Invest (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 5a
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 5a). J Clin Invest (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 1a
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 1a). Nat Immunol (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:200
赛默飞世尔 Ly 6C抗体(eBioscience, 53-5932)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. J Exp Med (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200
赛默飞世尔 Ly 6C抗体(eBioscience, 48-5931-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. J Exp Med (2017) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 1b
赛默飞世尔 Ly 6C抗体(eBioscience, IA8)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4h
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4h). J Clin Invest (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1b
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 1b). elife (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s8i
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s8i). Nature (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4a
赛默飞世尔 Ly 6C抗体(eBiosciences, 25-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 4a). J Orthop Res (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1c,d
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1c,d). EMBO J (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1c,d
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1c,d). EMBO J (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1p
赛默飞世尔 Ly 6C抗体(eBiosciences, 25-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 s1p). Nature (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 5b
赛默飞世尔 Ly 6C抗体(eBiosciences, 45-5981)被用于被用于流式细胞仪在小鼠样本上 (图 5b). J Clin Invest (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4a
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4a). J Exp Med (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s5b
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5931)被用于被用于流式细胞仪在小鼠样本上 (图 s5b). Nat Commun (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:300; 图 5e
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5932)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 5e). J Clin Invest (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 5e
赛默飞世尔 Ly 6C抗体(eBioscience, 35-5931)被用于被用于流式细胞仪在小鼠样本上 (图 5e). J Clin Invest (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 4a
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Skelet Muscle (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s3
赛默飞世尔 Ly 6C抗体(eBiosciences, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Invest Ophthalmol Vis Sci (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2c
赛默飞世尔 Ly 6C抗体(ebioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 2c). Leuk Res (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4b
赛默飞世尔 Ly 6C抗体(eBioscience, 48-5932-82)被用于被用于流式细胞仪在小鼠样本上 (图 4b). Methods Mol Biol (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6/8C5)被用于被用于流式细胞仪在小鼠样本上. Arterioscler Thromb Vasc Biol (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1b
赛默飞世尔 Ly 6C抗体(EBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Haematologica (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 4b
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 4b). Mol Vis (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 3c
赛默飞世尔 Ly 6C抗体(eBioScience, 12-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 3c). Stem Cell Reports (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3C
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 3C). J Immunol (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2
赛默飞世尔 Ly 6C抗体(eBioscience, 13-5931-75)被用于被用于流式细胞仪在小鼠样本上 (图 s2). Nucleic Acids Res (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s2a
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Nucleic Acids Res (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 s13
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5931)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s13). Nat Med (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:200; 图 s13
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5981)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s13). Nat Med (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 3c
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5981)被用于被用于流式细胞仪在小鼠样本上 (图 3c). Nat Med (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s3
  • 免疫组化; 小鼠; 图 5a
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s3) 和 被用于免疫组化在小鼠样本上 (图 5a). PLoS ONE (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 3
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RBC-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 3) 和 被用于流式细胞仪在小鼠样本上. Sci Rep (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Cell Death Dis (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上. Cell Death Dis (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2l
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 2l). J Exp Med (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 s1a
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s1a). Nat Immunol (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 5a
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 5a). J Virol (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 4b
  • 流式细胞仪; 小鼠; 图 s10c
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 4b) 和 被用于流式细胞仪在小鼠样本上 (图 s10c). Nature (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 6c
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 6c). Nat Commun (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1b
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Mol Med Rep (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5931)被用于被用于流式细胞仪在小鼠样本上 (图 s2). Oncotarget (2016) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 1j
赛默飞世尔 Ly 6C抗体(eBiosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1j). J Leukoc Biol (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1h
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1h). J Leukoc Biol (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:50; 图 s2a
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:50 (图 s2a). Nat Commun (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4e
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4e). Inflammation (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s3
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Sci Rep (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1e,f
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5981-81)被用于被用于流式细胞仪在小鼠样本上 (图 1e,f). Stem Cell Reports (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Allergy Clin Immunol (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上. J Allergy Clin Immunol (2017) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 st1
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 st1). J Immunol (2016) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 其他; 小鼠; 图 2c
赛默飞世尔 Ly 6C抗体(eBiosciences, 1A8)被用于被用于其他在小鼠样本上 (图 2c). Cell Rep (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1a
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2a
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Nature (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 8A
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5932)被用于被用于流式细胞仪在小鼠样本上 (图 8A). Oncoimmunology (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1d
赛默飞世尔 Ly 6C抗体(eBioscience, RB6/8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1d). J Leukoc Biol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2c
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2c). J Clin Invest (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1d
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5932-82)被用于被用于流式细胞仪在小鼠样本上 (图 1d). J Neurosci (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1d
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1d). J Exp Med (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1a
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Immunol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Exp Med (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1a
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Biol Chem (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 7d
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 7d). Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3e
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 3e). Oncotarget (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1b
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Oncotarget (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上. J Exp Med (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Clin Invest (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s3
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5981-81)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Cell (2016) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 4
赛默飞世尔 Ly 6C抗体(eBiosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4). PLoS Pathog (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4
赛默飞世尔 Ly 6C抗体(eBiosciences, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4). PLoS Pathog (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1b
赛默飞世尔 Ly 6C抗体(eBiosciences, 17-5981-81)被用于被用于流式细胞仪在小鼠样本上 (图 s1b). J Clin Invest (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1a
赛默飞世尔 Ly 6C抗体(eBiosciences, 12-5931-81)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). J Clin Invest (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:200; 图 7a
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5981-81)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 7a). Nat Commun (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4
赛默飞世尔 Ly 6C抗体(Pharmingen, 17-5931)被用于被用于流式细胞仪在小鼠样本上 (图 4). Cell Death Dis (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2a
赛默飞世尔 Ly 6C抗体(BD Pharmingen or eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Mol Cell Biol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s6a
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s6a). J Clin Invest (2016) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 1:1600; 图 s2
赛默飞世尔 Ly 6C抗体(eBioscience, 17-9668-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:1600 (图 s2). PLoS ONE (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 ex1b
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 ex1b). Nature (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 ex1b
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 ex1b). Nature (2016) ncbi
大鼠 单克隆(D7)
  • 免疫细胞化学; 小鼠; 1:50; 图 3a
赛默飞世尔 Ly 6C抗体(eBiosciences, 17-5981-81)被用于被用于免疫细胞化学在小鼠样本上浓度为1:50 (图 3a). Stem Cell Reports (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1h
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s1h). Nature (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 0.25 ug/ml; 图 5e
赛默飞世尔 Ly 6C抗体(Invitrogen, RB6-8C5)被用于被用于免疫组化在小鼠样本上浓度为0.25 ug/ml (图 5e). Lab Invest (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1-s1
赛默飞世尔 Ly 6C抗体(eBiosciences, 13-5931-86)被用于被用于流式细胞仪在小鼠样本上 (图 1-s1). elife (2016) ncbi
大鼠 单克隆(NIMP-R14)
  • 免疫组化; 小鼠; 1:50; 图 7a
赛默飞世尔 Ly 6C抗体(Thermo Fisher, NIMP-R14)被用于被用于免疫组化在小鼠样本上浓度为1:50 (图 7a). Front Microbiol (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1e
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s1e). Cell Res (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 2). Immunity (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2b
赛默飞世尔 Ly 6C抗体(eBiosciences, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2b). J Immunol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5931-82)被用于被用于流式细胞仪在小鼠样本上. J Allergy Clin Immunol (2017) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:400; 图 3a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 3a). Nat Commun (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 1:400; 图 2h
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于免疫组化在小鼠样本上浓度为1:400 (图 2h). Nat Commun (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Bio Protoc (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 1:50; 图 s5
赛默飞世尔 Ly 6C抗体(Ebiosciences, 145931)被用于被用于免疫组化在小鼠样本上浓度为1:50 (图 s5). Sci Rep (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6d
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 6d). PLoS ONE (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1b
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1b). J Immunol (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:50; 图 6d
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5981-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:50 (图 6d). Nat Cell Biol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 s1a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s1a). Nat Med (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 s1). Leukemia (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2b
赛默飞世尔 Ly 6C抗体(eBiosciences, 47-5932-82)被用于被用于流式细胞仪在小鼠样本上 (图 2b). Immunol Cell Biol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:25; 图 1
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5932)被用于被用于流式细胞仪在小鼠样本上浓度为1:25 (图 1). J Clin Invest (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:400; 图 s3
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5932-80)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 s3). Nat Commun (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s3
赛默飞世尔 Ly 6C抗体(eBioscience, 12-598)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Aging Cell (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, 14-5931-85)被用于被用于流式细胞仪在小鼠样本上. Nat Cell Biol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2i
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2i). JCI Insight (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3a
  • 免疫组化; 小鼠; 1:500; 图 3c
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3a) 和 被用于免疫组化在小鼠样本上浓度为1:500 (图 3c). Sci Rep (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5981)被用于被用于流式细胞仪在小鼠样本上. Biol Open (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1a
赛默飞世尔 Ly 6C抗体(eBiosciences, 12-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Oncogene (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 1:500; 图 3
赛默飞世尔 Ly 6C抗体(Ebioscience, 14-5931)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:500 (图 3). PLoS ONE (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3d
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3d). J Exp Med (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 3
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 3). PLoS ONE (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:300; 图 s3d
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 s3d). Nat Immunol (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s18g
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s18g). Science (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 抑制或激活实验; 小鼠; 图 7
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于抑制或激活实验在小鼠样本上 (图 7). Oncotarget (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3b
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3b). J Innate Immun (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 图 6
赛默飞世尔 Ly 6C抗体(eBioscience, 14-5931-82)被用于被用于免疫组化在小鼠样本上 (图 6). Oncotarget (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:500
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5981)被用于被用于流式细胞仪在小鼠样本上浓度为1:500. Science (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2b
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2b). Nat Commun (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s4
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s4). Nucleic Acids Res (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5932)被用于被用于流式细胞仪在小鼠样本上 (图 1). Oncotarget (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4a
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Infect Immun (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Infect Immun (2016) ncbi
大鼠 单克隆(NIMP-R14)
  • 免疫组化-石蜡切片; 小鼠; 1 ug/ml; 图 4
赛默飞世尔 Ly 6C抗体(Thermo Scientific, MA1-40038)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1 ug/ml (图 4). Lab Invest (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5931-80)被用于被用于流式细胞仪在小鼠样本上 (图 s2). Sci Rep (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 s7a
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s7a). Nat Commun (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:500; 图 s3
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 s3). Nat Commun (2016) ncbi
大鼠 单克隆(HK1.4)
  • 免疫组化-冰冻切片; 小鼠
  • 流式细胞仪; 小鼠; 1:100; 图 1
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5932)被用于被用于免疫组化-冰冻切片在小鼠样本上 和 被用于流式细胞仪在小鼠样本上浓度为1:100 (图 1). Dis Model Mech (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5931-85)被用于被用于流式细胞仪在小鼠样本上. Nature (2016) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2). PLoS ONE (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Nat Commun (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上. Nat Commun (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s3h
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s3h). Nat Med (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 6). PLoS Biol (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:428
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5981-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:428. Nat Commun (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5931)被用于被用于流式细胞仪在小鼠样本上. Cell Res (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 2). Mol Metab (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:1000; 图 s1a
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5981-80)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 s1a). Nat Cell Biol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1a
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Nat Immunol (2016) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s2a
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). Nat Immunol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1f
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1f). J Clin Invest (2016) ncbi
大鼠 单克隆(D7)
  • 免疫组化; 小鼠; 1:100-1:200; 图 8
赛默飞世尔 Ly 6C抗体(eBioscience, 14-5981-82)被用于被用于免疫组化在小鼠样本上浓度为1:100-1:200 (图 8). PLoS ONE (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1b
赛默飞世尔 Ly 6C抗体(eBioscience, RB6.8)被用于被用于流式细胞仪在小鼠样本上 (图 1b). J Exp Med (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4g
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5932-82)被用于被用于流式细胞仪在小鼠样本上 (图 4g). Mediators Inflamm (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2e
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2e). Nat Med (2015) ncbi
大鼠 单克隆(NIMP-R14)
  • 免疫组化-冰冻切片; 小鼠; 图 8
赛默飞世尔 Ly 6C抗体(Thermo Fisher, NIMP-R14)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 8). J Immunol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 5
  • 免疫印迹; 小鼠; 图 5
赛默飞世尔 Ly 6C抗体(eBioscience, 14-5931)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 5) 和 被用于免疫印迹在小鼠样本上 (图 5). PLoS Med (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 3b
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5981)被用于被用于流式细胞仪在小鼠样本上 (图 3b). J Exp Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2f
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5931)被用于被用于流式细胞仪在小鼠样本上 (图 2f). J Exp Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 6). Blood (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 7
赛默飞世尔 Ly 6C抗体(eBioscience, 61-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 7). Sci Rep (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 8a
赛默飞世尔 Ly 6C抗体(eBiosciences, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 8a). Nat Commun (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 2). PLoS ONE (2015) ncbi
大鼠 单克隆(D7)
  • 免疫细胞化学; 人类; 1:50; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, 14-5981-85)被用于被用于免疫细胞化学在人类样本上浓度为1:50 (图 2). PLoS ONE (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:1000; 图 3c, 3d
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5931)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 3c, 3d). Endocrinology (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8c5)被用于被用于流式细胞仪在小鼠样本上 (图 2). Nat Immunol (2015) ncbi
大鼠 单克隆(D7)
  • 免疫细胞化学; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5981-81)被用于被用于免疫细胞化学在小鼠样本上. Cell Res (2015) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 3f
赛默飞世尔 Ly 6C抗体(eBioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3f). J Immunol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 1:100; 图 2d
  • 流式细胞仪; 小鼠; 1:100; 图 1c
赛默飞世尔 Ly 6C抗体(BD, 11-5931)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:100 (图 2d) 和 被用于流式细胞仪在小鼠样本上浓度为1:100 (图 1c). Cell Physiol Biochem (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 1:100; 图 2e
赛默飞世尔 Ly 6C抗体(BD, 45-5932)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 2e). Cell Physiol Biochem (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 5a
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 5a). Cancer Res (2015) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 s1
赛默飞世尔 Ly 6C抗体(eBioscience, 46-9668-80)被用于被用于流式细胞仪在小鼠样本上 (图 s1). Am J Respir Cell Mol Biol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1
赛默飞世尔 Ly 6C抗体(eBioscience, 48-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 s1). Am J Respir Cell Mol Biol (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2e
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2e). Eur J Immunol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 人类
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5931)被用于被用于流式细胞仪在人类样本上. Biochim Biophys Acta (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 8a
赛默飞世尔 Ly 6C抗体(eBiosciences, D7)被用于被用于流式细胞仪在小鼠样本上 (图 8a). elife (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1
赛默飞世尔 Ly 6C抗体(Thermo Fisher Scientific, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s1). Immunity (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBiosciences, 115931-82)被用于被用于流式细胞仪在小鼠样本上. Autophagy (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1). Free Radic Biol Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Free Radic Biol Med (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, 25-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 2). PLoS ONE (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:500
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8c5)被用于被用于流式细胞仪在小鼠样本上浓度为1:500. Cell Res (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 s1
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 s1). Cell Death Dis (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Exp Med (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(eBioscience, 45-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 1). Nat Med (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 2). PLoS ONE (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 4
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 4). Nature (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5931)被用于被用于流式细胞仪在小鼠样本上. elife (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5a
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 5a). J Exp Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 抑制或激活实验; 小鼠; 图 2b
赛默飞世尔 Ly 6C抗体(eBioscience, 16-5931-85)被用于被用于抑制或激活实验在小鼠样本上 (图 2b). Antioxid Redox Signal (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2c
  • 免疫组化; 小鼠; 图 3a
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2c) 和 被用于免疫组化在小鼠样本上 (图 3a). Transplantation (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1). J Exp Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s1). PLoS Pathog (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3). J Exp Med (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 3
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 3). J Exp Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3). PLoS ONE (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 3
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 3). PLoS ONE (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 10 ug/ml; 图 4
赛默飞世尔 Ly 6C抗体(eBioscience, 14-5931)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为10 ug/ml (图 4). Nat Commun (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4e
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4e). Sci Transl Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:4000
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5931-82)被用于被用于流式细胞仪在小鼠样本上浓度为1:4000. EMBO Mol Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2). PLoS Pathog (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s2
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s2). PLoS Pathog (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 1:100
赛默飞世尔 Ly 6C抗体(生活技术, RM3030)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:100. J Neurosci (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2). Nat Immunol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 表 s3
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (表 s3). PLoS ONE (2015) ncbi
大鼠 单克隆(D7)
  • 免疫组化-冰冻切片; 小鼠
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(e-Bioscience, D7)被用于被用于免疫组化-冰冻切片在小鼠样本上 和 被用于流式细胞仪在小鼠样本上. Oncogene (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1). Blood (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Eur J Immunol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于免疫组化-石蜡切片在小鼠样本上 和 被用于流式细胞仪在小鼠样本上. J Mol Med (Berl) (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s3
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s3). J Immunother Cancer (2015) ncbi
大鼠 单克隆(NIMP-R14)
  • 免疫组化; 小鼠
赛默飞世尔 Ly 6C抗体(Thermo, NIMP-R14)被用于被用于免疫组化在小鼠样本上. Curr Mol Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 抑制或激活实验; 小鼠; 图 3b
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于抑制或激活实验在小鼠样本上 (图 3b) 和 被用于流式细胞仪在小鼠样本上. Curr Mol Med (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 0.4 ug/ml
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为0.4 ug/ml. Immunol Cell Biol (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:500
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上浓度为1:500. Nat Commun (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上. PLoS Pathog (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s2
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s2). Nat Immunol (2015) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 2). Exp Hematol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2). Exp Hematol (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上. J Leukoc Biol (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2015) ncbi
大鼠 单克隆(1A8-Ly6g)
  • 流式细胞仪; 小鼠; 图 S9i
赛默飞世尔 Ly 6C抗体(eBioscience, 17-9668)被用于被用于流式细胞仪在小鼠样本上 (图 S9i). Nat Immunol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s1). J Immunol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 1:500; 图 8
赛默飞世尔 Ly 6C抗体(eBioscience, 11-5931)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:500 (图 8). Development (2014) ncbi
大鼠 单克隆(D7)
  • 免疫细胞化学; 小鼠; 1:500
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5981-82)被用于被用于免疫细胞化学在小鼠样本上浓度为1:500. Nat Cell Biol (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Eur J Immunol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Exp Med (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, 2-5931)被用于被用于流式细胞仪在小鼠样本上. Cancer Res (2014) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5932-80)被用于被用于流式细胞仪在小鼠样本上. Cancer Res (2014) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:200
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5981-81)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Proc Natl Acad Sci U S A (2014) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(eBioscience, 12-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 1). Methods Mol Biol (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 170 ug/ml
赛默飞世尔 Ly 6C抗体(Invitrogen, clone RB6-8C5)被用于被用于流式细胞仪在小鼠样本上浓度为170 ug/ml. Development (2014) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 5
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 5). Mucosal Immunol (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, HK1.4)被用于被用于流式细胞仪在小鼠样本上. Nat Immunol (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Nat Immunol (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Int Immunol (2014) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上. Sci Rep (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. PLoS Pathog (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Leukemia (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 表 1
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (表 1). Nat Immunol (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. PLoS Pathog (2014) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, 56-5981-82)被用于被用于流式细胞仪在小鼠样本上 (图 2). Nature (2013) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, 56-5981-82)被用于被用于流式细胞仪在小鼠样本上. Nat Med (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Br J Cancer (2014) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上. Stem Cells (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Stem Cells (2014) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上. Nat Immunol (2013) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 6a
赛默飞世尔 Ly 6C抗体(eBiosciences, D7)被用于被用于流式细胞仪在小鼠样本上 (图 6a). Nat Methods (2013) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s6a
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s6a). Nat Methods (2013) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(Caltag, clone RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2). Cell Death Dis (2013) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(Invitrogen, RB6-8C5)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 1). Gastroenterology (2013) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫细胞化学; 小鼠; 0.5 ug/ml
  • 免疫组化; 小鼠; 0.5 ug/ml
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于免疫细胞化学在小鼠样本上浓度为0.5 ug/ml 和 被用于免疫组化在小鼠样本上浓度为0.5 ug/ml. Proc Natl Acad Sci U S A (2013) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Am J Pathol (2013) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 表 1
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (表 1). PLoS ONE (2013) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 7
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 7). PLoS ONE (2013) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 1:250
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上浓度为1:250. Biomed Res Int (2013) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Front Immunol (2013) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上. Front Immunol (2013) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 7j
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 7j). Mucosal Immunol (2013) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Immunity (2012) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Invitrogen, D7)被用于被用于流式细胞仪在小鼠样本上. Immunity (2012) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, 13-5931)被用于被用于流式细胞仪在小鼠样本上. Exp Hematol (2012) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 人类
赛默飞世尔 Ly 6C抗体(Invitrogen, RB6-8C5)被用于被用于流式细胞仪在人类样本上. PLoS ONE (2011) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3
赛默飞世尔 Ly 6C抗体(Invitrogen, RM3030)被用于被用于流式细胞仪在小鼠样本上 (图 3). J Immunol (2011) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Haematologica (2011) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, ebio 25-5931)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2011) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Nature (2011) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBiosciences, D7)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2011) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2). J Cell Biol (2010) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 表 1
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (表 1). J Immunol (2010) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 9
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 9). J Immunol (2009) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1). J Immunol (2009) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1). Blood (2009) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1). Blood (2009) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2009) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 7
赛默飞世尔 Ly 6C抗体(eBioscience, 17-5931-82)被用于被用于流式细胞仪在小鼠样本上 (图 7). J Immunol (2009) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Invitrogen, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Blood (2009) ncbi
大鼠 单克隆(D7)
  • 免疫组化; 小鼠; 1:200; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, 13-5981-85)被用于被用于免疫组化在小鼠样本上浓度为1:200 (图 2). Immunol Cell Biol (2009) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Cell Tissue Res (2008) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上. Cell Res (2008) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1). Nat Immunol (2008) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1). Nat Immunol (2008) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1). Immunol Lett (2008) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠
赛默飞世尔 Ly 6C抗体(Invitrogen, RB6-8C5)被用于被用于免疫组化在小鼠样本上. Int J Parasitol (2008) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Blood (2008) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3
赛默飞世尔 Ly 6C抗体(eBiosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3). Gene Ther (2007) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, Rb6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2007) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2). Cancer Res (2007) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(Caltag, RB68C5)被用于被用于流式细胞仪在小鼠样本上 (图 1). Infect Immun (2007) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 2). Exp Dermatol (2006) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2006) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 1:20
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:20. Orthop Nurs (2005) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 8
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 8). Blood (2006) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Blood (2006) ncbi
大鼠 单克隆(RB6-8C5)
  • 抑制或激活实验; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于抑制或激活实验在小鼠样本上. Am J Physiol Lung Cell Mol Physiol (2006) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2005) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(noco, A14748)被用于被用于流式细胞仪在小鼠样本上 (图 1). FASEB J (2005) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上. J Exp Med (2005) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(eBioscience, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Proc Natl Acad Sci U S A (2005) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3
赛默飞世尔 Ly 6C抗体(Caltag Laboratories, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3). Infect Immun (2005) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3). Shock (2005) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Infect Dis (2004) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2004) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2004) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2004) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(eBioscience, D7)被用于被用于流式细胞仪在小鼠样本上 (图 2). J Immunol (2004) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4). Nat Cell Biol (2004) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 6
  • 流式细胞仪; 人类; 图 6
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 6) 和 被用于流式细胞仪在人类样本上 (图 6). J Exp Med (2004) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6?C8C5)被用于被用于流式细胞仪在小鼠样本上. Clin Exp Immunol (2003) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Blood (2004) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(Caltag, clone RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 2). Vaccine (2003) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3). Cell Immunol (2003) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 1:500; 图 5D
赛默飞世尔 Ly 6C抗体(noco, RB6-8C5)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:500 (图 5D). J Immunol (2003) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4
赛默飞世尔 Ly 6C抗体(Caltag, clone RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 4). Biol Blood Marrow Transplant (2003) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Blood (2003) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(Caltag, clone RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1). Vaccine (2003) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 8
赛默飞世尔 Ly 6C抗体(Caltag Laboratories, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 8). J Immunol (2001) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1, 2
赛默飞世尔 Ly 6C抗体(Caltag Laboratories, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 1, 2). J Immunol (2001) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 图 4
赛默飞世尔 Ly 6C抗体(Caltag, clone RB6-8C5)被用于被用于免疫组化在小鼠样本上 (图 4). Vaccine (2001) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 图 4
赛默飞世尔 Ly 6C抗体(Caltag, clone RB6-8C5)被用于被用于免疫组化在小鼠样本上 (图 4). Vaccine (2001) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Infect Immun (2000) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 2
赛默飞世尔 Ly 6C抗体(Caltag Laboratories, clone RB6-8C5)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 2). J Leukoc Biol (2000) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 表 4
赛默飞世尔 Ly 6C抗体(Caltag, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (表 4). Mech Ageing Dev (1999) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(CalTag, RB6.8C5)被用于被用于流式细胞仪在小鼠样本上. Mol Cell Biol (1996) ncbi
大鼠 单克隆(D7)
  • 免疫印迹; 小鼠; 图 3
赛默飞世尔 Ly 6C抗体(noco, D7)被用于被用于免疫印迹在小鼠样本上 (图 3). Immunogenetics (1986) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(noco, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. J Immunol (1987) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
赛默飞世尔 Ly 6C抗体(noco, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Eur J Immunol (1988) ncbi
大鼠 单克隆(D7)
  • 流式细胞仪; 小鼠; 图 1
赛默飞世尔 Ly 6C抗体(noco, D7)被用于被用于流式细胞仪在小鼠样本上 (图 1). Immunogenetics (1989) ncbi
艾博抗(上海)贸易有限公司
domestic rabbit 单克隆(EPR22909-135)
  • 免疫组化-石蜡切片; 小鼠; 1:200; 图 4g
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab238132)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:200 (图 4g). J Transl Med (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 图 3d
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25377)被用于被用于免疫组化在小鼠样本上 (图 3d). Front Immunol (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 抑制或激活实验; 小鼠; 图 3a
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25377)被用于被用于抑制或激活实验在小鼠样本上 (图 3a). Int J Biol Sci (2022) ncbi
大鼠 单克隆
  • 免疫组化-石蜡切片; 小鼠; 1:100; 图 2a
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab210204)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:100 (图 2a). Theranostics (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 图 2c
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25377)被用于被用于免疫组化在小鼠样本上 (图 2c). Cells (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 1:100; 图 e5a
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25377)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:100 (图 e5a). Nat Immunol (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 1:200; 图 3g
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25377)被用于被用于免疫组化在小鼠样本上浓度为1:200 (图 3g). Int J Mol Med (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, 25377)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. Microbiome (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫细胞化学; 小鼠; 图 6a
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25377)被用于被用于免疫细胞化学在小鼠样本上 (图 6a). Aging (Albany NY) (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 1:100; 图 1i
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25377)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:100 (图 1i). Am J Pathol (2021) ncbi
大鼠 单克隆(ER-MP20)
  • 免疫组化; 小鼠; 图 4h
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab15627)被用于被用于免疫组化在小鼠样本上 (图 4h). Cell Rep (2021) ncbi
大鼠 单克隆(ER-MP20)
  • 免疫组化-冰冻切片; 小鼠; 1:100; 图 8f
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab15627)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:100 (图 8f). Cell Mol Gastroenterol Hepatol (2021) ncbi
大鼠 单克隆(ER-MP20)
  • 免疫组化; 小鼠; 1:300
艾博抗(上海)贸易有限公司 Ly 6C抗体(AbCam, ab 15627)被用于被用于免疫组化在小鼠样本上浓度为1:300. PLoS ONE (2021) ncbi
大鼠 单克隆(E13 161-7)
  • 免疫组化; 小鼠; 1:1000; 图 s8-1c
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab51317)被用于被用于免疫组化在小鼠样本上浓度为1:1000 (图 s8-1c). elife (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 图 2b
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, RB6-8C5)被用于被用于免疫组化在小鼠样本上 (图 2b). Proc Natl Acad Sci U S A (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 0.5 ug/ml; 图 2h, s1b
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25377)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为0.5 ug/ml (图 2h, s1b). J Clin Invest (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 1:75; 图 3e
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25377)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:75 (图 3e). Nat Commun (2019) ncbi
大鼠 单克隆(ER-MP20)
  • 流式细胞仪; 小鼠; 图 2d
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ER-MP20)被用于被用于流式细胞仪在小鼠样本上 (图 2d). Front Immunol (2018) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠; 图 s4a
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, HK1.4)被用于被用于流式细胞仪在小鼠样本上 (图 s4a). Leukemia (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 1:500; 图 4i, 5h
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25377)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:500 (图 4i, 5h). J Neurovirol (2018) ncbi
大鼠 单克隆
  • 免疫组化-冰冻切片; 小鼠; 图 2
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab210204)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 2). J Am Heart Assoc (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 5c
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25024)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 5c). J Am Heart Assoc (2018) ncbi
大鼠 单克隆(ER-MP20)
  • 免疫组化; 小鼠; 1:500; 图 3f
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab15627)被用于被用于免疫组化在小鼠样本上浓度为1:500 (图 3f). J Neurosci (2018) ncbi
大鼠 单克隆(ER-MP20)
  • 免疫组化-石蜡切片; 小鼠; 1:1500; 图 5e
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab15627)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:1500 (图 5e). JCI Insight (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 1:250; 图 5e
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25377)被用于被用于免疫组化在小鼠样本上浓度为1:250 (图 5e). Mol Vis (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 图 4b
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, RB6-8C5)被用于被用于免疫组化在小鼠样本上 (图 4b). Oncotarget (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 1:2000; 图 2a
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab25377)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:2000 (图 2a). Nat Commun (2016) ncbi
大鼠 单克隆(E13 161-7)
  • 免疫印迹; 小鼠; 图 3b
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, 51317)被用于被用于免疫印迹在小鼠样本上 (图 3b). EMBO Mol Med (2016) ncbi
大鼠 单克隆(E13 161-7)
  • 免疫组化-石蜡切片; 小鼠; 图 1
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, ab51317)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 1). Nat Med (2015) ncbi
大鼠 单克隆(HK1.4)
  • 流式细胞仪; 小鼠
艾博抗(上海)贸易有限公司 Ly 6C抗体(Abcam, HK1.4)被用于被用于流式细胞仪在小鼠样本上. J Biol Chem (2014) ncbi
伯乐(Bio-Rad)公司
大鼠 单克隆(ER-MP20)
  • 免疫组化-自由浮动切片; 大鼠; 1:1000; 图 5b
伯乐(Bio-Rad)公司 Ly 6C抗体(Bio-Rad, MCA2389GA)被用于被用于免疫组化-自由浮动切片在大鼠样本上浓度为1:1000 (图 5b). Glia (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 1:500; 图 1c
伯乐(Bio-Rad)公司 Ly 6C抗体(AbD Serotec, MCA2387GA)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:500 (图 1c). Nat Commun (2021) ncbi
大鼠 单克隆(ER-MP20)
  • 免疫组化; 小鼠; 1:200; 图 5a
伯乐(Bio-Rad)公司 Ly 6C抗体(BioRad, MCA2389GA)被用于被用于免疫组化在小鼠样本上浓度为1:200 (图 5a). Diabetes (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 图 s2e
伯乐(Bio-Rad)公司 Ly 6C抗体(AbD Serotec, MCA2387T)被用于被用于免疫组化在小鼠样本上 (图 s2e). Cell Stem Cell (2017) ncbi
大鼠 单克隆(ER-MP20)
  • 流式细胞仪; 小鼠; 图 4
伯乐(Bio-Rad)公司 Ly 6C抗体(AbD Serotec, ER-MP20)被用于被用于流式细胞仪在小鼠样本上 (图 4). PLoS Pathog (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化; 小鼠; 1:100; 图 s6
伯乐(Bio-Rad)公司 Ly 6C抗体(AbD Serotec, RB6-8C5)被用于被用于免疫组化在小鼠样本上浓度为1:100 (图 s6). Science (2016) ncbi
大鼠 单克隆(ER-MP20)
  • 流式细胞仪; 小鼠; 图 3j
伯乐(Bio-Rad)公司 Ly 6C抗体(Bio-Rad, MCA2389A6457)被用于被用于流式细胞仪在小鼠样本上 (图 3j). Oncoimmunology (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-石蜡切片; 小鼠; 图 4
伯乐(Bio-Rad)公司 Ly 6C抗体(Serotec, MCA2387)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 4). Oncotarget (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫印迹; 小鼠; 1:500; 图 6
伯乐(Bio-Rad)公司 Ly 6C抗体(AbD Serotec, MCA2387)被用于被用于免疫印迹在小鼠样本上浓度为1:500 (图 6). Stem Cell Res Ther (2015) ncbi
大鼠 单克隆(ER-MP20)
  • 流式细胞仪; 小鼠
伯乐(Bio-Rad)公司 Ly 6C抗体(AbD Serotec, ER-Mp20)被用于被用于流式细胞仪在小鼠样本上. J Leukoc Biol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 免疫组化-冰冻切片; 小鼠; 图 2
伯乐(Bio-Rad)公司 Ly 6C抗体(Serotec, MCA2387GA)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 2). J Neuroinflammation (2014) ncbi
安迪生物R&D
大鼠 单克隆(177228)
  • 免疫细胞化学; 小鼠; 1:100; 图 4g
安迪生物R&D Ly 6C抗体(R&D Biosystems, 177228)被用于被用于免疫细胞化学在小鼠样本上浓度为1:100 (图 4g). Nat Commun (2021) ncbi
圣克鲁斯生物技术
大鼠 单克隆(ER-MP20)
  • 免疫组化; 小鼠; 图 5c
圣克鲁斯生物技术 Ly 6C抗体(Santa Cruz Biotechnology, sc52650)被用于被用于免疫组化在小鼠样本上 (图 5c). Nanomedicine (2019) ncbi
大鼠 单克隆(ER-MP20)
  • 免疫组化-冰冻切片; 小鼠; 1:200; 图 2
圣克鲁斯生物技术 Ly 6C抗体(Santa Cruz, sc-52650)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:200 (图 2). Oxid Med Cell Longev (2015) ncbi
Bio X Cell
大鼠 单克隆(MONTS-1)
  • 抑制或激活实验; 小鼠; 图 6b
Bio X Cell Ly 6C抗体(Bio X Cell, Monts-1)被用于被用于抑制或激活实验在小鼠样本上 (图 6b). J Immunol (2017) ncbi
Tonbo Biosciences
rat 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:400; 图 3s1a
Tonbo Biosciences Ly 6C抗体(Tonbo, 35-5931 U500)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 3s1a). elife (2021) ncbi
rat 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3a
Tonbo Biosciences Ly 6C抗体(TONBO Biosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Int J Mol Sci (2021) ncbi
rat 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2a
Tonbo Biosciences Ly 6C抗体(Tonbo Biosciences, 30-5931)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Immunity (2017) ncbi
碧迪BD
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 s14a
碧迪BD Ly 6C抗体(BD, 551461)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s14a). Nat Commun (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上. J Exp Med (2022) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 1:500; 图 4a
碧迪BD Ly 6C抗体(BD Biosciences, 551459)被用于被用于免疫组化在小鼠样本上浓度为1:500 (图 4a). JID Innov (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4f
碧迪BD Ly 6C抗体(BD Biosciences, 560601)被用于被用于流式细胞仪在小鼠样本上 (图 4f). Front Oncol (2022) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 4f
碧迪BD Ly 6C抗体(BD Biosciences, 553104)被用于被用于流式细胞仪在小鼠样本上 (图 4f). Front Oncol (2022) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD, 560596)被用于被用于流式细胞仪在小鼠样本上. Int J Mol Sci (2022) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:200; 图 1s1c
碧迪BD Ly 6C抗体(BD Biosciences, 560,595)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 1s1c). elife (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:50; 图 3f
碧迪BD Ly 6C抗体(BD Biosciences, 565369)被用于被用于流式细胞仪在小鼠样本上浓度为1:50 (图 3f). Proc Natl Acad Sci U S A (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:300; 图 5d, s3a
碧迪BD Ly 6C抗体(BD Biosciences, 561104)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 5d, s3a). Development (2022) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:300; 图 5d, s3a
碧迪BD Ly 6C抗体(BD Biosciences, 561085)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 5d, s3a). Development (2022) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s5
碧迪BD Ly 6C抗体(BD Biosciences, 553104)被用于被用于流式细胞仪在小鼠样本上 (图 s5). Mol Ther Oncolytics (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s5
碧迪BD Ly 6C抗体(BD Biosciences, 560602)被用于被用于流式细胞仪在小鼠样本上 (图 s5). Mol Ther Oncolytics (2022) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 图 7a
  • 流式细胞仪; 小鼠; 图 6b, s10a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 7a) 和 被用于流式细胞仪在小鼠样本上 (图 6b, s10a). Cell Mol Life Sci (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 2, s1
碧迪BD Ly 6C抗体(BD Bioscience, 560600)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 2, s1). Front Immunol (2022) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 3f
碧迪BD Ly 6C抗体(BD Pharmingen, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 3f). Cancer Sci (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s4b
碧迪BD Ly 6C抗体(BD Biosciences, 561105)被用于被用于流式细胞仪在小鼠样本上 (图 s4b). J Immunother Cancer (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1g, s1h, s1i, s5f
碧迪BD Ly 6C抗体(BD Biosciences, 562700)被用于被用于流式细胞仪在小鼠样本上 (图 s1g, s1h, s1i, s5f). J Exp Med (2022) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 8c
碧迪BD Ly 6C抗体(BD Biosciences, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 8c). J Clin Invest (2022) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 1:250; 图 s7
碧迪BD Ly 6C抗体(BD, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:250 (图 s7). Cell Rep (2022) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s3a
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 s3a). Helicobacter (2022) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1e
碧迪BD Ly 6C抗体(BD, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上 (图 s1e). J Exp Med (2022) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2i
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2i). Front Immunol (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6c
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 6c). Sci Rep (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 6d
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 6d). Sci Rep (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4a
碧迪BD Ly 6C抗体(BD Biosciences, 557661)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Cell Rep (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:350; 图 5b, 5d
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:350 (图 5b, 5d). Nat Commun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s5
碧迪BD Ly 6C抗体(BD Biosciences, 560603)被用于被用于流式细胞仪在小鼠样本上 (图 s5). JCI Insight (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 7c
碧迪BD Ly 6C抗体(BD Biosciences, 560596)被用于被用于流式细胞仪在小鼠样本上 (图 7c). JCI Insight (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100
碧迪BD Ly 6C抗体(BD Pharmingen, 560600)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. Cells (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 1a
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 1a). Aging Dis (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 4b
碧迪BD Ly 6C抗体(BD Biosciences, 562728)被用于被用于流式细胞仪在小鼠样本上 (图 4b). Nat Commun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s5a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s5a). JCI Insight (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上. Front Immunol (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:500; 图 4a, s3a
碧迪BD Ly 6C抗体(BD Biosciences, 551460)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 4a, s3a). Clin Exp Metastasis (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:400; 图 2j
碧迪BD Ly 6C抗体(BD Bioscience, 561236)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 2j). Proc Natl Acad Sci U S A (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:200; 图 1j
碧迪BD Ly 6C抗体(BD Bioscience, 562728)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 1j). Proc Natl Acad Sci U S A (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s8
碧迪BD Ly 6C抗体(BD Bioscience, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 s8). Adv Sci (Weinh) (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:100; 图 1c
碧迪BD Ly 6C抗体(BD, AL-21)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 1c). Sci Rep (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:130; 图 3a
碧迪BD Ly 6C抗体(BD Horizon, 562700)被用于被用于流式细胞仪在小鼠样本上浓度为1:130 (图 3a). MBio (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 s3c
碧迪BD Ly 6C抗体(BD Biosciences, 562737)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s3c). Nat Commun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3s1d
碧迪BD Ly 6C抗体(BD Pharmingen, 560603)被用于被用于流式细胞仪在小鼠样本上 (图 3s1d). elife (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5d
碧迪BD Ly 6C抗体(BD Biosciences, 560601)被用于被用于流式细胞仪在小鼠样本上 (图 5d). Cell Death Dis (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 0.7 ug/ml; 图 8e
碧迪BD Ly 6C抗体(BD, 560594)被用于被用于流式细胞仪在小鼠样本上浓度为0.7 ug/ml (图 8e). Basic Res Cardiol (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 5 ug/ml; 图 4b, 4e
碧迪BD Ly 6C抗体(BD, 551460)被用于被用于流式细胞仪在小鼠样本上浓度为5 ug/ml (图 4b, 4e). Basic Res Cardiol (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 7b
碧迪BD Ly 6C抗体(BD Biosciences, 560596)被用于被用于流式细胞仪在小鼠样本上 (图 7b). Br J Pharmacol (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:500; 图 2b
碧迪BD Ly 6C抗体(BD Pharmingen, 551460)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 2b). NPJ Regen Med (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 人类; 1:250; 图 s9
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在人类样本上浓度为1:250 (图 s9). PLoS Pathog (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 3h, 4d
碧迪BD Ly 6C抗体(BD, 560601)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 3h, 4d). Transl Psychiatry (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s19
碧迪BD Ly 6C抗体(BD Biosciences, 551461)被用于被用于流式细胞仪在小鼠样本上 (图 s19). Nat Commun (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s19
碧迪BD Ly 6C抗体(BD Biosciences, 553104)被用于被用于流式细胞仪在小鼠样本上 (图 s19). Nat Commun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s4f
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s4f). Proc Natl Acad Sci U S A (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3c
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3c). Sci Rep (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 3c
碧迪BD Ly 6C抗体(BD, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 3c). Sci Rep (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 5c
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 5c). Sci Transl Med (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:200; 图 3c
碧迪BD Ly 6C抗体(BD, AL21)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 3c). Nat Neurosci (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:150; 图 3c, e8c
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:150 (图 3c, e8c). Nat Neurosci (2021) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Pharmingen, 553128)被用于被用于流式细胞仪在小鼠样本上. Antioxidants (Basel) (2021) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 3c
碧迪BD Ly 6C抗体(BD biosciences, 561085)被用于被用于流式细胞仪在小鼠样本上 (图 3c). Biomedicines (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4a
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Infect Immun (2021) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 1c
碧迪BD Ly 6C抗体(BD Biosciences, 560600)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 1c). elife (2020) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:100; 图 s3-1a
碧迪BD Ly 6C抗体(BD Biosciences, 561085)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s3-1a). elife (2020) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上. Front Immunol (2020) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:100; 图 s1-1b
碧迪BD Ly 6C抗体(BD Biosciences, 560595)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s1-1b). elife (2020) ncbi
大鼠 单克隆(1A8)
碧迪BD Ly 6C抗体(BD, 561236)被用于. Aging Cell (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:50; 图 7a
碧迪BD Ly 6C抗体(BD Biosciences, 562737)被用于被用于流式细胞仪在小鼠样本上浓度为1:50 (图 7a). elife (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 1e
碧迪BD Ly 6C抗体(BD Pharmingen, 551460)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 1e). elife (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4c, 6s2e
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4c, 6s2e). elife (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 2b
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 2b). elife (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s3, s5a
碧迪BD Ly 6C抗体(BD, 565369)被用于被用于流式细胞仪在小鼠样本上 (图 s3, s5a). Aging Cell (2020) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 4b, s4b, s5a
碧迪BD Ly 6C抗体(BD, 562727)被用于被用于流式细胞仪在小鼠样本上 (图 4b, s4b, s5a). Aging Cell (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4d
碧迪BD Ly 6C抗体(BD Biosciences, 560600)被用于被用于流式细胞仪在小鼠样本上 (图 4d). BMC Cardiovasc Disord (2020) ncbi
大鼠 单克隆(1A8)
  • 免疫细胞化学; 小鼠; 1:200; 图 3a
碧迪BD Ly 6C抗体(BD Pharmingen, 551459)被用于被用于免疫细胞化学在小鼠样本上浓度为1:200 (图 3a). Nat Commun (2020) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 人类; 1:200; 图 4s1f
碧迪BD Ly 6C抗体(BD Pharmingen, 551459)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:200 (图 4s1f). elife (2020) ncbi
大鼠 单克隆(1A8)
  • 免疫细胞化学; 小鼠; 图 1f
  • 免疫组化; 小鼠; 图 1e
碧迪BD Ly 6C抗体(BD Biosciences, 551461)被用于被用于免疫细胞化学在小鼠样本上 (图 1f) 和 被用于免疫组化在小鼠样本上 (图 1e). J Cell Mol Med (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 1c
碧迪BD Ly 6C抗体(BD, 561084)被用于被用于流式细胞仪在小鼠样本上 (图 1c). Int J Biol Sci (2020) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 1e
碧迪BD Ly 6C抗体(BD, 560593)被用于被用于流式细胞仪在小鼠样本上 (图 1e). J Clin Invest (2020) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:400; 图 3g
碧迪BD Ly 6C抗体(BD Pharmingen, 553128)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 3g). Nat Commun (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s4
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s4). Sci Adv (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上. Proc Natl Acad Sci U S A (2020) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 图 2c
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于免疫组化在小鼠样本上 (图 2c). Blood Adv (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6s2
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 6s2). elife (2020) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:400; 图 s15c
碧迪BD Ly 6C抗体(BD, 560595)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 s15c). Nat Commun (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:400; 图 s15c
碧迪BD Ly 6C抗体(BD, 560600)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 s15c). Nat Commun (2020) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:200; 图 4a
碧迪BD Ly 6C抗体(BD Biosciences, 560595)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 4a). Nat Commun (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 e1a, e1c
碧迪BD Ly 6C抗体(BD Biosciences, 562737)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 e1a, e1c). Nature (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4a
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Front Pharmacol (2019) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 2 ug/ml; 图 s1e
碧迪BD Ly 6C抗体(BD Bioscience, AL-21)被用于被用于流式细胞仪在小鼠样本上浓度为2 ug/ml (图 s1e). Science (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 s2
碧迪BD Ly 6C抗体(BD Biosciences, 565369)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s2). Nature (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). Eur Respir J (2020) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4b
碧迪BD Ly 6C抗体(BD, 1AB)被用于被用于流式细胞仪在小鼠样本上 (图 4b). Biomolecules (2019) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 4b
碧迪BD Ly 6C抗体(BD, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 4b). Biomolecules (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:150; 图 e7b
碧迪BD Ly 6C抗体(BD Bioscience, 560603)被用于被用于流式细胞仪在小鼠样本上浓度为1:150 (图 e7b). Nature (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1b
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1b). JCI Insight (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1k
碧迪BD Ly 6C抗体(BD Biosciences, 562700)被用于被用于流式细胞仪在小鼠样本上 (图 s1k). Cell (2019) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s2i
碧迪BD Ly 6C抗体(BD Biosciences, 561085)被用于被用于流式细胞仪在小鼠样本上 (图 s2i). Cell (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 7a
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 7a). J Clin Invest (2019) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s2b
碧迪BD Ly 6C抗体(BD Biosciences, 560593)被用于被用于流式细胞仪在小鼠样本上 (图 s2b). Cell Rep (2019) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上. Nature (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上. Nature (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 e8a
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 e8a). Nature (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s8e
碧迪BD Ly 6C抗体(BD, 560603)被用于被用于流式细胞仪在小鼠样本上 (图 s8e). Nat Commun (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:800; 图 s1a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:800 (图 s1a). Nature (2019) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 1:100; 图 2e
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:100 (图 2e). J Clin Invest (2019) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s7c
碧迪BD Ly 6C抗体(BD Biosciences, 560592)被用于被用于流式细胞仪在小鼠样本上 (图 s7c). Cell Metab (2019) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 6a
碧迪BD Ly 6C抗体(BD, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 6a). Cell (2019) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2h
  • 免疫组化; 小鼠; 图 3d
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2h) 和 被用于免疫组化在小鼠样本上 (图 3d). Sci Adv (2019) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s19a
碧迪BD Ly 6C抗体(BD, AL21)被用于被用于流式细胞仪在小鼠样本上 (图 s19a). Nat Commun (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s20b
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s20b). Nat Commun (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2a, s3c
碧迪BD Ly 6C抗体(BD, 560603)被用于被用于流式细胞仪在小鼠样本上 (图 2a, s3c). Cell Rep (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s2a, s2b
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s2a, s2b). J Pathol (2019) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s3b
碧迪BD Ly 6C抗体(BD, 560596)被用于被用于流式细胞仪在小鼠样本上 (图 s3b). Cell (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s3d
碧迪BD Ly 6C抗体(BD, 551461)被用于被用于流式细胞仪在小鼠样本上 (图 s3d). Cell (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s3b
碧迪BD Ly 6C抗体(BD, 553128)被用于被用于流式细胞仪在小鼠样本上 (图 s3b). Cell (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Nat Commun (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 4
碧迪BD Ly 6C抗体(BD Pharminger, RB6-8C)被用于被用于流式细胞仪在小鼠样本上 (图 4). J Diabetes Res (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:1000; 图 s3a
碧迪BD Ly 6C抗体(BD, 560601)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 s3a). Nat Commun (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:400; 图 s3c
碧迪BD Ly 6C抗体(BD, 561237)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 s3c). Nat Commun (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:300; 图 1d
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 1d). J Clin Invest (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 6f
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 6f). J Clin Invest (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1
碧迪BD Ly 6C抗体(BD Biosciences, IA8)被用于被用于流式细胞仪在小鼠样本上 (图 s1). Front Immunol (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4a
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Sci Rep (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 3b
碧迪BD Ly 6C抗体(BD Pharmingen, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 3b). Sci Rep (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2d
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2d). Front Immunol (2018) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 1:600; 图 s2b
碧迪BD Ly 6C抗体(BD, 551459)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:600 (图 s2b). Science (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5a
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5a). Cancer Sci (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 5a
碧迪BD Ly 6C抗体(BD Pharmingen, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 5a). Cancer Sci (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4c
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4c). J Immunol Res (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2
碧迪BD Ly 6C抗体(BD, 560602)被用于被用于流式细胞仪在小鼠样本上 (图 s2). Front Immunol (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 3a
碧迪BD Ly 6C抗体(BD, 560595)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Front Immunol (2018) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 5,000 ug/ml; 图 2b
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为5,000 ug/ml (图 2b). Front Physiol (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3e
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3e). J Clin Invest (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 5c
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 5c). J Biol Chem (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 2a, 2c
碧迪BD Ly 6C抗体(BD, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 2a, 2c). Ann Rheum Dis (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 人类; 图 s1a
碧迪BD Ly 6C抗体(BD Biosciences, 560603)被用于被用于流式细胞仪在人类样本上 (图 s1a). Immunity (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 1a
碧迪BD Ly 6C抗体(BD Pharmingen, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Clin Invest (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s5
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s5). Eur J Immunol (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2f
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2f). Sci Immunol (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3a
碧迪BD Ly 6C抗体(BD-Pharmingen, 553128)被用于被用于流式细胞仪在小鼠样本上 (图 3a). Proc Natl Acad Sci U S A (2018) ncbi
大鼠 单克隆(AL-21)
  • 免疫组化; 小鼠; 图 5a
碧迪BD Ly 6C抗体(BD Bioscience, 553104)被用于被用于免疫组化在小鼠样本上 (图 5a). Nat Commun (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:100; 图 s4a
碧迪BD Ly 6C抗体(BD Biosciences, AL21)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s4a). Nat Commun (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 s4a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s4a). Nat Commun (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 1b
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 1b). J Exp Med (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:200; 图 s9a
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s9a). J Clin Invest (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s5a
碧迪BD Ly 6C抗体(BD Pharmingen, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 s5a). Nat Commun (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Mucosal Immunol (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s1
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 s1). Front Microbiol (2018) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:100; 图 6c
碧迪BD Ly 6C抗体(BD Biosciences, 553128)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 6c). Nat Commun (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1g
碧迪BD Ly 6C抗体(BD Biosciences, 551461)被用于被用于流式细胞仪在小鼠样本上 (图 1g). J Neurosci (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 1d
碧迪BD Ly 6C抗体(BD Biosciences, 553104)被用于被用于流式细胞仪在小鼠样本上 (图 1d). J Neurosci (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2c
碧迪BD Ly 6C抗体(BD PharMingen, 560602)被用于被用于流式细胞仪在小鼠样本上 (图 2c). Cell (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4d
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4d). Nature (2018) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 5a
碧迪BD Ly 6C抗体(BD, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 5a). Antimicrob Agents Chemother (2018) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 6c
  • 流式细胞仪; 小鼠; 图 5a
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 6c) 和 被用于流式细胞仪在小鼠样本上 (图 5a). Antimicrob Agents Chemother (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5a). J Lipid Res (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:50; 图 1b
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:50 (图 1b). Front Immunol (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s3a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s3a). Cancer Res (2018) ncbi
大鼠 单克隆(1A8)
  • 其他; 小鼠; 图 5l
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于其他在小鼠样本上 (图 5l). J Exp Med (2017) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:200; 图 4d
碧迪BD Ly 6C抗体(BD Biosciences, 560596)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 4d). Endocrinology (2018) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s8a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s8a). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:400; 图 s15a
碧迪BD Ly 6C抗体(BD, 551461)被用于被用于流式细胞仪在小鼠样本上浓度为1:400 (图 s15a). Nat Commun (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 表 s1
碧迪BD Ly 6C抗体(BD Pharmingen, 552093)被用于被用于流式细胞仪在小鼠样本上 (表 s1). J Clin Invest (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2b
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2b). J Clin Invest (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:200; 图 10s3a
碧迪BD Ly 6C抗体(BD, 561084)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 10s3a). elife (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1g
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s1g). J Exp Med (2017) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 1b
碧迪BD Ly 6C抗体(Becton Dickinson (BD), AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 3h
碧迪BD Ly 6C抗体(BD Pharmingen, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 3h). PLoS Genet (2017) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 1:1000; 图 7c
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于免疫组化在小鼠样本上浓度为1:1000 (图 7c). Infect Immun (2017) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 1:200; 图 7a
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:200 (图 7a). Sci Rep (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 EV5
碧迪BD Ly 6C抗体(BD Pharmingen, 551460)被用于被用于流式细胞仪在小鼠样本上 (图 EV5). EMBO Rep (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5d
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5d). Front Immunol (2017) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:100; 图 5c
碧迪BD Ly 6C抗体(BD Biosciences, 562727)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 5c). Cell Death Dis (2017) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s6
碧迪BD Ly 6C抗体(BD Bioscience, 560594)被用于被用于流式细胞仪在小鼠样本上 (图 s6). Mol Cell (2017) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 1,3
碧迪BD Ly 6C抗体(BD Biosciences, 581237)被用于被用于流式细胞仪在小鼠样本上 (图 1,3). Oncoimmunology (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1,3
碧迪BD Ly 6C抗体(BD Biosciences, 551460)被用于被用于流式细胞仪在小鼠样本上 (图 1,3). Oncoimmunology (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3c
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3c). Nat Commun (2017) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Pharmingen, 552093)被用于被用于流式细胞仪在小鼠样本上. Front Immunol (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 S3B
碧迪BD Ly 6C抗体(BD, 551461)被用于被用于流式细胞仪在小鼠样本上 (图 S3B). BMC Cancer (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3). Eur J Immunol (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s1
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s1). PLoS Pathog (2017) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:500; 图 S3B
碧迪BD Ly 6C抗体(BD Bioscience, 553104)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 S3B). Nat Commun (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4a
碧迪BD Ly 6C抗体(BD, 551461)被用于被用于流式细胞仪在小鼠样本上 (图 4a). Methods Mol Biol (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2g
碧迪BD Ly 6C抗体(BD Biosciences, 560600)被用于被用于流式细胞仪在小鼠样本上 (图 2g). Sci Rep (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4b
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4b). Proc Natl Acad Sci U S A (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1b
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1b). J Exp Med (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 1b
碧迪BD Ly 6C抗体(BD, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 1b). J Exp Med (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:300; 图 3a
碧迪BD Ly 6C抗体(BD Pharmingen, 551459)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 3a). Hepatology (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5c
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 5c). J Exp Med (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上. SOJ Immunol (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1b
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1b). Mol Med Rep (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 st2
碧迪BD Ly 6C抗体(BD, 553104)被用于被用于流式细胞仪在小鼠样本上 (图 st2). Nature (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Proc Natl Acad Sci U S A (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2e
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s2e). Nature (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD, 561237)被用于被用于流式细胞仪在小鼠样本上. Cell (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 3c
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 3c). PLoS Pathog (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4a). J Immunol (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上. Eur J Immunol (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 表 1
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (表 1). Nat Commun (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 图 2d
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 2d). Blood (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 1:1000; 图 4b
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:1000 (图 4b). PLoS Negl Trop Dis (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4b
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4b). J Leukoc Biol (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 4b
碧迪BD Ly 6C抗体(BD Bioscience, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 4b). J Leukoc Biol (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2c
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s2c). J Clin Invest (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 2a
碧迪BD Ly 6C抗体(BD Pharmingen, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Infect Immun (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2a
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2a). Infect Immun (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 1a
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Immunol (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1a). J Immunol (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3d
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3d). J Leukoc Biol (2017) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 1:300; 图 s6o
碧迪BD Ly 6C抗体(BD科学, 551459)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:300 (图 s6o). Nature (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 图 1c
  • 流式细胞仪; 小鼠; 图 1a
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 1c) 和 被用于流式细胞仪在小鼠样本上 (图 1a). J Exp Med (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 2
碧迪BD Ly 6C抗体(BD Bioscience, 553128)被用于被用于流式细胞仪在小鼠样本上 (图 2). elife (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 1g
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 1g). Nat Med (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 6a). Sci Rep (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 6a
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 6a). Sci Rep (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫细胞化学; 小鼠; 图 s4
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于免疫细胞化学在小鼠样本上 (图 s4). Theranostics (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s7a
碧迪BD Ly 6C抗体(BD Bioscience, 560601)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s7a). Nat Immunol (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s2a
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). J Allergy Clin Immunol (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s2a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s2a). J Allergy Clin Immunol (2017) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 2
碧迪BD Ly 6C抗体(BD Biosciences, 560600)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 2). Sci Rep (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 1:200; 图 5
碧迪BD Ly 6C抗体(BD Pharmigen, 551459)被用于被用于免疫组化在小鼠样本上浓度为1:200 (图 5). Cancer Discov (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4b
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4b). Cancer Res (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s3
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Sci Rep (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:66; 图 1e
碧迪BD Ly 6C抗体(BD Biosciences, 560602)被用于被用于流式细胞仪在小鼠样本上浓度为1:66 (图 1e). Nat Cell Biol (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:66; 图 1e
碧迪BD Ly 6C抗体(BD Biosciences, 562728)被用于被用于流式细胞仪在小鼠样本上浓度为1:66 (图 1e). Nat Cell Biol (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:200; 图 6
碧迪BD Ly 6C抗体(BD, 562727)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 6). Oncoimmunology (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3b
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3b). PLoS Pathog (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 3b
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 3b). PLoS Pathog (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 s1a
碧迪BD Ly 6C抗体(BD Pharmingen, 553128)被用于被用于流式细胞仪在小鼠样本上 (图 s1a). Development (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s4
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s4). Cancer Discov (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3k
碧迪BD Ly 6C抗体(BD, 551460)被用于被用于流式细胞仪在小鼠样本上 (图 3k). Oncoimmunology (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 2j
碧迪BD Ly 6C抗体(BD, 553104)被用于被用于流式细胞仪在小鼠样本上 (图 2j). Oncoimmunology (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 图 3
碧迪BD Ly 6C抗体(BD, 557661)被用于被用于流式细胞仪在小鼠样本上 (图 3). Oncotarget (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1). Cell (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s2
碧迪BD Ly 6C抗体(BD Bioscience, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 s2). Cell (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:300; 图 s3d
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:300 (图 s3d). Nat Immunol (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 2f
碧迪BD Ly 6C抗体(BD Biosciences, A1-21)被用于被用于流式细胞仪在小鼠样本上 (图 2f). Science (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2f
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2f). Science (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:2400; 图 2
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:2400 (图 2). PLoS ONE (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 1:1000; 图 5a
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:1000 (图 5a). Infect Immun (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 1:500; 图 4
碧迪BD Ly 6C抗体(BD Pharmingen, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:500 (图 4). J Lipid Res (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 1:400; 图 s6
碧迪BD Ly 6C抗体(BD Pharmingen, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:400 (图 s6). Nat Commun (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 大鼠; 图 2d
碧迪BD Ly 6C抗体(BD, 560596)被用于被用于流式细胞仪在大鼠样本上 (图 2d). Stem Cell Reports (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 3
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 3). J Intern Med (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200; 图 s5a
碧迪BD Ly 6C抗体(BD, 551460)被用于被用于流式细胞仪在小鼠样本上浓度为1:200 (图 s5a). Acta Neuropathol (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2). elife (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 2
碧迪BD Ly 6C抗体(BD Bioscience, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 2). elife (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2). PLoS ONE (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 2
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 2). PLoS ONE (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:1000; 图 8b
碧迪BD Ly 6C抗体(BD Biosciences, 552093)被用于被用于流式细胞仪在小鼠样本上浓度为1:1000 (图 8b). Sci Rep (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上. PLoS Pathog (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 2
碧迪BD Ly 6C抗体(BD Pharmingen, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 2). Microbes Infect (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2). Dis Model Mech (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 4
碧迪BD Ly 6C抗体(BD Pharmingen, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 4). PLoS Pathog (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4). PLoS Pathog (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:800; 图 s3
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:800 (图 s3). Nat Commun (2016) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD, 553129)被用于被用于流式细胞仪在小鼠样本上. Nature (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD, AL-21)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠; 1:100; 图 2
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:100 (图 2). EMBO Mol Med (2016) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 e6
碧迪BD Ly 6C抗体(BD Pharmingen, 560592)被用于被用于流式细胞仪在小鼠样本上 (图 e6). Nature (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 e6
碧迪BD Ly 6C抗体(BD Pharmingen, 560601)被用于被用于流式细胞仪在小鼠样本上 (图 e6). Nature (2015) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 表 s6
碧迪BD Ly 6C抗体(BD, 560593)被用于被用于流式细胞仪在小鼠样本上 (表 s6). Nat Immunol (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2
碧迪BD Ly 6C抗体(BD Biosciences, 560602)被用于被用于流式细胞仪在小鼠样本上 (图 2). Nat Immunol (2016) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 图 5c
碧迪BD Ly 6C抗体(BD Biosciences, 551459)被用于被用于免疫组化在小鼠样本上 (图 5c). Sci Rep (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100; 图 s10
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s10). Nat Commun (2015) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:100; 图 s10
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s10). Nat Commun (2015) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠
碧迪BD Ly 6C抗体(BD Pharmingen, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上. Nat Immunol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2
碧迪BD Ly 6C抗体(BD Bioscience, 551460)被用于被用于流式细胞仪在小鼠样本上 (图 2). Oncotarget (2015) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 s1d
碧迪BD Ly 6C抗体(BD, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 s1d). Cell Death Differ (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 人类; 1:200; 图 4
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在人类样本上浓度为1:200 (图 4). MBio (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 6
碧迪BD Ly 6C抗体(BD Pharmingen, 561236)被用于被用于流式细胞仪在小鼠样本上 (图 6). Oncotarget (2015) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Pharmingen, AL-21)被用于被用于流式细胞仪在小鼠样本上. Mucosal Immunol (2016) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 5
碧迪BD Ly 6C抗体(BD Biosciences, 551461)被用于被用于流式细胞仪在小鼠样本上 (图 5). PLoS ONE (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 7
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 7). Cell Res (2015) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 7
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 7). Cell Res (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上. Immunobiology (2015) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:100; 图 s4
碧迪BD Ly 6C抗体(BD Biosciences, 560595)被用于被用于流式细胞仪在小鼠样本上浓度为1:100 (图 s4). Nat Commun (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 7
碧迪BD Ly 6C抗体(BD Pharmingen, 551461)被用于被用于流式细胞仪在小鼠样本上 (图 7). Nat Commun (2015) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 7
碧迪BD Ly 6C抗体(BD Pharmingen, 553104)被用于被用于流式细胞仪在小鼠样本上 (图 7). Nat Commun (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1). J Exp Med (2015) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 1
碧迪BD Ly 6C抗体(BD, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 1). J Exp Med (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2015) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 人类; 1:100
碧迪BD Ly 6C抗体(BD Pharmingen, 561236)被用于被用于免疫组化-冰冻切片在人类样本上浓度为1:100. Breast Cancer Res (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:100
碧迪BD Ly 6C抗体(BD Pharmingen, 551461)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. PLoS ONE (2015) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 1:100
碧迪BD Ly 6C抗体(BD Pharmingen, 553104)被用于被用于流式细胞仪在小鼠样本上浓度为1:100. PLoS ONE (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 560600)被用于被用于流式细胞仪在小鼠样本上. Cardiovasc Res (2015) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上. Basic Res Cardiol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 S3d
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 S3d). FASEB J (2015) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 4e
碧迪BD Ly 6C抗体(BD, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 4e). Sci Transl Med (2015) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠; 图 5d
碧迪BD Ly 6C抗体(BD Pharmingen, 551459)被用于被用于免疫组化在小鼠样本上 (图 5d). PLoS ONE (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:500; 图 4
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:500 (图 4). MBio (2015) ncbi
大鼠 单克隆(1A8)
  • 免疫印迹; 小鼠; 1:1000; 图 6
碧迪BD Ly 6C抗体(BD Pharmigen, 551459)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 6). PLoS ONE (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Pharmingen, 561236)被用于被用于流式细胞仪在小鼠样本上. Anticancer Res (2015) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 553104)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 1:200
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上浓度为1:200. Nat Commun (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 人类
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在人类样本上. J Immunol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1). J Immunol (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD, 553128)被用于被用于流式细胞仪在小鼠样本上. Lab Anim (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上. PLoS Pathog (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 表 1
碧迪BD Ly 6C抗体(BD Pharmigen, 1A8)被用于被用于流式细胞仪在小鼠样本上 (表 1). J Neuroinflammation (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1A
碧迪BD Ly 6C抗体(BD, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1A). Acta Neuropathol (2015) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s3
碧迪BD Ly 6C抗体(BD, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 s3). Brain (2015) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 s1
碧迪BD Ly 6C抗体(BD Bioscience, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 s1). J Immunol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 4
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 4). Infect Immun (2015) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠; 1:500
碧迪BD Ly 6C抗体(BD, 553128)被用于被用于流式细胞仪在小鼠样本上浓度为1:500. Neuro Oncol (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 s5
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 s5). Nat Immunol (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 2c
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 2c). Infect Immun (2015) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1
碧迪BD Ly 6C抗体(BD Pharmingen, 551461)被用于被用于流式细胞仪在小鼠样本上 (图 1). Am J Pathol (2014) ncbi
大鼠 单克隆(1A8)
  • 免疫组化; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 551459)被用于被用于免疫组化在小鼠样本上. PLoS ONE (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上. J Immunol (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2014) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 1
碧迪BD Ly 6C抗体(BD, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 1). Cell Death Differ (2014) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠
碧迪BD Ly 6C抗体(BD, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上. EMBO Mol Med (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Pharmingen, RB6-8 C5)被用于被用于流式细胞仪在小鼠样本上. J Cell Mol Med (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 557661)被用于被用于流式细胞仪在小鼠样本上. Mol Cell Biol (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上. J Exp Med (2014) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上. J Exp Med (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(Pharmingen, 1A8)被用于被用于流式细胞仪在小鼠样本上. J Biol Chem (2014) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD, AL-21)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上. PLoS ONE (2014) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 1
碧迪BD Ly 6C抗体(BD, 560594)被用于被用于流式细胞仪在小鼠样本上 (图 1). Cell (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1
碧迪BD Ly 6C抗体(BD, 551461)被用于被用于流式细胞仪在小鼠样本上 (图 1). Cell (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于流式细胞仪在小鼠样本上. J Leukoc Biol (2014) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, RB6-8C5)被用于被用于流式细胞仪在小鼠样本上. Blood (2014) ncbi
大鼠 单克隆(1A8)
  • 免疫细胞化学; 小鼠
碧迪BD Ly 6C抗体(BD Pharmingen, 551461)被用于被用于免疫细胞化学在小鼠样本上. Mol Immunol (2014) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠; 图 2c
碧迪BD Ly 6C抗体(BD Bioscience, AL-21)被用于被用于流式细胞仪在小鼠样本上 (图 2c). J Immunol (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 图 1c
碧迪BD Ly 6C抗体(BD Bioscience, 1A8)被用于被用于流式细胞仪在小鼠样本上 (图 1c). J Immunol (2014) ncbi
大鼠 单克隆(AL-21)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, AL-21)被用于被用于流式细胞仪在小鼠样本上. Int Immunol (2014) ncbi
大鼠 单克隆(1A8)
  • 流式细胞仪; 小鼠; 表 1
碧迪BD Ly 6C抗体(BD, 551460)被用于被用于流式细胞仪在小鼠样本上 (表 1). PLoS ONE (2013) ncbi
大鼠 单克隆(RB6-8C5)
  • 流式细胞仪; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences Pharmingen, 561084)被用于被用于流式细胞仪在小鼠样本上. Am J Pathol (2012) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-石蜡切片; 小鼠; 图 7
碧迪BD Ly 6C抗体(BD Pharmingen, 551459)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 7). PLoS ONE (2011) ncbi
大鼠 单克隆(1A8)
  • 免疫组化-冰冻切片; 小鼠
  • 免疫组化-石蜡切片; 小鼠
碧迪BD Ly 6C抗体(BD Biosciences, 1A8)被用于被用于免疫组化-冰冻切片在小鼠样本上 和 被用于免疫组化-石蜡切片在小鼠样本上. Hepatology (2010) ncbi
文章列表
  1. Yang P, Qin H, Li Y, Xiao A, Zheng E, Zeng H, et al. CD36-mediated metabolic crosstalk between tumor cells and macrophages affects liver metastasis. Nat Commun. 2022;13:5782 pubmed 出版商
  2. Zhang G, Li M, Zhou D, Yang X, Zhang W, Gao R. Loss of endothelial EMCN drives tumor lung metastasis through the premetastatic niche. J Transl Med. 2022;20:446 pubmed 出版商
  3. Gawish R, Maier B, Obermayer G, Watzenboeck M, Gorki A, Quattrone F, et al. A neutrophil-B-cell axis impacts tissue damage control in a mouse model of intraabdominal bacterial infection via Cxcr4. elife. 2022;11: pubmed 出版商
  4. Feng K, Meng P, Zhang M, Zou X, Li S, Huang C, et al. IL-24 Contributes to Neutrophilic Asthma in an IL-17A-Dependent Manner and Is Suppressed by IL-37. Allergy Asthma Immunol Res. 2022;14:505-527 pubmed 出版商
  5. Zhang X, Xiong T, Gao L, Wang Y, Liu L, Tian T, et al. Extracellular fibrinogen-binding protein released by intracellular Staphylococcus aureus suppresses host immunity by targeting TRAF3. Nat Commun. 2022;13:5493 pubmed 出版商
  6. Amaral E, Foreman T, Namasivayam S, Hilligan K, Kauffman K, Barbosa Bomfim C, et al. GPX4 regulates cellular necrosis and host resistance in Mycobacterium tuberculosis infection. J Exp Med. 2022;219: pubmed 出版商
  7. Hemmi T, Ainai A, Hashiguchi T, Tobiume M, Kanno T, Iwata Yoshikawa N, et al. Intranasal vaccination induced cross-protective secretory IgA antibodies against SARS-CoV-2 variants with reducing the potential risk of lung eosinophilic immunopathology. Vaccine. 2022;40:5892-5903 pubmed 出版商
  8. Han X, Li B, Bao J, Wu Z, Chen C, Ni J, et al. Endoplasmic reticulum stress promoted acinar cell necroptosis in acute pancreatitis through cathepsinB-mediated AP-1 activation. Front Immunol. 2022;13:968639 pubmed 出版商
  9. Lee A, Pingali S, Pinilla Ibarz J, Atchison M, Koumenis C, Argon Y, et al. Loss of AID exacerbates the malignant progression of CLL. Leukemia. 2022;36:2430-2442 pubmed 出版商
  10. Eggink L, Hoober J. Resolution of Eczema with Multivalent Peptides. JID Innov. 2022;2:100142 pubmed 出版商
  11. Smith K, Minns D, McHugh B, Holloway R, O CONNOR R, Williams A, et al. The antimicrobial peptide cathelicidin drives development of experimental autoimmune encephalomyelitis in mice by affecting Th17 differentiation. PLoS Biol. 2022;20:e3001554 pubmed 出版商
  12. Piliponsky A, Sharma K, Quach P, Brokaw A, Nguyen S, Orvis A, et al. Mast cell-derived factor XIIIA contributes to sexual dimorphic defense against group B streptococcal infections. J Clin Invest. 2022;132: pubmed 出版商
  13. Mart xed nez Nieto G, Teppo H, Petrelius N, Izzi V, Devarajan R, Pet xe4 ist xf6 T, et al. Upregulated integrin α11 in the stroma of cutaneous squamous cell carcinoma promotes skin carcinogenesis. Front Oncol. 2022;12:981009 pubmed 出版商
  14. Davis C, Zhang W, Bah T, Roese N, Allen E, Leung P, et al. Age-dependent cognitive impairment, hydrocephalus and leukocyte infiltration in transgenic mice with endothelial expression of human EPHX2. NPJ Aging. 2022;8:9 pubmed 出版商
  15. El Naccache D, Chen F, Palma M, Lemenze A, Fischer M, Wu W, et al. Adenosine metabolized from extracellular ATP promotes type 2 immunity through triggering A2BAR signaling in intestinal epithelial cells. Cell Rep. 2022;40:111150 pubmed 出版商
  16. Xie F, Zhou X, Su P, Li H, Tu Y, Du J, et al. Breast cancer cell-derived extracellular vesicles promote CD8+ T cell exhaustion via TGF-β type II receptor signaling. Nat Commun. 2022;13:4461 pubmed 出版商
  17. Xu D, Ma R, Ju Y, Song X, Niu B, Hong W, et al. Cholesterol sulfate alleviates ulcerative colitis by promoting cholesterol biosynthesis in colonic epithelial cells. Nat Commun. 2022;13:4428 pubmed 出版商
  18. Yu C, Yadav M, Kang M, Jittayasothorn Y, Dong L, Egwuagu C. Photoreceptor Cells Constitutively Express IL-35 and Promote Ocular Immune Privilege. Int J Mol Sci. 2022;23: pubmed 出版商
  19. Yong L, Yu Y, Li B, Ge H, Zhen Q, Mao Y, et al. Calcium/calmodulin-dependent protein kinase IV promotes imiquimod-induced psoriatic inflammation via macrophages and keratinocytes in mice. Nat Commun. 2022;13:4255 pubmed 出版商
  20. Philpott J, Kazimierczyk S, Korgaonkar P, Bordt E, Zois J, Vasudevan C, et al. RXRα Regulates the Development of Resident Tissue Macrophages. Immunohorizons. 2022;6:366-372 pubmed 出版商
  21. Shi Z, Takeuchi T, Nakanishi Y, Kato T, Beck K, Nagata R, et al. A Japanese Herbal Formula, Daikenchuto, Alleviates Experimental Colitis by Reshaping Microbial Profiles and Enhancing Group 3 Innate Lymphoid Cells. Front Immunol. 2022;13:903459 pubmed 出版商
  22. Ding R, Li H, Liu Y, Ou W, Zhang X, Chai H, et al. Activating cGAS-STING axis contributes to neuroinflammation in CVST mouse model and induces inflammasome activation and microglia pyroptosis. J Neuroinflammation. 2022;19:137 pubmed 出版商
  23. Liu X, Viswanadhapalli S, Kumar S, Lee T, Moore A, Ma S, et al. Targeting LIPA independent of its lipase activity is a therapeutic strategy in solid tumors via induction of endoplasmic reticulum stress. Nat Cancer. 2022;: pubmed 出版商
  24. Baik J, Park H, Kataru R, Savetsky I, Ly C, Shin J, et al. TGF-β1 mediates pathologic changes of secondary lymphedema by promoting fibrosis and inflammation. Clin Transl Med. 2022;12:e758 pubmed 出版商
  25. Zhang H, Liu J, Zhou Y, Qu M, Wang Y, Guo K, et al. Neutrophil extracellular traps mediate m6A modification and regulates sepsis-associated acute lung injury by activating ferroptosis in alveolar epithelial cells. Int J Biol Sci. 2022;18:3337-3357 pubmed 出版商
  26. Aiken T, Erbe A, Zebertavage L, Komjathy D, Feils A, Rodriguez M, et al. Mechanism of effective combination radio-immunotherapy against 9464D-GD2, an immunologically cold murine neuroblastoma. J Immunother Cancer. 2022;10: pubmed 出版商
  27. Fern xe1 ndez Arjona M, Le xf3 n Rodr xed guez A, Grondona J, L xf3 pez xc1 valos M. Long-term priming of hypothalamic microglia is associated with energy balance disturbances under diet-induced obesity. Glia. 2022;70:1734-1761 pubmed 出版商
  28. Taniguchi H, Caeser R, Chavan S, Zhan Y, Chow A, Manoj P, et al. WEE1 inhibition enhances the antitumor immune response to PD-L1 blockade by the concomitant activation of STING and STAT1 pathways in SCLC. Cell Rep. 2022;39:110814 pubmed 出版商
  29. Liu Y, Deguchi Y, Wei D, Liu F, Moussalli M, Deguchi E, et al. Rapid acceleration of KRAS-mutant pancreatic carcinogenesis via remodeling of tumor immune microenvironment by PPARδ. Nat Commun. 2022;13:2665 pubmed 出版商
  30. Omatsu Y, Aiba S, Maeta T, Higaki K, Aoki K, Watanabe H, et al. Runx1 and Runx2 inhibit fibrotic conversion of cellular niches for hematopoietic stem cells. Nat Commun. 2022;13:2654 pubmed 出版商
  31. Li J, Chordia M, Zhang Y, Zong H, Pan D, Zuo Z. Critical role of FPR1 in splenocyte migration into brain to worsen inflammation and ischemic brain injury in mice. Theranostics. 2022;12:3024-3044 pubmed 出版商
  32. Lees Shepard J, Stoessel S, Chandler J, Bouchard K, Bento P, Apuzzo L, et al. An anti-ACVR1 antibody exacerbates heterotopic ossification by fibro-adipogenic progenitors in fibrodysplasia ossificans progressiva mice. J Clin Invest. 2022;132: pubmed 出版商
  33. ANDERSON S, Roberts J, Ghena N, Irvin E, Schwakopf J, Cooperstein I, et al. Neuronal apoptosis drives remodeling states of microglia and shifts in survival pathway dependence. elife. 2022;11: pubmed 出版商
  34. Kumagai Y, Futoh Y, Miyato H, Ohzawa H, Yamaguchi H, Saito S, et al. Effect of Systemic or Intraperitoneal Administration of Anti-PD-1 Antibody for Peritoneal Metastases from Gastric Cancer. In Vivo. 2022;36:1126-1135 pubmed 出版商
  35. Ozmadenci D, Shankara Narayanan J, Andrew J, Ojalill M, Barrie A, Jiang S, et al. Tumor FAK orchestrates immunosuppression in ovarian cancer via the CD155/TIGIT axis. Proc Natl Acad Sci U S A. 2022;119:e2117065119 pubmed 出版商
  36. Bartsch P, Kilian C, Hellmig M, Paust H, Borchers A, Sivayoganathan A, et al. Th17 cell plasticity towards a T-bet-dependent Th1 phenotype is required for bacterial control in Staphylococcus aureus infection. PLoS Pathog. 2022;18:e1010430 pubmed 出版商
  37. Saxena V, Piao W, Li L, Paluskievicz C, Xiong Y, Simon T, et al. Treg tissue stability depends on lymphotoxin beta-receptor- and adenosine-receptor-driven lymphatic endothelial cell responses. Cell Rep. 2022;39:110727 pubmed 出版商
  38. Meléndez E, Chondronasiou D, Mosteiro L, Mart xed nez de Villarreal J, Fern xe1 ndez Alfara M, Lynch C, et al. Natural killer cells act as an extrinsic barrier for in vivo reprogramming. Development. 2022;149: pubmed 出版商
  39. Larue M, Parker S, Puccini J, Cammer M, Kimmelman A, Bar Sagi D. Metabolic reprogramming of tumor-associated macrophages by collagen turnover promotes fibrosis in pancreatic cancer. Proc Natl Acad Sci U S A. 2022;119:e2119168119 pubmed 出版商
  40. Ngamsri K, Fuhr A, Schindler K, Simelitidis M, Hagen M, Zhang Y, et al. Sevoflurane Dampens Acute Pulmonary Inflammation via the Adenosine Receptor A2B and Heme Oxygenase-1. Cells. 2022;11: pubmed 出版商
  41. El Sayes N, Walsh S, Vito A, Reihani A, Ask K, Wan Y, et al. IFNAR blockade synergizes with oncolytic VSV to prevent virus-mediated PD-L1 expression and promote antitumor T cell activity. Mol Ther Oncolytics. 2022;25:16-30 pubmed 出版商
  42. Zhang Y, Huo F, Cao Q, Jia R, Huang Q, Wang Z, et al. FimH confers mannose-targeting ability to Bacillus Calmette-Guerin for improved immunotherapy in bladder cancer. J Immunother Cancer. 2022;10: pubmed 出版商
  43. Fischer A, Wannemacher J, Christ S, Koopmans T, Kadri S, Zhao J, et al. Neutrophils direct preexisting matrix to initiate repair in damaged tissues. Nat Immunol. 2022;23:518-531 pubmed 出版商
  44. Seung H, Wröbel J, Wadle C, B xfc hler T, Chiang D, Rettkowski J, et al. P2Y12-dependent activation of hematopoietic stem and progenitor cells promotes emergency hematopoiesis after myocardial infarction. Basic Res Cardiol. 2022;117:16 pubmed 出版商
  45. Chen K, Hu Q, Xie Z, Yang G. Monocyte NLRP3-IL-1β Hyperactivation Mediates Neuronal and Synaptic Dysfunction in Perioperative Neurocognitive Disorder. Adv Sci (Weinh). 2022;9:e2104106 pubmed 出版商
  46. Yau A, Globisch M, Onyeogaziri F, Conze L, Smith R, Jauhiainen S, et al. Inflammation and neutrophil extracellular traps in cerebral cavernous malformation. Cell Mol Life Sci. 2022;79:206 pubmed 出版商
  47. Wemlinger S, Parker Harp C, Yu B, Hardy I, Seefeldt M, Matsuda J, et al. Preclinical Analysis of Candidate Anti-Human CD79 Therapeutic Antibodies Using a Humanized CD79 Mouse Model. J Immunol. 2022;208:1566-1584 pubmed 出版商
  48. Abbas Z, GEORGE C, Ancliffe M, Howlett M, Jones A, Kuchibhotla M, et al. Conventional Therapies Deplete Brain-Infiltrating Adaptive Immune Cells in a Mouse Model of Group 3 Medulloblastoma Implicating Myeloid Cells as Favorable Immunotherapy Targets. Front Immunol. 2022;13:837013 pubmed 出版商
  49. Wang Q, Chen Y, Xie Y, Yang D, Sun Y, Yuan Y, et al. Histone H1.2 promotes hepatocarcinogenesis by regulating signal transducer and activator of transcription 3 signaling. Cancer Sci. 2022;113:1679-1692 pubmed 出版商
  50. Tang T, Huang X, Zhang G, Lu M, Hong Z, Wang M, et al. Oncolytic peptide LTX-315 induces anti-pancreatic cancer immunity by targeting the ATP11B-PD-L1 axis. J Immunother Cancer. 2022;10: pubmed 出版商
  51. Ziaei A, Garcia Miralles M, Radulescu C, Sidik H, Silvin A, Bae H, et al. Ermin deficiency leads to compromised myelin, inflammatory milieu, and susceptibility to demyelinating insult. Brain Pathol. 2022;32:e13064 pubmed 出版商
  52. Liu M, Wu C, Luo S, Hua Q, Chen H, Weng Y, et al. PERK reprograms hematopoietic progenitor cells to direct tumor-promoting myelopoiesis in the spleen. J Exp Med. 2022;219: pubmed 出版商
  53. Suzuki K, Tsuchiya M, Yoshida S, Ogawa K, Chen W, Kanzaki M, et al. Tissue accumulation of neutrophil extracellular traps mediates muscle hyperalgesia in a mouse model. Sci Rep. 2022;12:4136 pubmed 出版商
  54. Araujo A, Abaurrea A, Azcoaga P, L xf3 pez Velazco J, Manzano S, Rodriguez J, et al. Stromal oncostatin M cytokine promotes breast cancer progression by reprogramming the tumor microenvironment. J Clin Invest. 2022;132: pubmed 出版商
  55. Zhang M, Cui J, Lee D, Yuen V, Chiu D, Goh C, et al. Hypoxia-induced macropinocytosis represents a metabolic route for liver cancer. Nat Commun. 2022;13:954 pubmed 出版商
  56. Li M, Ong C, Langou xeb t Astri xe9 C, Tan L, Verma A, Yang Y, et al. Heparan sulfate-dependent RAGE oligomerization is indispensable for pathophysiological functions of RAGE. elife. 2022;11: pubmed 出版商
  57. Conrad C, Yildiz D, Cleary S, Margraf A, Cook L, Schlomann U, et al. ADAM8 signaling drives neutrophil migration and ARDS severity. JCI Insight. 2022;7: pubmed 出版商
  58. Niemi J, DeFrancesco Oranburg T, Cox A, Lindborg J, Echevarria F, McCluskey J, et al. The Conditioning Lesion Response in Dorsal Root Ganglion Neurons Is Inhibited in Oncomodulin Knock-Out Mice. Eneuro. 2022;9: pubmed 出版商
  59. Thakkar D, Paliwal S, Dharmadhikari B, Guan S, Liu L, Kar S, et al. Rationally targeted anti-VISTA antibody that blockades the C-C' loop region can reverse VISTA immune suppression and remodel the immune microenvironment to potently inhibit tumor growth in an Fc independent manner. J Immunother Cancer. 2022;10: pubmed 出版商
  60. Wang H, Wang Q, Yang C, Guo M, Cui X, Jing Z, et al. Bacteroides acidifaciens in the gut plays a protective role against CD95-mediated liver injury. Gut Microbes. 2022;14:2027853 pubmed 出版商
  61. Wolpaw A, Grossmann L, Dessau J, Dong M, Aaron B, Brafford P, et al. Epigenetic state determines inflammatory sensing in neuroblastoma. Proc Natl Acad Sci U S A. 2022;119: pubmed 出版商
  62. Mach xe1 x10d ek T, Leontovy x10d R, x160 m xed dov xe1 B, Majer M, Vondr xe1 x10d ek O, Vojt x11b chov xe1 I, et al. Mechanisms of the host immune response and helminth-induced pathology during Trichobilharzia regenti (Schistosomatidae) neuroinvasion in mice. PLoS Pathog. 2022;18:e1010302 pubmed 出版商
  63. Osokine I, Siewiera J, Rideaux D, Ma S, Tsukui T, Erlebacher A. Gene silencing by EZH2 suppresses TGF-β activity within the decidua to avert pregnancy-adverse wound healing at the maternal-fetal interface. Cell Rep. 2022;38:110329 pubmed 出版商
  64. Almishri W, Swain L, D Mello C, Le T, Urbanski S, Nguyen H. ADAM Metalloproteinase Domain 17 Regulates Cholestasis-Associated Liver Injury and Sickness Behavior Development in Mice. Front Immunol. 2021;12:779119 pubmed 出版商
  65. Vaillant L, Oster P, McMillan B, Orozco Fernandez E, Velin D. GM-CSF is key in the efficacy of vaccine-induced reduction of Helicobacter pylori infection. Helicobacter. 2022;27:e12875 pubmed 出版商
  66. Gopal A, Ibrahim R, Fuller M, Umlandt P, Parker J, Tran J, et al. TIRAP drives myelosuppression through an Ifnγ-Hmgb1 axis that disrupts the endothelial niche in mice. J Exp Med. 2022;219: pubmed 出版商
  67. Feng L, Li C, Zeng L, Gao D, Sun Y, Zhong L, et al. MARCH3 negatively regulates IL-3-triggered inflammatory response by mediating K48-linked polyubiquitination and degradation of IL-3Rα. Signal Transduct Target Ther. 2022;7:21 pubmed 出版商
  68. Clayer E, Frank D, Anderton H, Zhang S, Kueh A, Heim V, et al. ZC3H12C expression in dendritic cells is necessary to prevent lymphadenopathy of skin-draining lymph nodes. Immunol Cell Biol. 2022;100:160-173 pubmed 出版商
  69. Theruvath J, Ménard M, Smith B, Linde M, Coles G, Dalton G, et al. Anti-GD2 synergizes with CD47 blockade to mediate tumor eradication. Nat Med. 2022;28:333-344 pubmed 出版商
  70. Du Y, Peng Q, Cheng D, Pan T, Sun W, Wang H, et al. Cancer cell-expressed BTNL2 facilitates tumour immune escape via engagement with IL-17A-producing γδ T cells. Nat Commun. 2022;13:231 pubmed 出版商
  71. Yang M, Park M, Lee J, Oh B, Kang K, Kim Y, et al. Non-invasive administration of AAV to target lung parenchymal cells and develop SARS-CoV-2-susceptible mice. Mol Ther. 2022;: pubmed 出版商
  72. Lin J, Chen Y, Zhu H, Cheng K, Wang H, Yu X, et al. Lymphatic Reconstruction in Kidney Allograft Aggravates Chronic Rejection by Promoting Alloantigen Presentation. Front Immunol. 2021;12:796260 pubmed 出版商
  73. Ngamsri K, Putri R, Jans C, Schindler K, Fuhr A, Zhang Y, et al. CXCR4 and CXCR7 Inhibition Ameliorates the Formation of Platelet-Neutrophil Complexes and Neutrophil Extracellular Traps through Adora2b Signaling. Int J Mol Sci. 2021;22: pubmed 出版商
  74. Chakraborty R, Maltz M, Del Castillo D, Tandel P, Messih N, Anguiano M, et al. Selective Targeting of Tumour Necrosis Factor Receptor 1 Induces Stable Protection from Crohn's-Like Ileitis in TNFΔARE Mice. J Crohns Colitis. 2022;16:978-991 pubmed 出版商
  75. Tatsumi N, Codrington A, El Fenej J, Phondge V, Kumamoto Y. Effective CD4 T cell priming requires repertoire scanning by CD301b+ migratory cDC2 cells upon lymph node entry. Sci Immunol. 2021;6:eabg0336 pubmed 出版商
  76. Arinrad S, Wilke J, Seelbach A, Doeren J, Hindermann M, Butt U, et al. NMDAR1 autoantibodies amplify behavioral phenotypes of genetic white matter inflammation: a mild encephalitis model with neuropsychiatric relevance. Mol Psychiatry. 2021;: pubmed 出版商
  77. Bhattacharjee O, Ayyangar U, Kurbet A, Lakshmanan V, Palakodeti D, Ginhoux F, et al. Epithelial-Macrophage Crosstalk Initiates Sterile Inflammation in Embryonic Skin. Front Immunol. 2021;12:718005 pubmed 出版商
  78. Fahy N, Palomares Cabeza V, Lolli A, Witte Bouma J, Merino A, Ridwan Y, et al. Chondrogenically Primed Human Mesenchymal Stem Cells Persist and Undergo Early Stages of Endochondral Ossification in an Immunocompetent Xenogeneic Model. Front Immunol. 2021;12:715267 pubmed 出版商
  79. Deng F, Hu J, Yang X, Sun Q, Lin Z, Zhao B, et al. Gut Microbial Metabolite Pravastatin Attenuates Intestinal Ischemia/Reperfusion Injury Through Promoting IL-13 Release From Type II Innate Lymphoid Cells via IL-33/ST2 Signaling. Front Immunol. 2021;12:704836 pubmed 出版商
  80. Fearon A, Slabber C, Kuklin A, Bachofner M, Tortola L, Pohlmeier L, et al. Fibroblast growth factor receptor 3 in hepatocytes protects from toxin-induced liver injury and fibrosis. iScience. 2021;24:103143 pubmed 出版商
  81. Cha S, Lee S, Wang J, Zhao Q, Bai D. Enhanced Circadian Clock in MSCs-Based Cytotherapy Ameliorates Age-Related Temporomandibular Joint Condyle Degeneration. Int J Mol Sci. 2021;22: pubmed 出版商
  82. Van Maldegem F, Valand K, Cole M, Patel H, Angelova M, Rana S, et al. Characterisation of tumour microenvironment remodelling following oncogene inhibition in preclinical studies with imaging mass cytometry. Nat Commun. 2021;12:5906 pubmed 出版商
  83. Schünke H, Göbel U, Dikic I, Pasparakis M. OTULIN inhibits RIPK1-mediated keratinocyte necroptosis to prevent skin inflammation in mice. Nat Commun. 2021;12:5912 pubmed 出版商
  84. Snyder L, Doherty C, Mercer H, Denkers E. Induction of IL-12p40 and type 1 immunity by Toxoplasma gondii in the absence of the TLR-MyD88 signaling cascade. PLoS Pathog. 2021;17:e1009970 pubmed 出版商
  85. Liu H, Pedros C, Kong K, Canonigo Balancio A, Xue W, Altman A. Leveraging the Treg-intrinsic CTLA4-PKCη signaling pathway for cancer immunotherapy. J Immunother Cancer. 2021;9: pubmed 出版商
  86. Tian N, Hu L, Lu Y, Tong L, Feng M, Liu Q, et al. TKT maintains intestinal ATP production and inhibits apoptosis-induced colitis. Cell Death Dis. 2021;12:853 pubmed 出版商
  87. Yang C, Lei L, Collins J, Briones M, Ma L, Sturdevant G, et al. Chlamydia evasion of neutrophil host defense results in NLRP3 dependent myeloid-mediated sterile inflammation through the purinergic P2X7 receptor. Nat Commun. 2021;12:5454 pubmed 出版商
  88. Rizvi Z, Dalal R, Sadhu S, Kumar Y, Kumar S, Gupta S, et al. High-salt diet mediates interplay between NK cells and gut microbiota to induce potent tumor immunity. Sci Adv. 2021;7:eabg5016 pubmed 出版商
  89. Onodera T, Kita S, Adachi Y, Moriyama S, Sato A, Nomura T, et al. A SARS-CoV-2 antibody broadly neutralizes SARS-related coronaviruses and variants by coordinated recognition of a virus-vulnerable site. Immunity. 2021;54:2385-2398.e10 pubmed 出版商
  90. Droho S, Cuda C, Perlman H, Lavine J. Macrophage-derived interleukin-6 is necessary and sufficient for choroidal angiogenesis. Sci Rep. 2021;11:18084 pubmed 出版商
  91. Lin J, Liu H, Fukumoto T, Zundell J, Yan Q, Tang C, et al. Targeting the IRE1α/XBP1s pathway suppresses CARM1-expressing ovarian cancer. Nat Commun. 2021;12:5321 pubmed 出版商
  92. Bruno K, Macomb L, Morales Lara A, Mathews J, Frisancho J, Yang A, et al. Sex-Specific Effects of Plastic Caging in Murine Viral Myocarditis. Int J Mol Sci. 2021;22: pubmed 出版商
  93. Gurley J, Gmyrek G, Hargis E, Bishop G, Carr D, Elliott M. The Chx10-Traf3 Knockout Mouse as a Viable Model to Study Neuronal Immune Regulation. Cells. 2021;10: pubmed 出版商
  94. Cortés A, Solas M, Pejenaute A, Abellanas M, Garcia Lacarte M, Aymerich M, et al. Expression of Endothelial NOX5 Alters the Integrity of the Blood-Brain Barrier and Causes Loss of Memory in Aging Mice. Antioxidants (Basel). 2021;10: pubmed 出版商
  95. Ma M, Li G, Qi M, Jiang W, Zhou R. Inhibition of the Inflammasome Activity of NLRP3 Attenuates HDM-Induced Allergic Asthma. Front Immunol. 2021;12:718779 pubmed 出版商
  96. Zhang Y, McGrath K, Ayoub E, Kingsley P, Yu H, Fegan K, et al. Mds1CreERT2, an inducible Cre allele specific to adult-repopulating hematopoietic stem cells. Cell Rep. 2021;36:109562 pubmed 出版商
  97. Otto N, Pereverzeva L, Léopold V, Ramirez Moral I, Roelofs J, van Heijst J, et al. Hypoxia-Inducible Factor-1α in Macrophages, but Not in Neutrophils, Is Important for Host Defense during Klebsiella pneumoniae-Induced Pneumosepsis. Mediators Inflamm. 2021;2021:9958281 pubmed 出版商
  98. Moreira T, Mangani D, Cox L, Leibowitz J, Lobo E, Oliveira M, et al. PD-L1+ and XCR1+ dendritic cells are region-specific regulators of gut homeostasis. Nat Commun. 2021;12:4907 pubmed 出版商
  99. Ren J, Xu Y, Lu X, Wang L, Ide S, Hall G, et al. Twist1 in podocytes ameliorates podocyte injury and proteinuria by limiting CCL2-dependent macrophage infiltration. JCI Insight. 2021;6: pubmed 出版商
  100. He Y, Li H, Yao J, Zhong H, Kuang Y, Li X, et al. HO‑1 knockdown upregulates the expression of VCAM‑1 to induce neutrophil recruitment during renal ischemia‑reperfusion injury. Int J Mol Med. 2021;48: pubmed 出版商
  101. Petley E, Koay H, Henderson M, Sek K, Todd K, Keam S, et al. MAIT cells regulate NK cell-mediated tumor immunity. Nat Commun. 2021;12:4746 pubmed 出版商
  102. Tillie R, Theelen T, van Kuijk K, Temmerman L, de Bruijn J, Gijbels M, et al. A Switch from Cell-Associated to Soluble PDGF-B Protects against Atherosclerosis, despite Driving Extramedullary Hematopoiesis. Cells. 2021;10: pubmed 出版商
  103. Hoffman R, Huang S, Chalasani G, Vallejo A. Disparate Recruitment and Retention of Plasmacytoid Dendritic Cells to The Small Intestinal Mucosa between Young and Aged Mice. Aging Dis. 2021;12:1183-1196 pubmed 出版商
  104. Guo D, Yamamoto M, Hernandez C, Khodadadi H, Baban B, Stranahan A. Beige adipocytes mediate the neuroprotective and anti-inflammatory effects of subcutaneous fat in obese mice. Nat Commun. 2021;12:4623 pubmed 出版商
  105. Coudert L, Osseni A, Gangloff Y, Schaeffer L, Leblanc P. The ESCRT-0 subcomplex component Hrs/Hgs is a master regulator of myogenesis via modulation of signaling and degradation pathways. BMC Biol. 2021;19:153 pubmed 出版商
  106. Forman R, Logunova L, Smith H, Wemyss K, Mair I, Boon L, et al. Trichuris muris infection drives cell-intrinsic IL4R alpha independent colonic RELMα+ macrophages. PLoS Pathog. 2021;17:e1009768 pubmed 出版商
  107. Lu C, Liu Z, Klement J, Yang D, Merting A, Poschel D, et al. WDR5-H3K4me3 epigenetic axis regulates OPN expression to compensate PD-L1 function to promote pancreatic cancer immune escape. J Immunother Cancer. 2021;9: pubmed 出版商
  108. Lopez Sanz L, Bernal S, Jimenez Castilla L, Prieto I, La Manna S, Gomez Lopez S, et al. Fcγ receptor activation mediates vascular inflammation and abdominal aortic aneurysm development. Clin Transl Med. 2021;11:e463 pubmed 出版商
  109. Gao D, Salomonis N, Henderlight M, Woods C, Thakkar K, Grom A, et al. IFN-γ is essential for alveolar macrophage-driven pulmonary inflammation in macrophage activation syndrome. JCI Insight. 2021;6: pubmed 出版商
  110. Jiao L, Eickhoff R, Egners A, Jumpertz S, Roth J, Erdem M, et al. Deletion of mTOR in liver epithelial cells enhances hepatic metastasis of colon cancer. J Pathol. 2021;255:270-284 pubmed 出版商
  111. Mathä L, Romera Hernandez M, Steer C, Yin Y, Orangi M, Shim H, et al. Migration of Lung Resident Group 2 Innate Lymphoid Cells Link Allergic Lung Inflammation and Liver Immunity. Front Immunol. 2021;12:679509 pubmed 出版商
  112. Okamura T, Hashimoto Y, Mori J, Yamaguchi M, Majima S, Senmaru T, et al. ILC2s Improve Glucose Metabolism Through the Control of Saturated Fatty Acid Absorption Within Visceral Fat. Front Immunol. 2021;12:669629 pubmed 出版商
  113. Van De Velde L, Allen E, Crawford J, Wilson T, Guy C, Russier M, et al. Neuroblastoma Formation Requires Unconventional CD4 T Cells and Arginase-1-Dependent Myeloid Cells. Cancer Res. 2021;81:5047-5059 pubmed 出版商
  114. Hutton C, Heider F, Blanco Gómez A, Banyard A, Kononov A, Zhang X, et al. Single-cell analysis defines a pancreatic fibroblast lineage that supports anti-tumor immunity. Cancer Cell. 2021;: pubmed 出版商
  115. Petermann M, Orfanos Z, Sellau J, Gharaibeh M, Lotter H, Fleischer B, et al. CCR2 Deficiency Impairs Ly6Clo and Ly6Chi Monocyte Responses in Orientia tsutsugamushi Infection. Front Immunol. 2021;12:670219 pubmed 出版商
  116. Tulotta C, Lefley D, Moore C, Amariutei A, Spicer Hadlington A, Quayle L, et al. IL-1B drives opposing responses in primary tumours and bone metastases; harnessing combination therapies to improve outcome in breast cancer. NPJ Breast Cancer. 2021;7:95 pubmed 出版商
  117. Wang B, Li J, Jiao J, Xu M, Luo Y, Wang F, et al. Myeloid DJ-1 deficiency protects acetaminophen-induced acute liver injury through decreasing inflammatory response. Aging (Albany NY). 2021;13:18879-18893 pubmed 出版商
  118. Wutschka J, Kast B, Sator Schmitt M, Appak Baskoy S, Hess J, Sinn H, et al. JUNB suppresses distant metastasis by influencing the initial metastatic stage. Clin Exp Metastasis. 2021;38:411-423 pubmed 出版商
  119. Ambrosi T, Sinha R, Steininger H, Hoover M, Murphy M, Koepke L, et al. Distinct skeletal stem cell types orchestrate long bone skeletogenesis. elife. 2021;10: pubmed 出版商
  120. Goyette M, Elkholi I, Apcher C, Kuasne H, Rothlin C, Muller W, et al. Targeting Axl favors an antitumorigenic microenvironment that enhances immunotherapy responses by decreasing Hif-1α levels. Proc Natl Acad Sci U S A. 2021;118: pubmed 出版商
  121. Ortega Molina A, Lebrero Fernández C, Sanz A, Deleyto Seldas N, Plata Gómez A, Menéndez C, et al. Inhibition of Rag GTPase signaling in mice suppresses B cell responses and lymphomagenesis with minimal detrimental trade-offs. Cell Rep. 2021;36:109372 pubmed 出版商
  122. Olson B, Zhu X, Norgard M, Diba P, Levasseur P, Buenafe A, et al. Chronic cerebral lipocalin 2 exposure elicits hippocampal neuronal dysfunction and cognitive impairment. Brain Behav Immun. 2021;97:102-118 pubmed 出版商
  123. Jeong D, Kim H, Kim H, Kang M, Jung H, Oh Y, et al. Soluble Fas ligand drives autoantibody-induced arthritis by binding to DR5/TRAIL-R2. elife. 2021;10: pubmed 出版商
  124. Hering L, Katkeviciute E, Schwarzfischer M, Niechcial A, Riggs J, Wawrzyniak M, et al. Macrophages Compensate for Loss of Protein Tyrosine Phosphatase N2 in Dendritic Cells to Protect from Elevated Colitis. Int J Mol Sci. 2021;22: pubmed 出版商
  125. Mai J, Li Z, Xia X, Zhang J, Li J, Liu H, et al. Synergistic Activation of Antitumor Immunity by a Particulate Therapeutic Vaccine. Adv Sci (Weinh). 2021;8:2100166 pubmed 出版商
  126. Bohannon C, Ende Z, Cao W, Mboko W, Ranjan P, Kumar A, et al. Influenza Virus Infects and Depletes Activated Adaptive Immune Responders. Adv Sci (Weinh). 2021;8:e2100693 pubmed 出版商
  127. Innamarato P, Morse J, Mackay A, Asby S, Beatty M, Blauvelt J, et al. Intralesional injection of rose bengal augments the efficacy of gemcitabine chemotherapy against pancreatic tumors. BMC Cancer. 2021;21:756 pubmed 出版商
  128. Nordlohne J, Hulsmann I, Schwafertz S, Zgrajek J, Grundmann M, von Vietinghoff S, et al. A flow cytometry approach reveals heterogeneity in conventional subsets of murine renal mononuclear phagocytes. Sci Rep. 2021;11:13251 pubmed 出版商
  129. Shen Y, Shami A, Moritz L, Larose H, Manske G, Ma Q, et al. TCF21+ mesenchymal cells contribute to testis somatic cell development, homeostasis, and regeneration in mice. Nat Commun. 2021;12:3876 pubmed 出版商
  130. Glausen T, Carrillo G, Jin R, Boyle J, Saeij J, Wohlfert E, et al. The Toxoplasma Polymorphic Effector GRA15 Mediates Seizure Induction by Modulating Interleukin-1 Signaling in the Brain. MBio. 2021;12:e0133121 pubmed 出版商
  131. Ryu S, Shchukina I, Youm Y, Qing H, Hilliard B, Dlugos T, et al. Ketogenic diet restrains aging-induced exacerbation of coronavirus infection in mice. elife. 2021;10: pubmed 出版商
  132. Uyanik B, Goloudina A, Akbarali A, Grigorash B, Petukhov A, Singhal S, et al. Inhibition of the DNA damage response phosphatase PPM1D reprograms neutrophils to enhance anti-tumor immune responses. Nat Commun. 2021;12:3622 pubmed 出版商
  133. Al Zaeed N, Budai Z, Szondy Z, Sarang Z. TAM kinase signaling is indispensable for proper skeletal muscle regeneration in mice. Cell Death Dis. 2021;12:611 pubmed 出版商
  134. Shan Z, Li L, Atkins C, Wang M, Wen Y, Jeong J, et al. Chitinase 3-like-1 contributes to acetaminophen-induced liver injury by promoting hepatic platelet recruitment. elife. 2021;10: pubmed 出版商
  135. Leach J, Vlahov N, Tsantoulis P, Ridgway R, Flanagan D, Gilroy K, et al. Oncogenic BRAF, unrestrained by TGFβ-receptor signalling, drives right-sided colonic tumorigenesis. Nat Commun. 2021;12:3464 pubmed 出版商
  136. Nakatani T, Tsujimoto K, Park J, Jo T, Kimura T, Hayama Y, et al. The lysosomal Ragulator complex plays an essential role in leukocyte trafficking by activating myosin II. Nat Commun. 2021;12:3333 pubmed 出版商
  137. Okunuki Y, Tabor S, Lee M, Connor K. CD47 Deficiency Ameliorates Ocular Autoimmune Inflammation. Front Immunol. 2021;12:680568 pubmed 出版商
  138. Yan C, Saleh N, Yang J, Nebhan C, Vilgelm A, Reddy E, et al. Novel induction of CD40 expression by tumor cells with RAS/RAF/PI3K pathway inhibition augments response to checkpoint blockade. Mol Cancer. 2021;20:85 pubmed 出版商
  139. Wei Y, Sun H, Gui T, Yao L, Zhong L, Yu W, et al. The critical role of Hedgehog-responsive mesenchymal progenitors in meniscus development and injury repair. elife. 2021;10: pubmed 出版商
  140. West J, Austin E, Rizzi E, Yan L, Tanjore H, Crabtree A, et al. KCNK3 Mutation Causes Altered Immune Function in Pulmonary Arterial Hypertension Patients and Mouse Models. Int J Mol Sci. 2021;22: pubmed 出版商
  141. Chen S, Liu H, Li Z, Tang J, Huang B, Zhi F, et al. Epithelial PBLD attenuates intestinal inflammatory response and improves intestinal barrier function by inhibiting NF-κB signaling. Cell Death Dis. 2021;12:563 pubmed 出版商
  142. Demandt J, van Kuijk K, Theelen T, Marsch E, Heffron S, Fisher E, et al. Whole-Body Prolyl Hydroxylase Domain (PHD) 3 Deficiency Increased Plasma Lipids and Hematocrit Without Impacting Plaque Size in Low-Density Lipoprotein Receptor Knockout Mice. Front Cell Dev Biol. 2021;9:664258 pubmed 出版商
  143. Kulkarni N, O Neill A, Dokoshi T, Luo E, Wong G, Gallo R. Sequence determinants in the cathelicidin LL-37 that promote inflammation via presentation of RNA to scavenger receptors. J Biol Chem. 2021;297:100828 pubmed 出版商
  144. Lebratti T, Lim Y, Cofie A, Andhey P, Jiang X, Scott J, et al. A sustained type I IFN-neutrophil-IL-18 axis drives pathology during mucosal viral infection. elife. 2021;10: pubmed 出版商
  145. Oikonomou N, Schuijs M, Chatzigiagkos A, Androulidaki A, Aidinis V, Hammad H, et al. Airway epithelial cell necroptosis contributes to asthma exacerbation in a mouse model of house dust mite-induced allergic inflammation. Mucosal Immunol. 2021;14:1160-1171 pubmed 出版商
  146. Liu K, Jing N, Wang D, Xu P, Wang J, Chen X, et al. A novel mouse model for liver metastasis of prostate cancer reveals dynamic tumour-immune cell communication. Cell Prolif. 2021;54:e13056 pubmed 出版商
  147. Liu M, Rao H, Liu J, Li X, Feng W, Gui L, et al. The histone methyltransferase SETD2 modulates oxidative stress to attenuate experimental colitis. Redox Biol. 2021;43:102004 pubmed 出版商
  148. Lei Y, Tang L, Liu S, Hu S, Wu L, Liu Y, et al. Parabacteroides produces acetate to alleviate heparanase-exacerbated acute pancreatitis through reducing neutrophil infiltration. Microbiome. 2021;9:115 pubmed 出版商
  149. Borggrewe M, Kooistra S, Wesseling E, Gierschek F, Brummer M, Nowak E, et al. VISTA regulates microglia homeostasis and myelin phagocytosis, and is associated with MS lesion pathology. Acta Neuropathol Commun. 2021;9:91 pubmed 出版商
  150. Glassman C, Su L, Majri Morrison S, Winkelmann H, Mo F, Li P, et al. Calibration of cell-intrinsic interleukin-2 response thresholds guides design of a regulatory T cell biased agonist. elife. 2021;10: pubmed 出版商
  151. Hanhai Z, Bin Q, Shengjun Z, Jingbo L, Yinghan G, Lingxin C, et al. Neutrophil extracellular traps, released from neutrophil, promote microglia inflammation and contribute to poor outcome in subarachnoid hemorrhage. Aging (Albany NY). 2021;13:13108-13123 pubmed 出版商
  152. Lin T, Quellier D, Lamb J, Voisin T, Baral P, Bock F, et al. Pseudomonas aeruginosa-induced nociceptor activation increases susceptibility to infection. PLoS Pathog. 2021;17:e1009557 pubmed 出版商
  153. Geng G, Liu J, Xu C, Pei Y, Chen L, Mu C, et al. Receptor-mediated mitophagy regulates EPO production and protects against renal anemia. elife. 2021;10: pubmed 出版商
  154. Piñeiro Hermida S, Martinez P, Blasco M. Short and dysfunctional telomeres protect from allergen-induced airway inflammation. Aging Cell. 2021;20:e13352 pubmed 出版商
  155. Frenis K, Helmstädter J, Ruan Y, Schramm E, Kalinovic S, Kröller Schön S, et al. Ablation of lysozyme M-positive cells prevents aircraft noise-induced vascular damage without improving cerebral side effects. Basic Res Cardiol. 2021;116:31 pubmed 出版商
  156. Flamini S, Sergeev P, Viana de Barros Z, Mello T, Biagioli M, Paglialunga M, et al. Glucocorticoid-induced leucine zipper regulates liver fibrosis by suppressing CCL2-mediated leukocyte recruitment. Cell Death Dis. 2021;12:421 pubmed 出版商
  157. Go D, Lee S, Lee S, Woo S, Kim K, Kim K, et al. Programmed Death Ligand 1-Expressing Classical Dendritic Cells MitigateHelicobacter-Induced Gastritis. Cell Mol Gastroenterol Hepatol. 2021;12:715-739 pubmed 出版商
  158. O Hare M, Amarnani D, Whitmore H, An M, Marino C, Ramos L, et al. Targeting Runt-Related Transcription Factor 1 Prevents Pulmonary Fibrosis and Reduces Expression of Severe Acute Respiratory Syndrome Coronavirus 2 Host Mediators. Am J Pathol. 2021;191:1193-1208 pubmed 出版商
  159. Jang S, Economides K, Moniz R, Sia C, Lewis N, McCoy C, et al. ExoSTING, an extracellular vesicle loaded with STING agonists, promotes tumor immune surveillance. Commun Biol. 2021;4:497 pubmed 出版商
  160. Terauchi R, Kohno H, Watanabe S, Saito S, Watanabe A, Nakano T. Minocycline decreases CCR2-positive monocytes in the retina and ameliorates photoreceptor degeneration in a mouse model of retinitis pigmentosa. PLoS ONE. 2021;16:e0239108 pubmed 出版商
  161. Andriessen E, Binet F, Fournier F, Hata M, Dejda A, Mawambo G, et al. Myeloid-resident neuropilin-1 promotes choroidal neovascularization while mitigating inflammation. EMBO Mol Med. 2021;13:e11754 pubmed 出版商
  162. Nishina T, Deguchi Y, Ohshima D, Takeda W, Ohtsuka M, Shichino S, et al. Interleukin-11-expressing fibroblasts have a unique gene signature correlated with poor prognosis of colorectal cancer. Nat Commun. 2021;12:2281 pubmed 出版商
  163. Gangoso E, Southgate B, Bradley L, Rus S, Gálvez Cancino F, McGivern N, et al. Glioblastomas acquire myeloid-affiliated transcriptional programs via epigenetic immunoediting to elicit immune evasion. Cell. 2021;184:2454-2470.e26 pubmed 出版商
  164. Zheng W, Song H, Luo Z, Wu H, Chen L, Wang Y, et al. Acetylcholine ameliorates colitis by promoting IL-10 secretion of monocytic myeloid-derived suppressor cells through the nAChR/ERK pathway. Proc Natl Acad Sci U S A. 2021;118: pubmed 出版商
  165. Rosa J, Farré Alins V, Ortega M, Navarrete M, López Rodríguez A, Palomino Antolin A, et al. TLR4 pathway impairs synaptic number and cerebrovascular functions through astrocyte activation following traumatic brain injury. Br J Pharmacol. 2021;178:3395-3413 pubmed 出版商
  166. Borges P, Waclawiak I, Georgii J, Fraga Junior V, Barros J, Lemos F, et al. Adenosine Diphosphate Improves Wound Healing in Diabetic Mice Through P2Y12 Receptor Activation. Front Immunol. 2021;12:651740 pubmed 出版商
  167. Saunders D, Aamodt K, Richardson T, Hopkirk A, Aramandla R, Poffenberger G, et al. Coordinated interactions between endothelial cells and macrophages in the islet microenvironment promote β cell regeneration. NPJ Regen Med. 2021;6:22 pubmed 出版商
  168. Joseph R, Soundararajan R, Vasaikar S, Yang F, Allton K, Tian L, et al. CD8+ T cells inhibit metastasis and CXCL4 regulates its function. Br J Cancer. 2021;125:176-189 pubmed 出版商
  169. Qin W, Brands X, Van T Veer C, F de Vos A, Sirard J, J T H Roelofs J, et al. Bronchial epithelial DNA methyltransferase 3b dampens pulmonary immune responses during Pseudomonas aeruginosa infection. PLoS Pathog. 2021;17:e1009491 pubmed 出版商
  170. Ngamsri K, Gamper Tsigaras J, Reutershan J, Konrad F. Fractalkine Is Linked to the Necrosome Pathway in Acute Pulmonary Inflammation. Front Med (Lausanne). 2021;8:591790 pubmed 出版商
  171. Xia X, Li R, Zhou P, Xing Z, Lu C, Long Z, et al. Decreased NSG3 enhances PD-L1 expression by Erk1/2 pathway to promote pancreatic cancer progress. Am J Cancer Res. 2021;11:916-929 pubmed
  172. Grandits A, Nguyen C, Schlerka A, Hackl H, Sill H, Etzler J, et al. Downregulation of MTSS1 in acute myeloid leukemia is associated with a poor prognosis, chemotherapy resistance, and disease aggressiveness. Leukemia. 2021;35:2827-2839 pubmed 出版商
  173. Voisin M, Shrestha E, Rollet C, Nikain C, Josefs T, Mahe M, et al. Inhibiting LXRα phosphorylation in hematopoietic cells reduces inflammation and attenuates atherosclerosis and obesity in mice. Commun Biol. 2021;4:420 pubmed 出版商
  174. Sugita J, Fujiu K, Nakayama Y, Matsubara T, Matsuda J, Oshima T, et al. Cardiac macrophages prevent sudden death during heart stress. Nat Commun. 2021;12:1910 pubmed 出版商
  175. Lagnado A, Leslie J, Ruchaud Sparagano M, Victorelli S, Hirsova P, Ogrodnik M, et al. Neutrophils induce paracrine telomere dysfunction and senescence in ROS-dependent manner. EMBO J. 2021;40:e106048 pubmed 出版商
  176. Petty A, Dai R, Lapalombella R, Baiocchi R, Benson D, Li Z, et al. Hedgehog-induced PD-L1 on tumor-associated macrophages is critical for suppression of tumor-infiltrating CD8+ T cell function. JCI Insight. 2021;6: pubmed 出版商
  177. Fallon E, Chung C, Heffernan D, Chen Y, De Paepe M, Ayala A. Survival and Pulmonary Injury After Neonatal Sepsis: PD1/PDL1's Contributions to Mouse and Human Immunopathology. Front Immunol. 2021;12:634529 pubmed 出版商
  178. Steenbrugge J, Vander Elst N, Demeyere K, De Wever O, Sanders N, van den Broeck W, et al. OMO-1 reduces progression and enhances cisplatin efficacy in a 4T1-based non-c-MET addicted intraductal mouse model for triple-negative breast cancer. NPJ Breast Cancer. 2021;7:27 pubmed 出版商
  179. Goncalves S, Yin K, Ito Y, Chan A, Olan I, Gough S, et al. COX2 regulates senescence secretome composition and senescence surveillance through PGE2. Cell Rep. 2021;34:108860 pubmed 出版商
  180. Beins E, Beiert T, Jenniches I, Hansen J, Leidmaa E, Schrickel J, et al. Cannabinoid receptor 1 signalling modulates stress susceptibility and microglial responses to chronic social defeat stress. Transl Psychiatry. 2021;11:164 pubmed 出版商
  181. Xiao Y, Shu L, Wu X, Liu Y, Cheong L, Liao B, et al. Fatty acid binding protein 4 promotes autoimmune diabetes by recruitment and activation of pancreatic islet macrophages. JCI Insight. 2021;6: pubmed 出版商
  182. Uhl B, Braun C, Dominik J, Luft J, Canis M, Reichel C. A Novel Experimental Approach for In Vivo Analyses of the Salivary Gland Microvasculature. Front Immunol. 2020;11:604470 pubmed 出版商
  183. Mao F, Lv Y, Hao C, Teng Y, Liu Y, Cheng P, et al. Helicobacter pylori-Induced Rev-erbα Fosters Gastric Bacteria Colonization by Impairing Host Innate and Adaptive Defense. Cell Mol Gastroenterol Hepatol. 2021;12:395-425 pubmed 出版商
  184. Santos Zas I, Lemari xe9 J, Zlatanova I, Cachanado M, Seghezzi J, Benamer H, et al. Cytotoxic CD8+ T cells promote granzyme B-dependent adverse post-ischemic cardiac remodeling. Nat Commun. 2021;12:1483 pubmed 出版商
  185. Thanabalasuriar A, Chiang A, Morehouse C, Camara M, Hawkins S, Keller A, et al. PD-L1+ neutrophils contribute to injury-induced infection susceptibility. Sci Adv. 2021;7: pubmed 出版商
  186. Wolfsberger J, Sakil H, Zhou L, van Bree N, Baldisseri E, de Souza Ferreira S, et al. TAp73 represses NF-κB-mediated recruitment of tumor-associated macrophages in breast cancer. Proc Natl Acad Sci U S A. 2021;118: pubmed 出版商
  187. Bugler Lamb A, Hasib A, Weng X, Hennayake C, Lin C, McCrimmon R, et al. Adipocyte integrin-linked kinase plays a key role in the development of diet-induced adipose insulin resistance in male mice. Mol Metab. 2021;49:101197 pubmed 出版商
  188. Mehatre S, Roy I, Biswas A, Prit D, Schouteden S, Huelsken J, et al. Niche-Mediated Integrin Signaling Supports Steady-State Hematopoiesis in the Spleen. J Immunol. 2021;206:1549-1560 pubmed 出版商
  189. Can xe8 S, Van Snick J, Uyttenhove C, Pilotte L, van den Eynde B. TGFβ1 neutralization displays therapeutic efficacy through both an immunomodulatory and a non-immune tumor-intrinsic mechanism. J Immunother Cancer. 2021;9: pubmed 出版商
  190. Zarb Y, Sridhar S, Nassiri S, Utz S, Schaffenrath J, Maheshwari U, et al. Microglia control small vessel calcification via TREM2. Sci Adv. 2021;7: pubmed 出版商
  191. Sivasubramaniyam T, Yang J, Cheng H, Zyla A, Li A, Besla R, et al. Dj1 deficiency protects against atherosclerosis with anti-inflammatory response in macrophages. Sci Rep. 2021;11:4723 pubmed 出版商
  192. Guo S, Smeltz R, Nanajian A, Heller R. IL-15/IL-15Rα Heterodimeric Complex as Cancer Immunotherapy in Murine Breast Cancer Models. Front Immunol. 2020;11:614667 pubmed 出版商
  193. Minns D, Smith K, Alessandrini V, Hardisty G, Melrose L, Jackson Jones L, et al. The neutrophil antimicrobial peptide cathelicidin promotes Th17 differentiation. Nat Commun. 2021;12:1285 pubmed 出版商
  194. Zhang W, Wang L, Sun X, Liu X, Xiao Y, Zhang J, et al. Toll-like receptor 5-mediated signaling enhances liver regeneration in mice. Mil Med Res. 2021;8:16 pubmed 出版商
  195. Khatib Shahidi R, M Hoffmann J, Hedjazifar S, Bonnet L, K Baboota R, Heasman S, et al. Adult mice are unresponsive to AAV8-Gremlin1 gene therapy targeting the liver. PLoS ONE. 2021;16:e0247300 pubmed 出版商
  196. Chen J, Cao X, Li B, Zhao Z, Chen S, Lai S, et al. Warburg Effect Is a Cancer Immune Evasion Mechanism Against Macrophage Immunosurveillance. Front Immunol. 2020;11:621757 pubmed 出版商
  197. Wang X, Liu D, Qin W, Liu Y, Yuan X, Zhang X, et al. P2RX1-Involved Glycolytic Metabolism Supports Neutrophil Activation in Acute Pancreatitis. Front Immunol. 2020;11:549179 pubmed 出版商
  198. Song L, Chang R, Sun X, Lu L, Gao H, Lu H, et al. Macrophage-derived EDA-A2 inhibits intestinal stem cells by targeting miR-494/EDA2R/β-catenin signaling in mice. Commun Biol. 2021;4:213 pubmed 出版商
  199. Henrich I, Jain K, Young R, Quick L, Lindsay J, Park D, et al. Ubiquitin-specific protease 6 functions as a tumor suppressor in Ewing Sarcoma through immune activation. Cancer Res. 2021;: pubmed 出版商
  200. Ali S, Borin T, Piranlioglu R, Ara R, Lebedyeva I, Angara K, et al. Changes in the tumor microenvironment and outcome for TME-targeting therapy in glioblastoma: A pilot study. PLoS ONE. 2021;16:e0246646 pubmed 出版商
  201. P xe9 rez Hern xe1 ndez M, Marr xf3 n Li xf1 ares G, Schlamp F, Heguy A, Van Opbergen C, Mezzano V, et al. Transcriptomic Coupling of PKP2 With Inflammatory and Immune Pathways Endogenous to Adult Cardiac Myocytes. Front Physiol. 2020;11:623190 pubmed 出版商
  202. Bielecki P, Riesenfeld S, Hütter J, Torlai Triglia E, Kowalczyk M, Ricardo Gonzalez R, et al. Skin-resident innate lymphoid cells converge on a pathogenic effector state. Nature. 2021;592:128-132 pubmed 出版商
  203. Wang Y, Yang Y, Wang M, Wang S, Jeong J, Xu L, et al. Eosinophils attenuate hepatic ischemia-reperfusion injury in mice through ST2-dependent IL-13 production. Sci Transl Med. 2021;13: pubmed 出版商
  204. Chen J, Sivan U, Tan S, Lippo L, De Angelis J, Labella R, et al. High-resolution 3D imaging uncovers organ-specific vascular control of tissue aging. Sci Adv. 2021;7: pubmed 出版商
  205. Cervantes P, Martorelli Di Genova B, Erazo Flores B, Knoll L. RIPK3 Facilitates Host Resistance to Oral Toxoplasma gondii Infection. Infect Immun. 2021;89: pubmed 出版商
  206. Phan T, Schink L, Mann J, Merk V, Zwicky P, Mundt S, et al. Keratinocytes control skin immune homeostasis through de novo-synthesized glucocorticoids. Sci Adv. 2021;7: pubmed 出版商
  207. Steele N, Biffi G, Kemp S, Zhang Y, Drouillard D, Syu L, et al. Inhibition of Hedgehog Signaling Alters Fibroblast Composition in Pancreatic Cancer. Clin Cancer Res. 2021;: pubmed 出版商
  208. Kharkwal S, Johndrow C, Veerapen N, Kharkwal H, Saavedra Avila N, Carreño L, et al. Serial Stimulation of Invariant Natural Killer T Cells with Covalently Stabilized Bispecific T-cell Engagers Generates Antitumor Immunity While Avoiding Anergy. Cancer Res. 2021;81:1788-1801 pubmed 出版商
  209. Tyagi A, Sharma S, Wu K, Wu S, Xing F, Liu Y, et al. Nicotine promotes breast cancer metastasis by stimulating N2 neutrophils and generating pre-metastatic niche in lung. Nat Commun. 2021;12:474 pubmed 出版商
  210. Brownlie D, Doughty Shenton D, Yh Soong D, Nixon C, O Carragher N, M Carlin L, et al. Metastasis-associated macrophages constrain antitumor capability of natural killer cells in the metastatic site at least partially by membrane bound transforming growth factor β. J Immunother Cancer. 2021;9: pubmed 出版商
  211. Devilbiss A, Zhao Z, Martin Sandoval M, Ubellacker J, Tasdogan A, Agathocleous M, et al. Metabolomic profiling of rare cell populations isolated by flow cytometry from tissues. elife. 2021;10: pubmed 出版商
  212. Park B, Shin M, Kim J, Park G, Ryu Y, Lee J, et al. Ectopic Expression of Human Thymosin β4 Confers Resistance to Legionella pneumophila during Pulmonary and Systemic Infection in Mice. Infect Immun. 2021;89: pubmed 出版商
  213. Mastorakos P, Mihelson N, Luby M, Burks S, Johnson K, Hsia A, et al. Temporally distinct myeloid cell responses mediate damage and repair after cerebrovascular injury. Nat Neurosci. 2021;24:245-258 pubmed 出版商
  214. Ogura Y, Tajiri K, Murakoshi N, Xu D, Yonebayashi S, Li S, et al. Neutrophil Elastase Deficiency Ameliorates Myocardial Injury Post Myocardial Infarction in Mice. Int J Mol Sci. 2021;22: pubmed 出版商
  215. Wang Y, Mohseni M, Grauel A, Diez J, Guan W, Liang S, et al. SHP2 blockade enhances anti-tumor immunity via tumor cell intrinsic and extrinsic mechanisms. Sci Rep. 2021;11:1399 pubmed 出版商
  216. Krzeptowski W, Chudy P, Sokołowski G, Zukowska M, Kusienicka A, Seretny A, et al. Proximity Ligation Assay Detection of Protein-DNA Interactions-Is There a Link between Heme Oxygenase-1 and G-quadruplexes?. Antioxidants (Basel). 2021;10: pubmed 出版商
  217. da Silva R, Elizondo D, Brandy N, Haddock N, Boddie T, de Oliveira L, et al. Leishmania donovani infection suppresses Allograft Inflammatory Factor-1 in monocytes and macrophages to inhibit inflammatory responses. Sci Rep. 2021;11:946 pubmed 出版商
  218. Sanmarco L, Wheeler M, Gutiérrez Vázquez C, Polonio C, Linnerbauer M, Pinho Ribeiro F, et al. Gut-licensed IFNγ+ NK cells drive LAMP1+TRAIL+ anti-inflammatory astrocytes. Nature. 2021;: pubmed 出版商
  219. Kaur S, Sehgal A, Wu A, Millard S, Batoon L, Sandrock C, et al. Stable colony-stimulating factor 1 fusion protein treatment increases hematopoietic stem cell pool and enhances their mobilisation in mice. J Hematol Oncol. 2021;14:3 pubmed 出版商
  220. Khaw Y, Majid D, Oh S, Kang E, Inoue M. Early-life-trauma triggers interferon-β resistance and neurodegeneration in a multiple sclerosis model via downregulated β1-adrenergic signaling. Nat Commun. 2021;12:105 pubmed 出版商
  221. Suah A, Tran D, Khiew S, Andrade M, Pollard J, Jain D, et al. Pregnancy-induced humoral sensitization overrides T cell tolerance to fetus-matched allografts in mice. J Clin Invest. 2021;131: pubmed 出版商
  222. Guo Q, Zhao Y, Li J, Liu J, Yang X, Guo X, et al. Induction of alarmin S100A8/A9 mediates activation of aberrant neutrophils in the pathogenesis of COVID-19. Cell Host Microbe. 2021;29:222-235.e4 pubmed 出版商
  223. Yoon S, Song S, Shin J, Kang S, Kim H, You H. Protective Effects of Korean Herbal Remedy against Airway Inflammation in an Allergic Asthma by Suppressing Eosinophil Recruitment and Infiltration in Lung. Antioxidants (Basel). 2020;10: pubmed 出版商
  224. Jin X, Morro B, Tørresen O, Moiche V, Solbakken M, Jakobsen K, et al. Innovation in Nucleotide-Binding Oligomerization-Like Receptor and Toll-Like Receptor Sensing Drives the Major Histocompatibility Complex-II Free Atlantic Cod Immune System. Front Immunol. 2020;11:609456 pubmed 出版商
  225. Ebelt N, Zuniga E, Marzagalli M, Zamloot V, Blazar B, Salgia R, et al. Salmonella-Based Therapy Targeting Indoleamine 2,3-Dioxygenase Restructures the Immune Contexture to Improve Checkpoint Blockade Efficacy. Biomedicines. 2020;8: pubmed 出版商
  226. Sharma A, Choi J, Stefanovic N, Al Sharea A, Simpson D, Mukhamedova N, et al. Specific NLRP3 Inhibition Protects Against Diabetes-Associated Atherosclerosis. Diabetes. 2021;70:772-787 pubmed 出版商
  227. Ni C, Gao S, Zheng Y, Liu P, Zhai Y, Huang W, et al. Annexin A1 Attenuates Neutrophil Migration and IL-6 Expression through Fpr2 in a Mouse Model of Streptococcus suis-Induced Meningitis. Infect Immun. 2021;89: pubmed 出版商
  228. Li X, Zhang M, Huang X, Liang W, Li G, Lu X, et al. Ubiquitination of RIPK1 regulates its activation mediated by TNFR1 and TLRs signaling in distinct manners. Nat Commun. 2020;11:6364 pubmed 出版商
  229. Torretta S, Scagliola A, Ricci L, Mainini F, Di Marco S, Cuccovillo I, et al. D-mannose suppresses macrophage IL-1β production. Nat Commun. 2020;11:6343 pubmed 出版商
  230. Jinno A, Hayashida A, Jenkinson H, Park P. Syndecan-1 Promotes Streptococcus pneumoniae Corneal Infection by Facilitating the Assembly of Adhesive Fibronectin Fibrils. MBio. 2020;11: pubmed 出版商
  231. Jin Y, Sun X, Pei F, Zhao Z, Mao J. Wnt16 signaling promotes osteoblast differentiation of periosteal derived cells in vitro and in vivo. Peerj. 2020;8:e10374 pubmed 出版商
  232. Karki R, Sharma B, Tuladhar S, Williams E, Zalduondo L, Samir P, et al. Synergism of TNF-α and IFN-γ Triggers Inflammatory Cell Death, Tissue Damage, and Mortality in SARS-CoV-2 Infection and Cytokine Shock Syndromes. Cell. 2021;184:149-168.e17 pubmed 出版商
  233. Li J, Zhang L, Zheng Y, Shao R, Liang Q, Yu W, et al. BAD inactivation exacerbates rheumatoid arthritis pathology by promoting survival of sublining macrophages. elife. 2020;9: pubmed 出版商
  234. Kalinski A, Yoon C, Huffman L, Duncker P, Kohen R, Passino R, et al. Analysis of the immune response to sciatic nerve injury identifies efferocytosis as a key mechanism of nerve debridement. elife. 2020;9: pubmed 出版商
  235. Li N, Rignault Clerc S, Bielmann C, Bon Mathier A, Déglise T, Carboni A, et al. Increasing heart vascularisation after myocardial infarction using brain natriuretic peptide stimulation of endothelial and WT1+ epicardial cells. elife. 2020;9: pubmed 出版商
  236. Zaro B, Noh J, Mascetti V, Demeter J, George B, Zukowska M, et al. Proteomic analysis of young and old mouse hematopoietic stem cells and their progenitors reveals post-transcriptional regulation in stem cells. elife. 2020;9: pubmed 出版商
  237. Fang Y, Gu Y, Li L, Zhu L, Qian J, Zhao C, et al. Loss of Atg7 causes chaotic nucleosome assembly of mouse bone marrow CD11b+Ly6G- myeloid cells. Aging (Albany NY). 2020;12:25673-25683 pubmed 出版商
  238. Luo Z, Ji Y, Gao H, Gomes Dos Reis F, Bandyopadhyay G, Jin Z, et al. CRIg+ Macrophages Prevent Gut Microbial DNA-Containing Extracellular Vesicle-Induced Tissue Inflammation and Insulin Resistance. Gastroenterology. 2021;160:863-874 pubmed 出版商
  239. Myers D, Abram C, Wildes D, Belwafa A, Welsh A, Schulze C, et al. Shp1 Loss Enhances Macrophage Effector Function and Promotes Anti-Tumor Immunity. Front Immunol. 2020;11:576310 pubmed 出版商
  240. Katano I, Ito R, Kawai K, Takahashi T. Improved Detection of in vivo Human NK Cell-Mediated Antibody-Dependent Cellular Cytotoxicity Using a Novel NOG-FcγR-Deficient Human IL-15 Transgenic Mouse. Front Immunol. 2020;11:532684 pubmed 出版商
  241. Gurley J, Gmyrek G, McClellan M, Hargis E, Hauck S, Dozmorov M, et al. Neuroretinal-Derived Caveolin-1 Promotes Endotoxin-Induced Inflammation in the Murine Retina. Invest Ophthalmol Vis Sci. 2020;61:19 pubmed 出版商
  242. Kasuga A, Semba T, Sato R, Nobusue H, Sugihara E, Takaishi H, et al. Oncogenic KRAS-expressing organoids with biliary epithelial stem cell properties give rise to biliary tract cancer in mice. Cancer Sci. 2021;112:1822-1838 pubmed 出版商
  243. Alonso Herranz L, Sahún Español Á, Paredes A, Gonzalo P, Gkontra P, Núñez V, et al. Macrophages promote endothelial-to-mesenchymal transition via MT1-MMP/TGFβ1 after myocardial infarction. elife. 2020;9: pubmed 出版商
  244. Lissner M, Cumnock K, Davis N, Vilches Moure J, Basak P, Navarrete D, et al. Metabolic profiling during malaria reveals the role of the aryl hydrocarbon receptor in regulating kidney injury. elife. 2020;9: pubmed 出版商
  245. Shi H, Lo T, Ma D, Condor B, Lesmana B, Parungao R, et al. Dihydrotestosterone (DHT) Enhances Wound Healing of Major Burn Injury by Accelerating Resolution of Inflammation in Mice. Int J Mol Sci. 2020;21: pubmed 出版商
  246. Zhou S, Zhang W, Cai G, Ding Y, Wei C, Li S, et al. Myofiber necroptosis promotes muscle stem cell proliferation via releasing Tenascin-C during regeneration. Cell Res. 2020;30:1063-1077 pubmed 出版商
  247. An X, Ogawa Wong A, Carmody C, Ambrosio R, Cicatiello A, Luongo C, et al. A Type 2 Deiodinase-Dependent Increase in Vegfa Mediates Myoblast-Endothelial Cell Crosstalk During Skeletal Muscle Regeneration. Thyroid. 2021;31:115-127 pubmed 出版商
  248. Ricci B, Tycksen E, Celik H, Belle J, Fontana F, Civitelli R, et al. Osterix-Cre marks distinct subsets of CD45- and CD45+ stromal populations in extra-skeletal tumors with pro-tumorigenic characteristics. elife. 2020;9: pubmed 出版商
  249. Geng A, Wu T, Cai C, Song W, Wang J, Yu Q, et al. A novel function of R-spondin1 in regulating estrogen receptor expression independent of Wnt/β-catenin signaling. elife. 2020;9: pubmed 出版商
  250. Li N, Kang Y, Wang L, Huff S, Tang R, Hui H, et al. ALKBH5 regulates anti-PD-1 therapy response by modulating lactate and suppressive immune cell accumulation in tumor microenvironment. Proc Natl Acad Sci U S A. 2020;117:20159-20170 pubmed 出版商
  251. Runyan C, Welch L, Lecuona E, Shigemura M, Amarelle L, Abdala Valencia H, et al. Impaired phagocytic function in CX3CR1+ tissue-resident skeletal muscle macrophages prevents muscle recovery after influenza A virus-induced pneumonia in old mice. Aging Cell. 2020;: pubmed 出版商
  252. Pasciuto E, Burton O, Roca C, Lagou V, Rajan W, Theys T, et al. Microglia Require CD4 T Cells to Complete the Fetal-to-Adult Transition. Cell. 2020;182:625-640.e24 pubmed 出版商
  253. Muller A, Dickmanns A, Resch C, Schakel K, Hailfinger S, Dobbelstein M, et al. The CDK4/6-EZH2 pathway is a potential therapeutic target for psoriasis. J Clin Invest. 2020;: pubmed 出版商
  254. Malacco N, Souza J, Martins F, Rachid M, Simplicio J, Tirapelli C, et al. Chronic ethanol consumption compromises neutrophil function in acute pulmonary Aspergillus fumigatus infection. elife. 2020;9: pubmed 出版商
  255. Peligero Cruz C, Givony T, Sebé Pedrós A, Dobes J, Kadouri N, Nevo S, et al. IL18 signaling promotes homing of mature Tregs into the thymus. elife. 2020;9: pubmed 出版商
  256. Neuper T, Neureiter D, Sarajlic M, Strandt H, Bauer R, Schwarz H, et al. IL-31 transgenic mice show reduced allergen-induced lung inflammation. Eur J Immunol. 2021;51:191-196 pubmed 出版商
  257. Feuerstein R, Forde A, Lohrmann F, Kolter J, Ramirez N, Zimmermann J, et al. Resident macrophages acquire innate immune memory in staphylococcal skin infection. elife. 2020;9: pubmed 出版商
  258. Svensson M, Zoccheddu M, Yang S, Nygaard G, Secchi C, Doody K, et al. Synoviocyte-targeted therapy synergizes with TNF inhibition in arthritis reversal. Sci Adv. 2020;6:eaba4353 pubmed 出版商
  259. Oguri Y, Shinoda K, Kim H, Alba D, Bolus W, Wang Q, et al. CD81 Controls Beige Fat Progenitor Cell Growth and Energy Balance via FAK Signaling. Cell. 2020;: pubmed 出版商
  260. Danzer H, Glaesner J, Baerenwaldt A, Reitinger C, Lux A, Heger L, et al. Human Fcγ-receptor IIb modulates pathogen-specific versus self-reactive antibody responses in lyme arthritis. elife. 2020;9: pubmed 出版商
  261. Manils J, Webb L, Howes A, Janzen J, Boeing S, Bowcock A, et al. CARD14E138A signalling in keratinocytes induces TNF-dependent skin and systemic inflammation. elife. 2020;9: pubmed 出版商
  262. BURNS J, Cotleur B, Walther D, Bajrami B, Rubino S, Wei R, et al. Differential accumulation of storage bodies with aging defines discrete subsets of microglia in the healthy brain. elife. 2020;9: pubmed 出版商
  263. Azcutia V, Kelm M, Luissint A, Boerner K, Flemming S, Quirós M, et al. Neutrophil expressed CD47 regulates CD11b/CD18-dependent neutrophil transepithelial migration in the intestine in vivo. Mucosal Immunol. 2020;: pubmed 出版商
  264. Kim E, Woodruff M, Grigoryan L, Maier B, Lee S, Mandal P, et al. Squalene emulsion-based vaccine adjuvants stimulate CD8 T cell, but not antibody responses, through a RIPK3-dependent pathway. elife. 2020;9: pubmed 出版商
  265. Valbuena Perez J, Linnenberger R, Dembek A, Bruscoli S, Riccardi C, Schulz M, et al. Altered glucocorticoid metabolism represents a feature of macroph-aging. Aging Cell. 2020;19:e13156 pubmed 出版商
  266. Ji J, Liu Z, Hong X, Liu Z, Gao J, Liu J. Protective effects of rolipram on endotoxic cardiac dysfunction via inhibition of the inflammatory response in cardiac fibroblasts. BMC Cardiovasc Disord. 2020;20:242 pubmed 出版商
  267. Kang L, Yu H, Yang X, Zhu Y, Bai X, Wang R, et al. Neutrophil extracellular traps released by neutrophils impair revascularization and vascular remodeling after stroke. Nat Commun. 2020;11:2488 pubmed 出版商
  268. Vacca F, Chauch C, Jamwal A, Hinchy E, Heieis G, Webster H, et al. A helminth-derived suppressor of ST2 blocks allergic responses. elife. 2020;9: pubmed 出版商
  269. Maqbool A, Watt N, Haywood N, Viswambharan H, Skromna A, Makava N, et al. Divergent effects of genetic and pharmacological inhibition of Nox2 NADPH oxidase on insulin resistance-related vascular damage. Am J Physiol Cell Physiol. 2020;319:C64-C74 pubmed 出版商
  270. Madel M, Ibáñez L, Ciucci T, Halper J, Rouleau M, Boutin A, et al. Dissecting the phenotypic and functional heterogeneity of mouse inflammatory osteoclasts by the expression of Cx3cr1. elife. 2020;9: pubmed 出版商
  271. Burfeind K, Zhu X, Norgard M, Levasseur P, Huisman C, Buenafe A, et al. Circulating myeloid cells invade the central nervous system to mediate cachexia during pancreatic cancer. elife. 2020;9: pubmed 出版商
  272. Castiello M, Bosticardo M, Sacchetti N, Calzoni E, Fontana E, Yamazaki Y, et al. Efficacy and safety of anti-CD45-saporin as conditioning agent for RAG deficiency. J Allergy Clin Immunol. 2021;147:309-320.e6 pubmed 出版商
  273. Yamamoto K, Venida A, Yano J, Biancur D, Kakiuchi M, Gupta S, et al. Autophagy promotes immune evasion of pancreatic cancer by degrading MHC-I. Nature. 2020;581:100-105 pubmed 出版商
  274. Deng M, Tam J, Wang L, Liang K, Li S, Zhang L, et al. TRAF3IP3 negatively regulates cytosolic RNA induced anti-viral signaling by promoting TBK1 K48 ubiquitination. Nat Commun. 2020;11:2193 pubmed 出版商
  275. Nguyen G, Shaban L, Mack M, Swanson K, Bunnell S, Sykes D, et al. SKAP2 is required for defense against K. pneumoniae infection and neutrophil respiratory burst. elife. 2020;9: pubmed 出版商
  276. Somerville T, Biffi G, Da ler Plenker J, Hur S, He X, Vance K, et al. Squamous trans-differentiation of pancreatic cancer cells promotes stromal inflammation. elife. 2020;9: pubmed 出版商
  277. Tilburg J, Coenen D, Zirka G, Dólleman S, van Oeveren Rietdijk A, Karel M, et al. SLC44A2 deficient mice have a reduced response in stenosis but not in hypercoagulability driven venous thrombosis. J Thromb Haemost. 2020;18:1714-1727 pubmed 出版商
  278. Ray S, Chee L, Matson D, Palermo N, Bresnick E, Hewitt K. Sterile α-motif domain requirement for cellular signaling and survival. J Biol Chem. 2020;295:7113-7125 pubmed 出版商
  279. Ngamsri K, Jans C, Putri R, Schindler K, Gamper Tsigaras J, Eggstein C, et al. Inhibition of CXCR4 and CXCR7 Is Protective in Acute Peritoneal Inflammation. Front Immunol. 2020;11:407 pubmed 出版商
  280. Adapala N, Swarnkar G, Arra M, Shen J, Mbalaviele G, Ke K, et al. Inflammatory osteolysis is regulated by site-specific ISGylation of the scaffold protein NEMO. elife. 2020;9: pubmed 出版商
  281. von Roemeling C, Wang Y, Qie Y, Yuan H, Zhao H, Liu X, et al. Therapeutic modulation of phagocytosis in glioblastoma can activate both innate and adaptive antitumour immunity. Nat Commun. 2020;11:1508 pubmed 出版商
  282. Patrizz A, Doran S, Chauhan A, Ahnstedt H, Roy O Reilly M, Lai Y, et al. EMMPRIN/CD147 plays a detrimental role in clinical and experimental ischemic stroke. Aging (Albany NY). 2020;12:5121-5139 pubmed 出版商
  283. Wuggenig P, Kaya B, Melhem H, Ayata C, Hruz P, Sayan A, et al. Loss of the branched-chain amino acid transporter CD98hc alters the development of colonic macrophages in mice. Commun Biol. 2020;3:130 pubmed 出版商
  284. Watanabe M, Kaneko Y, Ohishi Y, Kinoshita M, Sakairi T, Ikeuchi H, et al. Importance of methodology in the evaluation of renal mononuclear phagocytes and analysis of a model of experimental nephritis with Shp1 conditional knockout mice. Biochem Biophys Rep. 2020;22:100741 pubmed 出版商
  285. Beltran Camacho L, Jimenez Palomares M, Rojas Torres M, Sánchez Gomar I, Rosal Vela A, Eslava Alcon S, et al. Identification of the initial molecular changes in response to circulating angiogenic cells-mediated therapy in critical limb ischemia. Stem Cell Res Ther. 2020;11:106 pubmed 出版商
  286. Wei J, Mattapallil M, Horai R, Jittayasothorn Y, Modi A, Sen H, et al. A novel role for lipoxin A4 in driving a lymph node-eye axis that controls autoimmunity to the neuroretina. elife. 2020;9: pubmed 出版商
  287. Luker A, Graham L, Smith T, Camarena C, Zellner M, Gilmer J, et al. The DNA methyltransferase inhibitor, guadecitabine, targets tumor-induced myelopoiesis and recovers T cell activity to slow tumor growth in combination with adoptive immunotherapy in a mouse model of breast cancer. BMC Immunol. 2020;21:8 pubmed 出版商
  288. Lu Z, Zou J, Li S, Topper M, Tao Y, Zhang H, et al. Epigenetic therapy inhibits metastases by disrupting premetastatic niches. Nature. 2020;579:284-290 pubmed 出版商
  289. Sun D, Zhang M, Sun P, Liu G, Strickland A, Chen Y, et al. VCAM1/VLA4 interaction mediates Ly6Clow monocyte recruitment to the brain in a TNFR signaling dependent manner during fungal infection. PLoS Pathog. 2020;16:e1008361 pubmed 出版商
  290. Clark D, Brazina S, Yang F, Hu D, Hsieh C, Niemi E, et al. Age-related changes to macrophages are detrimental to fracture healing in mice. Aging Cell. 2020;19:e13112 pubmed 出版商
  291. Monzon Casanova E, Matheson L, Tabbada K, Zarnack K, Smith C, Turner M. Polypyrimidine tract-binding proteins are essential for B cell development. elife. 2020;9: pubmed 出版商
  292. Yang M, Li C, Xiao Y, Guo Q, Huang Y, Su T, et al. Ophiopogonin D promotes bone regeneration by stimulating CD31hi EMCNhi vessel formation. Cell Prolif. 2020;53:e12784 pubmed 出版商
  293. Wang J, Li P, Yu Y, Fu Y, Jiang H, Lu M, et al. Pulmonary surfactant-biomimetic nanoparticles potentiate heterosubtypic influenza immunity. Science. 2020;367: pubmed 出版商
  294. Forbester J, Clement M, Wellington D, Yeung A, Dimonte S, Marsden M, et al. IRF5 Promotes Influenza Virus-Induced Inflammatory Responses in Human Induced Pluripotent Stem Cell-Derived Myeloid Cells and Murine Models. J Virol. 2020;94: pubmed 出版商
  295. Li H, Tang C, Zhu X, Zhang W, Abudupataer M, Ding S, et al. Histamine deficiency facilitates coronary microthrombosis after myocardial infarction by increasing neutrophil-platelet interactions. J Cell Mol Med. 2020;24:3504-3520 pubmed 出版商
  296. Chen H, Cong X, Wu C, Wu X, Wang J, Mao K, et al. Intratumoral delivery of CCL25 enhances immunotherapy against triple-negative breast cancer by recruiting CCR9+ T cells. Sci Adv. 2020;6:eaax4690 pubmed 出版商
  297. Hou M, Han J, Li G, Kwon M, Jiang J, Emani S, et al. Multipotency of mouse trophoblast stem cells. Stem Cell Res Ther. 2020;11:55 pubmed 出版商
  298. Ferrer Font L, Mehta P, Harmos P, Schmidt A, Chappell S, Price K, et al. High-dimensional analysis of intestinal immune cells during helminth infection. elife. 2020;9: pubmed 出版商
  299. Tizian C, Lahmann A, Hölsken O, Cosovanu C, Kofoed Branzk M, Heinrich F, et al. c-Maf restrains T-bet-driven programming of CCR6-negative group 3 innate lymphoid cells. elife. 2020;9: pubmed 出版商
  300. Wilson Z, Witt H, Hazlett L, Harman M, Neumann B, Whitman A, et al. Context-Dependent Role of Vinculin in Neutrophil Adhesion, Motility and Trafficking. Sci Rep. 2020;10:2142 pubmed 出版商
  301. Kim K, Lee J, Ahn S, Won R, Kim S, Jeong S, et al. The methanol extract of Guettarda speciosa Linn. Ameliorates acute lung injury in mice. BMC Complement Med Ther. 2020;20:40 pubmed 出版商
  302. Cohen G, Chandran P, Lorsung R, Tomlinson L, Sundby M, Burks S, et al. The Impact of Focused Ultrasound in Two Tumor Models: Temporal Alterations in the Natural History on Tumor Microenvironment and Immune Cell Response. Cancers (Basel). 2020;12: pubmed 出版商
  303. Wu B, Liu J, Bian E, Hu W, Huang C, Meng X, et al. Blockage of Kv1.3 regulates macrophage migration in acute liver injury by targeting δ-catenin through RhoA signaling. Int J Biol Sci. 2020;16:671-681 pubmed 出版商
  304. Theivanthiran B, Evans K, Devito N, Plebanek M, Sturdivant M, Wachsmuth L, et al. A tumor-intrinsic PD-L1/NLRP3 inflammasome signaling pathway drives resistance to anti-PD-1 immunotherapy. J Clin Invest. 2020;130:2570-2586 pubmed 出版商
  305. Park M, Kim H, Lee H, Zabel B, Bae Y. Novel CD11b+Gr-1+Sca-1+ myeloid cells drive mortality in bacterial infection. Sci Adv. 2020;6:eaax8820 pubmed 出版商
  306. Terashima Y, Toda E, Itakura M, Otsuji M, Yoshinaga S, Okumura K, et al. Targeting FROUNT with disulfiram suppresses macrophage accumulation and its tumor-promoting properties. Nat Commun. 2020;11:609 pubmed 出版商
  307. Uckelmann H, Kim S, Wong E, Hatton C, Giovinazzo H, Gadrey J, et al. Therapeutic targeting of preleukemia cells in a mouse model of NPM1 mutant acute myeloid leukemia. Science. 2020;367:586-590 pubmed 出版商
  308. Plemel J, Stratton J, Michaels N, Rawji K, Zhang E, Sinha S, et al. Microglia response following acute demyelination is heterogeneous and limits infiltrating macrophage dispersion. Sci Adv. 2020;6:eaay6324 pubmed 出版商
  309. Singh K, Leu J, Barnoud T, Vonteddu P, Gnanapradeepan K, Lin C, et al. African-centric TP53 variant increases iron accumulation and bacterial pathogenesis but improves response to malaria toxin. Nat Commun. 2020;11:473 pubmed 出版商
  310. Panda S, Wigerblad G, Jiang L, Jiménez Andrade Y, Iyer V, Shen Y, et al. IL-4 controls activated neutrophil FcγR2b expression and migration into inflamed joints. Proc Natl Acad Sci U S A. 2020;117:3103-3113 pubmed 出版商
  311. Mei Y, Wang Z, Zhang Y, Wan T, Xue J, He W, et al. FA-97, a New Synthetic Caffeic Acid Phenethyl Ester Derivative, Ameliorates DSS-Induced Colitis Against Oxidative Stress by Activating Nrf2/HO-1 Pathway. Front Immunol. 2019;10:2969 pubmed 出版商
  312. Zhang B, Ma S, Rachmin I, He M, Baral P, Choi S, et al. Hyperactivation of sympathetic nerves drives depletion of melanocyte stem cells. Nature. 2020;577:676-681 pubmed 出版商
  313. Bennewitz M, Tütüncüoğlu E, Gudapati S, Brzoska T, Watkins S, Monga S, et al. P-selectin-deficient mice to study pathophysiology of sickle cell disease. Blood Adv. 2020;4:266-273 pubmed 出版商
  314. Canel M, Taggart D, Sims A, Lonergan D, Waizenegger I, Serrels A. T-cell co-stimulation in combination with targeting FAK drives enhanced anti-tumor immunity. elife. 2020;9: pubmed 出版商
  315. Kim J, Fei L, Yin W, Coquenlorge S, Rao Bhatia A, Zhang X, et al. Single cell and genetic analyses reveal conserved populations and signaling mechanisms of gastrointestinal stromal niches. Nat Commun. 2020;11:334 pubmed 出版商
  316. Blagih J, Zani F, Chakravarty P, Hennequart M, Pilley S, Hobor S, et al. Cancer-Specific Loss of p53 Leads to a Modulation of Myeloid and T Cell Responses. Cell Rep. 2020;30:481-496.e6 pubmed 出版商
  317. Schafflick D, Xu C, Hartlehnert M, Cole M, Schulte Mecklenbeck A, Lautwein T, et al. Integrated single cell analysis of blood and cerebrospinal fluid leukocytes in multiple sclerosis. Nat Commun. 2020;11:247 pubmed 出版商
  318. Kimura S, Nakamura Y, Kobayashi N, Shiroguchi K, Kawakami E, Mutoh M, et al. Osteoprotegerin-dependent M cell self-regulation balances gut infection and immunity. Nat Commun. 2020;11:234 pubmed 出版商
  319. Hayes M, Ward S, Crawford G, Seoane R, Jackson W, Kipling D, et al. Inflammation-induced IgE promotes epithelial hyperplasia and tumour growth. elife. 2020;9: pubmed 出版商
  320. Wang G, Xu J, Zhao J, Yin W, Liu D, Chen W, et al. Arf1-mediated lipid metabolism sustains cancer cells and its ablation induces anti-tumor immune responses in mice. Nat Commun. 2020;11:220 pubmed 出版商
  321. Asrat S, Kaur N, Liu X, Ben L, Kajimura D, Murphy A, et al. Chronic allergen exposure drives accumulation of long-lived IgE plasma cells in the bone marrow, giving rise to serological memory. Sci Immunol. 2020;5: pubmed 出版商
  322. Khorooshi R, Marczynska J, Dieu R, Wais V, Hansen C, Kavan S, et al. Innate signaling within the central nervous system recruits protective neutrophils. Acta Neuropathol Commun. 2020;8:2 pubmed 出版商
  323. Hurrell B, Galle Treger L, Jahani P, Howard E, Helou D, Banie H, et al. TNFR2 Signaling Enhances ILC2 Survival, Function, and Induction of Airway Hyperreactivity. Cell Rep. 2019;29:4509-4524.e5 pubmed 出版商
  324. Raphael I, Gomez Rivera F, Raphael R, Robinson R, Nalawade S, Forsthuber T. TNFR2 limits proinflammatory astrocyte functions during EAE induced by pathogenic DR2b-restricted T cells. JCI Insight. 2019;4: pubmed 出版商
  325. Williford J, Ishihara J, Ishihara A, Mansurov A, Hosseinchi P, Marchell T, et al. Recruitment of CD103+ dendritic cells via tumor-targeted chemokine delivery enhances efficacy of checkpoint inhibitor immunotherapy. Sci Adv. 2019;5:eaay1357 pubmed 出版商
  326. Eastman A, Xu J, Bermik J, Potchen N, den Dekker A, Neal L, et al. Epigenetic stabilization of DC and DC precursor classical activation by TNFα contributes to protective T cell polarization. Sci Adv. 2019;5:eaaw9051 pubmed 出版商
  327. Guo C, Allen B, Hiam K, Dodd D, Van Treuren W, Higginbottom S, et al. Depletion of microbiome-derived molecules in the host using Clostridium genetics. Science. 2019;366: pubmed 出版商
  328. Leylek R, Alcántara Hernández M, Lanzar Z, Lüdtke A, Perez O, Reizis B, et al. Integrated Cross-Species Analysis Identifies a Conserved Transitional Dendritic Cell Population. Cell Rep. 2019;29:3736-3750.e8 pubmed 出版商
  329. Rowe S, Wagner N, Li L, Beam J, Wilkinson A, Radlinski L, et al. Reactive oxygen species induce antibiotic tolerance during systemic Staphylococcus aureus infection. Nat Microbiol. 2020;5:282-290 pubmed 出版商
  330. Park C, Kehrl J. An integrin/MFG-E8 shuttle loads HIV-1 viral-like particles onto follicular dendritic cells in mouse lymph node. elife. 2019;8: pubmed 出版商
  331. Shi L, Wang J, Ding N, Zhang Y, Zhu Y, Dong S, et al. Inflammation induced by incomplete radiofrequency ablation accelerates tumor progression and hinders PD-1 immunotherapy. Nat Commun. 2019;10:5421 pubmed 出版商
  332. Vagnozzi R, Maillet M, Sargent M, Khalil H, Johansen A, Schwanekamp J, et al. An acute immune response underlies the benefit of cardiac stem cell therapy. Nature. 2020;577:405-409 pubmed 出版商
  333. Zhou Y, Lei J, Xie Q, Wu L, Jin S, Guo B, et al. Fibrinogen-like protein 2 controls sepsis catabasis by interacting with resolvin Dp5. Sci Adv. 2019;5:eaax0629 pubmed 出版商
  334. Luque Martin R, Van den Bossche J, Furze R, Neele A, van der Velden S, Gijbels M, et al. Targeting Histone Deacetylases in Myeloid Cells Inhibits Their Maturation and Inflammatory Function With Limited Effects on Atherosclerosis. Front Pharmacol. 2019;10:1242 pubmed 出版商
  335. Gil Cruz C, Perez Shibayama C, De Martin A, Ronchi F, Van der Borght K, Niederer R, et al. Microbiota-derived peptide mimics drive lethal inflammatory cardiomyopathy. Science. 2019;366:881-886 pubmed 出版商
  336. Wang Y, Chiang I, Ohara T, Fujii S, Cheng J, Muegge B, et al. Long-Term Culture Captures Injury-Repair Cycles of Colonic Stem Cells. Cell. 2019;179:1144-1159.e15 pubmed 出版商
  337. Johnston J, Angyal A, Bauer R, Hamby S, Suvarna S, Baidžajevas K, et al. Myeloid Tribbles 1 induces early atherosclerosis via enhanced foam cell expansion. Sci Adv. 2019;5:eaax9183 pubmed 出版商
  338. Tsao L, Crosby E, Trotter T, Agarwal P, Hwang B, Acharya C, et al. CD47 blockade augmentation of trastuzumab antitumor efficacy dependent on antibody-dependent cellular phagocytosis. JCI Insight. 2019;4: pubmed 出版商
  339. Choi S, Shin S, Lee H, Sohn K, Yoon S, Kim J. 1-Palmitoyl-2-linoleoyl-3-acetyl-rac-glycerol ameliorates chemoradiation-induced oral mucositis. Oral Dis. 2020;26:111-121 pubmed 出版商
  340. Reed M, Luissint A, Azcutia V, Fan S, O Leary M, Quirós M, et al. Epithelial CD47 is critical for mucosal repair in the murine intestine in vivo. Nat Commun. 2019;10:5004 pubmed 出版商
  341. Canon J, Rex K, Saiki A, Mohr C, Cooke K, Bagal D, et al. The clinical KRAS(G12C) inhibitor AMG 510 drives anti-tumour immunity. Nature. 2019;575:217-223 pubmed 出版商
  342. Yan D, Wang J, Sun H, Zamani A, Zhang H, Chen W, et al. TIPE2 specifies the functional polarization of myeloid-derived suppressor cells during tumorigenesis. J Exp Med. 2020;217: pubmed 出版商
  343. Alspach E, Lussier D, Miceli A, Kizhvatov I, DuPage M, Luoma A, et al. MHC-II neoantigens shape tumour immunity and response to immunotherapy. Nature. 2019;574:696-701 pubmed 出版商
  344. Chu C, Murdock M, Jing D, Won T, Chung H, Kressel A, et al. The microbiota regulate neuronal function and fear extinction learning. Nature. 2019;574:543-548 pubmed 出版商
  345. Nagai J, Balestrieri B, Fanning L, Kyin T, Cirka H, Lin J, et al. P2Y6 signaling in alveolar macrophages prevents leukotriene-dependent type 2 allergic lung inflammation. J Clin Invest. 2019;129:5169-5186 pubmed 出版商
  346. Grüneboom A, Hawwari I, Weidner D, Culemann S, Müller S, Henneberg S, et al. A network of trans-cortical capillaries as mainstay for blood circulation in long bones. Nat Metab. 2019;1:236-250 pubmed 出版商
  347. Stewart B, Ferdinand J, Young M, Mitchell T, Loudon K, Riding A, et al. Spatiotemporal immune zonation of the human kidney. Science. 2019;365:1461-1466 pubmed 出版商
  348. Joshi N, Watanabe S, Verma R, Jablonski R, Chen C, Cheresh P, et al. A spatially restricted fibrotic niche in pulmonary fibrosis is sustained by M-CSF/M-CSFR signalling in monocyte-derived alveolar macrophages. Eur Respir J. 2020;55: pubmed 出版商
  349. Ramachandran P, Dobie R, Wilson Kanamori J, Dora E, Henderson B, Luu N, et al. Resolving the fibrotic niche of human liver cirrhosis at single-cell level. Nature. 2019;575:512-518 pubmed 出版商
  350. Carpentier K, Davenport B, HAIST K, McCarthy M, May N, Robison A, et al. Discrete viral E2 lysine residues and scavenger receptor MARCO are required for clearance of circulating alphaviruses. elife. 2019;8: pubmed 出版商
  351. Yoshimi A, Lin K, Wiseman D, Rahman M, Pastore A, Wang B, et al. Coordinated alterations in RNA splicing and epigenetic regulation drive leukaemogenesis. Nature. 2019;574:273-277 pubmed 出版商
  352. Lecocq Q, Zeven K, De Vlaeminck Y, Martens S, Massa S, Goyvaerts C, et al. Noninvasive Imaging of the Immune Checkpoint LAG-3 Using Nanobodies, from Development to Pre-Clinical Use. Biomolecules. 2019;9: pubmed 出版商
  353. Majer O, Liu B, Kreuk L, Krogan N, Barton G. UNC93B1 recruits syntenin-1 to dampen TLR7 signalling and prevent autoimmunity. Nature. 2019;575:366-370 pubmed 出版商
  354. Chen M, Reed R, Lane A. Chronic Inflammation Directs an Olfactory Stem Cell Functional Switch from Neuroregeneration to Immune Defense. Cell Stem Cell. 2019;25:501-513.e5 pubmed 出版商
  355. Zhang F, Parayath N, Ene C, Stephan S, Koehne A, Coon M, et al. Genetic programming of macrophages to perform anti-tumor functions using targeted mRNA nanocarriers. Nat Commun. 2019;10:3974 pubmed 出版商
  356. Ombrato L, Nolan E, Kurelac I, Mavousian A, Bridgeman V, Heinze I, et al. Metastatic-niche labelling reveals parenchymal cells with stem features. Nature. 2019;572:603-608 pubmed 出版商
  357. Jordan S, Tung N, Casanova Acebes M, Chang C, Cantoni C, Zhang D, et al. Dietary Intake Regulates the Circulating Inflammatory Monocyte Pool. Cell. 2019;178:1102-1114.e17 pubmed 出版商
  358. Nagai M, Noguchi R, Takahashi D, Morikawa T, Koshida K, Komiyama S, et al. Fasting-Refeeding Impacts Immune Cell Dynamics and Mucosal Immune Responses. Cell. 2019;178:1072-1087.e14 pubmed 出版商
  359. Solis A, Bielecki P, Steach H, Sharma L, Harman C, Yun S, et al. Mechanosensation of cyclical force by PIEZO1 is essential for innate immunity. Nature. 2019;573:69-74 pubmed 出版商
  360. Irons E, Lee Sundlov M, Zhu Y, Neelamegham S, Hoffmeister K, LAU J. B cells suppress medullary granulopoiesis by an extracellular glycosylation-dependent mechanism. elife. 2019;8: pubmed 出版商
  361. Culemann S, Grüneboom A, Nicolás Ávila J, Weidner D, Lämmle K, Rothe T, et al. Locally renewing resident synovial macrophages provide a protective barrier for the joint. Nature. 2019;572:670-675 pubmed 出版商
  362. Rosshart S, Herz J, Vassallo B, Hunter A, Wall M, Badger J, et al. Laboratory mice born to wild mice have natural microbiota and model human immune responses. Science. 2019;365: pubmed 出版商
  363. Cohen J, Edwards T, Liu A, Hirai T, Jones M, Wu J, et al. Cutaneous TRPV1+ Neurons Trigger Protective Innate Type 17 Anticipatory Immunity. Cell. 2019;178:919-932.e14 pubmed 出版商
  364. Niemann J, Woller N, Brooks J, Fleischmann Mundt B, Martin N, Kloos A, et al. Molecular retargeting of antibodies converts immune defense against oncolytic viruses into cancer immunotherapy. Nat Commun. 2019;10:3236 pubmed 出版商
  365. McLaughlin P, Bettke J, Tam J, Leeds J, Bliska J, Butler B, et al. Inflammatory monocytes provide a niche for Salmonella expansion in the lumen of the inflamed intestine. PLoS Pathog. 2019;15:e1007847 pubmed 出版商
  366. Wirsching H, Zhang H, Szulzewsky F, Arora S, Grandi P, Cimino P, et al. Arming oHSV with ULBP3 drives abscopal immunity in lymphocyte-depleted glioblastoma. JCI Insight. 2019;4: pubmed 出版商
  367. Wolock S, Krishnan I, Tenen D, Matkins V, Camacho V, Patel S, et al. Mapping Distinct Bone Marrow Niche Populations and Their Differentiation Paths. Cell Rep. 2019;28:302-311.e5 pubmed 出版商
  368. Lee Y, Riopel M, Cabrales P, Bandyopadhyay G. Hepatocyte-specific HIF-1α ablation improves obesity-induced glucose intolerance by reducing first-pass GLP-1 degradation. Sci Adv. 2019;5:eaaw4176 pubmed 出版商
  369. Severe N, Karabacak N, Gustafsson K, Baryawno N, Courties G, Kfoury Y, et al. Stress-Induced Changes in Bone Marrow Stromal Cell Populations Revealed through Single-Cell Protein Expression Mapping. Cell Stem Cell. 2019;25:570-583.e7 pubmed 出版商
  370. Jaitin D, Adlung L, Thaiss C, Weiner A, Li B, Descamps H, et al. Lipid-Associated Macrophages Control Metabolic Homeostasis in a Trem2-Dependent Manner. Cell. 2019;178:686-698.e14 pubmed 出版商
  371. Ponzetta A, Carriero R, Carnevale S, Barbagallo M, Molgora M, Perucchini C, et al. Neutrophils Driving Unconventional T Cells Mediate Resistance against Murine Sarcomas and Selected Human Tumors. Cell. 2019;178:346-360.e24 pubmed 出版商
  372. Leach S, Shinnakasu R, Adachi Y, Momota M, Makino Okamura C, Yamamoto T, et al. Requirement for memory B cell activation in protection from heterologous influenza virus reinfection. Int Immunol. 2019;: pubmed 出版商
  373. Liu D, Yin X, Olyha S, Nascimento M, Chen P, White T, et al. IL-10-Dependent Crosstalk between Murine Marginal Zone B Cells, Macrophages, and CD8α+ Dendritic Cells Promotes Listeria monocytogenes Infection. Immunity. 2019;: pubmed 出版商
  374. Minuesa G, Albanese S, Xie W, Kazansky Y, Worroll D, Chow A, et al. Small-molecule targeting of MUSASHI RNA-binding activity in acute myeloid leukemia. Nat Commun. 2019;10:2691 pubmed 出版商
  375. Roberts A, Popov L, Mitchell G, Ching K, Licht D, Golovkine G, et al. Cas9+ conditionally-immortalized macrophages as a tool for bacterial pathogenesis and beyond. elife. 2019;8: pubmed 出版商
  376. Pascual García M, Bonfill Teixidor E, Planas Rigol E, Rubio Perez C, Iurlaro R, Arias A, et al. LIF regulates CXCL9 in tumor-associated macrophages and prevents CD8+ T cell tumor-infiltration impairing anti-PD1 therapy. Nat Commun. 2019;10:2416 pubmed 出版商
  377. Loh J, Xu S, Huo J, Kim S, Wang Y, Lam K. Dok3-protein phosphatase 1 interaction attenuates Card9 signaling and neutrophil-dependent antifungal immunity. J Clin Invest. 2019;129:2717-2729 pubmed 出版商
  378. Ortega F, Roefs M, De Miguel Pérez D, Kooijmans S, de Jong O, Sluijter J, et al. Interfering with endolysosomal trafficking enhances release of bioactive exosomes. Nanomedicine. 2019;:102014 pubmed 出版商
  379. Escolano A, Gristick H, Abernathy M, Merkenschlager J, Gautam R, Oliveira T, et al. Immunization expands B cells specific to HIV-1 V3 glycan in mice and macaques. Nature. 2019;: pubmed 出版商
  380. Wilkinson A, Ishida R, Kikuchi M, Sudo K, Morita M, Crisostomo R, et al. Long-term ex vivo haematopoietic-stem-cell expansion allows nonconditioned transplantation. Nature. 2019;: pubmed 出版商
  381. Baryawno N, Przybylski D, Kowalczyk M, Kfoury Y, Severe N, Gustafsson K, et al. A Cellular Taxonomy of the Bone Marrow Stroma in Homeostasis and Leukemia. Cell. 2019;177:1915-1932.e16 pubmed 出版商
  382. Kobayakawa K, Ohkawa Y, Yoshizaki S, Tamaru T, Saito T, Kijima K, et al. Macrophage centripetal migration drives spontaneous healing process after spinal cord injury. Sci Adv. 2019;5:eaav5086 pubmed 出版商
  383. Di Pilato M, Kim E, Cadilha B, Prüßmann J, Nasrallah M, Seruggia D, et al. Targeting the CBM complex causes Treg cells to prime tumours for immune checkpoint therapy. Nature. 2019;570:112-116 pubmed 出版商
  384. Harding J, Herbáth M, Chen Y, Rayasam A, Ritter A, Csóka B, et al. VEGF-A from Granuloma Macrophages Regulates Granulomatous Inflammation by a Non-angiogenic Pathway during Mycobacterial Infection. Cell Rep. 2019;27:2119-2131.e6 pubmed 出版商
  385. Yousef H, Czupalla C, Lee D, Chen M, Burke A, Zera K, et al. Aged blood impairs hippocampal neural precursor activity and activates microglia via brain endothelial cell VCAM1. Nat Med. 2019;25:988-1000 pubmed 出版商
  386. Bertrand L, Méroth F, Tournebize M, Leda A, Sun E, Toborek M. Targeting the HIV-infected brain to improve ischemic stroke outcome. Nat Commun. 2019;10:2009 pubmed 出版商
  387. Cunin P, Bouslama R, Machlus K, Martínez Bonet M, Lee P, Wactor A, et al. Megakaryocyte emperipolesis mediates membrane transfer from intracytoplasmic neutrophils to platelets. elife. 2019;8: pubmed 出版商
  388. Zhang J, Supakorndej T, Krambs J, Rao M, Abou Ezzi G, Ye R, et al. Bone marrow dendritic cells regulate hematopoietic stem/progenitor cell trafficking. J Clin Invest. 2019;129:2920-2931 pubmed 出版商
  389. Kuriakose J, Redecke V, Guy C, Zhou J, Wu R, Ippagunta S, et al. Patrolling monocytes promote the pathogenesis of early lupus-like glomerulonephritis. J Clin Invest. 2019;129:2251-2265 pubmed 出版商
  390. Mogilenko D, Haas J, L homme L, Fleury S, Quemener S, Levavasseur M, et al. Metabolic and Innate Immune Cues Merge into a Specific Inflammatory Response via the UPR. Cell. 2019;177:1201-1216.e19 pubmed 出版商
  391. Lemarchand E, Barrington J, Chenery A, Haley M, Coutts G, Allen J, et al. Extent of Ischemic Brain Injury After Thrombotic Stroke Is Independent of the NLRP3 (NACHT, LRR and PYD Domains-Containing Protein 3) Inflammasome. Stroke. 2019;50:1232-1239 pubmed 出版商
  392. Veglia F, Tyurin V, Blasi M, De Leo A, Kossenkov A, Donthireddy L, et al. Fatty acid transport protein 2 reprograms neutrophils in cancer. Nature. 2019;569:73-78 pubmed 出版商
  393. Esterházy D, Canesso M, Mesin L, Muller P, de Castro T, Lockhart A, et al. Compartmentalized gut lymph node drainage dictates adaptive immune responses. Nature. 2019;569:126-130 pubmed 出版商
  394. Jacome Galarza C, Percin G, Muller J, Mass E, Lazarov T, Eitler J, et al. Developmental origin, functional maintenance and genetic rescue of osteoclasts. Nature. 2019;568:541-545 pubmed 出版商
  395. LaFleur M, Nguyen T, Coxe M, Yates K, Trombley J, Weiss S, et al. A CRISPR-Cas9 delivery system for in vivo screening of genes in the immune system. Nat Commun. 2019;10:1668 pubmed 出版商
  396. Lesch B, Tothova Z, Morgan E, Liao Z, Bronson R, Ebert B, et al. Intergenerational epigenetic inheritance of cancer susceptibility in mammals. elife. 2019;8: pubmed 出版商
  397. Uderhardt S, Martins A, Tsang J, Lämmermann T, Germain R. Resident Macrophages Cloak Tissue Microlesions to Prevent Neutrophil-Driven Inflammatory Damage. Cell. 2019;177:541-555.e17 pubmed 出版商
  398. Lytle N, Ferguson L, Rajbhandari N, Gilroy K, Fox R, Deshpande A, et al. A Multiscale Map of the Stem Cell State in Pancreatic Adenocarcinoma. Cell. 2019;177:572-586.e22 pubmed 出版商
  399. Binnewies M, Mujal A, Pollack J, Combes A, Hardison E, Barry K, et al. Unleashing Type-2 Dendritic Cells to Drive Protective Antitumor CD4+ T Cell Immunity. Cell. 2019;177:556-571.e16 pubmed 出版商
  400. Wang E, Dai Z, Ferrante A, Drake C, Christiano A. A Subset of TREM2+ Dermal Macrophages Secretes Oncostatin M to Maintain Hair Follicle Stem Cell Quiescence and Inhibit Hair Growth. Cell Stem Cell. 2019;: pubmed 出版商
  401. Janela B, Patel A, Lau M, Goh C, Msallam R, Kong W, et al. A Subset of Type I Conventional Dendritic Cells Controls Cutaneous Bacterial Infections through VEGFα-Mediated Recruitment of Neutrophils. Immunity. 2019;50:1069-1083.e8 pubmed 出版商
  402. Sweere J, Van Belleghem J, Ishak H, Bach M, Popescu M, Sunkari V, et al. Bacteriophage trigger antiviral immunity and prevent clearance of bacterial infection. Science. 2019;363: pubmed 出版商
  403. Yao W, Rose J, Wang W, Seth S, Jiang H, Taguchi A, et al. Syndecan 1 is a critical mediator of macropinocytosis in pancreatic cancer. Nature. 2019;: pubmed 出版商
  404. Liao W, Overman M, Boutin A, Shang X, Zhao D, Dey P, et al. KRAS-IRF2 Axis Drives Immune Suppression and Immune Therapy Resistance in Colorectal Cancer. Cancer Cell. 2019;35:559-572.e7 pubmed 出版商
  405. Perdomo J, Leung H, Ahmadi Z, Yan F, Chong J, Passam F, et al. Neutrophil activation and NETosis are the major drivers of thrombosis in heparin-induced thrombocytopenia. Nat Commun. 2019;10:1322 pubmed 出版商
  406. Frank A, Ebersberger S, Fink A, Lampe S, Weigert A, Schmid T, et al. Apoptotic tumor cell-derived microRNA-375 uses CD36 to alter the tumor-associated macrophage phenotype. Nat Commun. 2019;10:1135 pubmed 出版商
  407. Lee J, Stone M, Porrett P, Thomas S, Komar C, Li J, et al. Hepatocytes direct the formation of a pro-metastatic niche in the liver. Nature. 2019;567:249-252 pubmed 出版商
  408. Dey A, Yang W, Gegonne A, Nishiyama A, Pan R, Yagi R, et al. BRD4 directs hematopoietic stem cell development and modulates macrophage inflammatory responses. EMBO J. 2019;38: pubmed 出版商
  409. Li W, Feng G, Gauthier J, Lokshina I, Higashikubo R, Evans S, et al. Ferroptotic cell death and TLR4/Trif signaling initiate neutrophil recruitment after heart transplantation. J Clin Invest. 2019;129:2293-2304 pubmed 出版商
  410. Halvarsson C, Rörby E, Eliasson P, Lang S, Soneji S, Jönsson J. Putative role of NF-kB but not HIF-1α in hypoxia-dependent regulation of oxidative stress in hematopoietic stem and progenitor cells. Antioxid Redox Signal. 2019;: pubmed 出版商
  411. Tan D, Li Y, Yang C, Li J, Tan S, Chin D, et al. PRMT5 Modulates Splicing for Genome Integrity and Preserves Proteostasis of Hematopoietic Stem Cells. Cell Rep. 2019;26:2316-2328.e6 pubmed 出版商
  412. Thompson P, Shah A, Ntranos V, Van Gool F, Atkinson M, Bhushan A. Targeted Elimination of Senescent Beta Cells Prevents Type 1 Diabetes. Cell Metab. 2019;29:1045-1060.e10 pubmed 出版商
  413. Joy M, Ben Assayag E, Shabashov Stone D, Liraz Zaltsman S, Mazzitelli J, Arenas M, et al. CCR5 Is a Therapeutic Target for Recovery after Stroke and Traumatic Brain Injury. Cell. 2019;176:1143-1157.e13 pubmed 出版商
  414. McAlpine C, Kiss M, Rattik S, He S, Vassalli A, Valet C, et al. Sleep modulates haematopoiesis and protects against atherosclerosis. Nature. 2019;566:383-387 pubmed 出版商
  415. Anderson R, Lagnado A, Maggiorani D, Walaszczyk A, Dookun E, Chapman J, et al. Length-independent telomere damage drives post-mitotic cardiomyocyte senescence. EMBO J. 2019;38: pubmed 出版商
  416. Dosch M, Zindel J, Jebbawi F, Melin N, Sánchez Taltavull D, Stroka D, et al. Connexin-43-dependent ATP release mediates macrophage activation during sepsis. elife. 2019;8: pubmed 出版商
  417. Körner A, Schlegel M, Kaussen T, Gudernatsch V, Hansmann G, Schumacher T, et al. Sympathetic nervous system controls resolution of inflammation via regulation of repulsive guidance molecule A. Nat Commun. 2019;10:633 pubmed 出版商
  418. Han D, Liu J, Chen C, Dong L, Liu Y, Chang R, et al. Anti-tumour immunity controlled through mRNA m6A methylation and YTHDF1 in dendritic cells. Nature. 2019;566:270-274 pubmed 出版商
  419. Rowe R, Lummertz da Rocha E, Sousa P, Missios P, Morse M, Marion W, et al. The developmental stage of the hematopoietic niche regulates lineage in MLL-rearranged leukemia. J Exp Med. 2019;216:527-538 pubmed 出版商
  420. Paudel S, Baral P, Ghimire L, Bergeron S, Jin L, De Corte J, et al. CXCL1 regulates neutrophil homeostasis in pneumonia-derived sepsis caused by Streptococcus pneumoniae serotype 3. Blood. 2019;: pubmed 出版商
  421. Jin C, Lagoudas G, Zhao C, Bullman S, Bhutkar A, Hu B, et al. Commensal Microbiota Promote Lung Cancer Development via γδ T Cells. Cell. 2019;176:998-1013.e16 pubmed 出版商
  422. Kobayashi T, Voisin B, Kim D, Kennedy E, Jo J, Shih H, et al. Homeostatic Control of Sebaceous Glands by Innate Lymphoid Cells Regulates Commensal Bacteria Equilibrium. Cell. 2019;176:982-997.e16 pubmed 出版商
  423. Lavoie S, Conway K, Lassen K, Jijon H, Pan H, Chun E, et al. The Crohn's disease polymorphism, ATG16L1 T300A, alters the gut microbiota and enhances the local Th1/Th17 response. elife. 2019;8: pubmed 出版商
  424. Wheeler M, Jaronen M, Covacu R, Zandee S, Scalisi G, Rothhammer V, et al. Environmental Control of Astrocyte Pathogenic Activities in CNS Inflammation. Cell. 2019;176:581-596.e18 pubmed 出版商
  425. McLaren J, Clement M, Marsden M, Miners K, Llewellyn Lacey S, Grant E, et al. IL-33 Augments Virus-Specific Memory T Cell Inflation and Potentiates the Efficacy of an Attenuated Cytomegalovirus-Based Vaccine. J Immunol. 2019;202:943-955 pubmed 出版商
  426. Lee Y, Ju J, Shon W, Oh S, Min C, Kang M, et al. Skewed Dendritic Cell Differentiation of MyD88-Deficient Donor Bone Marrow Cells, Instead of Massive Expansion as Myeloid-Derived Suppressor Cells, Aggravates GVHD. Immune Netw. 2018;18:e44 pubmed 出版商
  427. Arifuzzaman M, Mobley Y, Choi H, Bist P, Salinas C, Brown Z, et al. MRGPR-mediated activation of local mast cells clears cutaneous bacterial infection and protects against reinfection. Sci Adv. 2019;5:eaav0216 pubmed 出版商
  428. Chopin M, Lun A, Zhan Y, Schreuder J, Coughlan H, D Amico A, et al. Transcription Factor PU.1 Promotes Conventional Dendritic Cell Identity and Function via Induction of Transcriptional Regulator DC-SCRIPT. Immunity. 2019;50:77-90.e5 pubmed 出版商
  429. Keklikoglou I, Cianciaruso C, Güç E, Squadrito M, Spring L, Tazzyman S, et al. Chemotherapy elicits pro-metastatic extracellular vesicles in breast cancer models. Nat Cell Biol. 2019;21:190-202 pubmed 出版商
  430. Düsedau H, Kleveman J, Figueiredo C, Biswas A, Steffen J, Kliche S, et al. p75NTR regulates brain mononuclear cell function and neuronal structure in Toxoplasma infection-induced neuroinflammation. Glia. 2019;67:193-211 pubmed 出版商
  431. Al Mamun A, Yu H, Mirza M, Romana S, McCullough L, Liu F. Myeloid cell IRF4 signaling protects neonatal brains from hypoxic ischemic encephalopathy. Neurochem Int. 2019;127:148-157 pubmed 出版商
  432. Ruscetti M, Leibold J, Bott M, Fennell M, Kulick A, Salgado N, et al. NK cell-mediated cytotoxicity contributes to tumor control by a cytostatic drug combination. Science. 2018;362:1416-1422 pubmed 出版商
  433. Karmaus P, Chen X, Lim S, Herrada A, Nguyen T, Xu B, et al. Metabolic heterogeneity underlies reciprocal fates of TH17 cell stemness and plasticity. Nature. 2019;565:101-105 pubmed 出版商
  434. Barros Silva J, Linn D, Steiner I, Guo G, Ali A, Pakula H, et al. Single-Cell Analysis Identifies LY6D as a Marker Linking Castration-Resistant Prostate Luminal Cells to Prostate Progenitors and Cancer. Cell Rep. 2018;25:3504-3518.e6 pubmed 出版商
  435. Normand S, Waldschmitt N, Neerincx A, Martinez Torres R, Chauvin C, Couturier Maillard A, et al. Proteasomal degradation of NOD2 by NLRP12 in monocytes promotes bacterial tolerance and colonization by enteropathogens. Nat Commun. 2018;9:5338 pubmed 出版商
  436. Ishizuka J, Manguso R, Cheruiyot C, Bi K, Panda A, Iracheta Vellve A, et al. Loss of ADAR1 in tumours overcomes resistance to immune checkpoint blockade. Nature. 2019;565:43-48 pubmed 出版商
  437. Kaplanov I, Carmi Y, Kornetsky R, Shemesh A, Shurin G, Shurin M, et al. Blocking IL-1β reverses the immunosuppression in mouse breast cancer and synergizes with anti-PD-1 for tumor abrogation. Proc Natl Acad Sci U S A. 2019;116:1361-1369 pubmed 出版商
  438. Jones G, Bain C, Fenton T, Kelly A, Brown S, Ivens A, et al. Dynamics of Colon Monocyte and Macrophage Activation During Colitis. Front Immunol. 2018;9:2764 pubmed 出版商
  439. Ding L, Kim H, Wang Q, Kearns M, Jiang T, Ohlson C, et al. PARP Inhibition Elicits STING-Dependent Antitumor Immunity in Brca1-Deficient Ovarian Cancer. Cell Rep. 2018;25:2972-2980.e5 pubmed 出版商
  440. Gubernatorova E, Gorshkova E, Namakanova O, Zvartsev R, Hidalgo J, Drutskaya M, et al. Non-redundant Functions of IL-6 Produced by Macrophages and Dendritic Cells in Allergic Airway Inflammation. Front Immunol. 2018;9:2718 pubmed 出版商
  441. Cai Z, Kotzin J, Ramdas B, Chen S, Nelanuthala S, Palam L, et al. Inhibition of Inflammatory Signaling in Tet2 Mutant Preleukemic Cells Mitigates Stress-Induced Abnormalities and Clonal Hematopoiesis. Cell Stem Cell. 2018;23:833-849.e5 pubmed 出版商
  442. Benmerzoug S, Rose S, Bounab B, Gosset D, Duneau L, Chenuet P, et al. STING-dependent sensing of self-DNA drives silica-induced lung inflammation. Nat Commun. 2018;9:5226 pubmed 出版商
  443. Sato Y, Bolzenius J, Eteleeb A, Su X, Maher C, Sehn J, et al. CD4+ T cells induce rejection of urothelial tumors after immune checkpoint blockade. JCI Insight. 2018;3: pubmed 出版商
  444. Uccellini M, Garcia Sastre A. ISRE-Reporter Mouse Reveals High Basal and Induced Type I IFN Responses in Inflammatory Monocytes. Cell Rep. 2018;25:2784-2796.e3 pubmed 出版商
  445. Mouhadeb O, Ben Shlomo S, Cohen K, Farkash I, Gruber S, Maharshak N, et al. Impaired COMMD10-Mediated Regulation of Ly6Chi Monocyte-Driven Inflammation Disrupts Gut Barrier Function. Front Immunol. 2018;9:2623 pubmed 出版商
  446. Aarts S, Seijkens T, Kusters P, Van Tiel C, Reiche M, den Toom M, et al. Macrophage CD40 signaling drives experimental autoimmune encephalomyelitis. J Pathol. 2019;247:471-480 pubmed 出版商
  447. Inoue T, Ito Y, Nishizawa N, Eshima K, Kojo K, Otaka F, et al. RAMP1 in Kupffer cells is a critical regulator in immune-mediated hepatitis. PLoS ONE. 2018;13:e0200432 pubmed 出版商
  448. Sharma D, Malik A, Guy C, Vogel P, Kanneganti T. TNF/TNFR axis promotes pyrin inflammasome activation and distinctly modulates pyrin inflammasomopathy. J Clin Invest. 2019;129:150-162 pubmed 出版商
  449. Glal D, Sudhakar J, Lu H, Liu M, Chiang H, Liu Y, et al. ATF3 Sustains IL-22-Induced STAT3 Phosphorylation to Maintain Mucosal Immunity Through Inhibiting Phosphatases. Front Immunol. 2018;9:2522 pubmed 出版商
  450. Safronova A, Araujo A, Camanzo E, Moon T, Elliott M, Beiting D, et al. Alarmin S100A11 initiates a chemokine response to the human pathogen Toxoplasma gondii. Nat Immunol. 2019;20:64-72 pubmed 出版商
  451. Grohmann M, Wiede F, Dodd G, Gurzov E, Ooi G, Butt T, et al. Obesity Drives STAT-1-Dependent NASH and STAT-3-Dependent HCC. Cell. 2018;175:1289-1306.e20 pubmed 出版商
  452. Lund H, Pieber M, Parsa R, Han J, Grommisch D, Ewing E, et al. Competitive repopulation of an empty microglial niche yields functionally distinct subsets of microglia-like cells. Nat Commun. 2018;9:4845 pubmed 出版商
  453. Rao T, Gupta M, Softic S, Wang L, Jang Y, Thomou T, et al. Attenuation of PKCδ enhances metabolic activity and promotes expansion of blood progenitors. EMBO J. 2018;37: pubmed 出版商
  454. Chinta K, Rahman M, Saini V, Glasgow J, Reddy V, Lever J, et al. Microanatomic Distribution of Myeloid Heme Oxygenase-1 Protects against Free Radical-Mediated Immunopathology in Human Tuberculosis. Cell Rep. 2018;25:1938-1952.e5 pubmed 出版商
  455. Casagrande F, de Souza Ferreira S, Nunes F, Romera L, Dos Santos S, Tessaro F, et al. Insulin Modulates Paracoccidioides brasiliensis-Induced Inflammation by Restoring the Populations of NK Cells, Dendritic Cells, and B Lymphocytes in Lungs. J Diabetes Res. 2018;2018:6209694 pubmed 出版商
  456. Hakuno D, Kimura M, Ito S, Satoh J, Nakashima Y, Horie T, et al. Hepatokine α1-Microglobulin Signaling Exacerbates Inflammation and Disturbs Fibrotic Repair in Mouse Myocardial Infarction. Sci Rep. 2018;8:16749 pubmed 出版商
  457. Wilgenburg B, Loh L, Chen Z, Pediongco T, Wang H, Shi M, et al. MAIT cells contribute to protection against lethal influenza infection in vivo. Nat Commun. 2018;9:4706 pubmed 出版商
  458. Grigoryan A, Guidi N, Senger K, Liehr T, Soller K, Marka G, et al. LaminA/C regulates epigenetic and chromatin architecture changes upon aging of hematopoietic stem cells. Genome Biol. 2018;19:189 pubmed 出版商
  459. Klement J, Paschall A, Redd P, Ibrahim M, Lu C, Yang D, et al. An osteopontin/CD44 immune checkpoint controls CD8+ T cell activation and tumor immune evasion. J Clin Invest. 2018;128:5549-5560 pubmed 出版商
  460. Hsu J, Dayaram T, Tovy A, De Braekeleer E, Jeong M, Wang F, et al. PPM1D Mutations Drive Clonal Hematopoiesis in Response to Cytotoxic Chemotherapy. Cell Stem Cell. 2018;23:700-713.e6 pubmed 出版商
  461. Zhang C, Jiang M, Zhou H, Liu W, Wang C, Kang Z, et al. TLR-stimulated IRAKM activates caspase-8 inflammasome in microglia and promotes neuroinflammation. J Clin Invest. 2018;128:5399-5412 pubmed 出版商
  462. Kelly A, Günaltay S, McEntee C, Shuttleworth E, Smedley C, Houston S, et al. Human monocytes and macrophages regulate immune tolerance via integrin αvβ8-mediated TGFβ activation. J Exp Med. 2018;215:2725-2736 pubmed 出版商
  463. Chen H, van der Touw W, Wang Y, Kang K, Mai S, Zhang J, et al. Blocking immunoinhibitory receptor LILRB2 reprograms tumor-associated myeloid cells and promotes antitumor immunity. J Clin Invest. 2018;128:5647-5662 pubmed 出版商
  464. Meyer I, Goetzke C, Kespohl M, Sauter M, Heuser A, Eckstein V, et al. Silencing the CSF-1 Axis Using Nanoparticle Encapsulated siRNA Mitigates Viral and Autoimmune Myocarditis. Front Immunol. 2018;9:2303 pubmed 出版商
  465. Farhat K, Bodart G, Charlet Renard C, Desmet C, Moutschen M, Beguin Y, et al. Growth Hormone (GH) Deficient Mice With GHRH Gene Ablation Are Severely Deficient in Vaccine and Immune Responses Against Streptococcus pneumoniae. Front Immunol. 2018;9:2175 pubmed 出版商
  466. Humblet Baron S, Barber J, Roca C, Lenaerts A, Koni P, Liston A. Murine myeloproliferative disorder as a consequence of impaired collaboration between dendritic cells and CD4 T cells. Blood. 2018;: pubmed 出版商
  467. Mollaoglu G, Jones A, Wait S, Mukhopadhyay A, Jeong S, Arya R, et al. The Lineage-Defining Transcription Factors SOX2 and NKX2-1 Determine Lung Cancer Cell Fate and Shape the Tumor Immune Microenvironment. Immunity. 2018;49:764-779.e9 pubmed 出版商
  468. Noh J, Kim Y, Kim D, Hwang J, Kim K, Choi D, et al. Small heterodimer partner negatively regulates C-X-C motif chemokine ligand 2 in hepatocytes during liver inflammation. Sci Rep. 2018;8:15222 pubmed 出版商
  469. Er J, Koean R, Ding J. Loss of T-bet confers survival advantage to influenza-bacterial superinfection. EMBO J. 2019;38: pubmed 出版商
  470. Chang S, Kim Y, Kim Y, Kim Y, Moon S, Lee Y, et al. Taurodeoxycholate Increases the Number of Myeloid-Derived Suppressor Cells That Ameliorate Sepsis in Mice. Front Immunol. 2018;9:1984 pubmed 出版商
  471. Masuda J, Umemura C, Yokozawa M, Yamauchi K, Seko T, Yamashita M, et al. Dietary Supplementation of Selenoneine-Containing Tuna Dark Muscle Extract Effectively Reduces Pathology of Experimental Colorectal Cancers in Mice. Nutrients. 2018;10: pubmed 出版商
  472. Albrengues J, Shields M, Ng D, Park C, Ambrico A, Poindexter M, et al. Neutrophil extracellular traps produced during inflammation awaken dormant cancer cells in mice. Science. 2018;361: pubmed 出版商
  473. Shi H, Han X, Sun Y, Shang C, Wei M, Ba X, et al. Chemokine (C-X-C motif) ligand 1 and CXCL2 produced by tumor promote the generation of monocytic myeloid-derived suppressor cells. Cancer Sci. 2018;109:3826-3839 pubmed 出版商
  474. Qu J, Li L, Xie H, Zhang X, Yang Q, Qiu H, et al. TLR3 Modulates the Response of NK Cells against Schistosoma japonicum. J Immunol Res. 2018;2018:7519856 pubmed 出版商
  475. Adam L, Lopez Gonzalez M, Björk A, Pålsson S, Poux C, Wahren Herlenius M, et al. Early Resistance of Non-virulent Mycobacterial Infection in C57BL/6 Mice Is Associated With Rapid Up-Regulation of Antimicrobial Cathelicidin Camp. Front Immunol. 2018;9:1939 pubmed 出版商
  476. Stephens J, Bailey J, Hang H, Rittell V, Dietrich M, Mynatt R, et al. Adipose Tissue Dysfunction Occurs Independently of Obesity in Adipocyte-Specific Oncostatin Receptor Knockout Mice. Obesity (Silver Spring). 2018;26:1439-1447 pubmed 出版商
  477. Williams G, Schonhoff A, Jurkuvenaite A, Thome A, Standaert D, Harms A. Targeting of the class II transactivator attenuates inflammation and neurodegeneration in an alpha-synuclein model of Parkinson's disease. J Neuroinflammation. 2018;15:244 pubmed 出版商
  478. Sun K, Cheung K, Au S, Yeung S, Yeung E. Overexpression of Mechano-Growth Factor Modulates Inflammatory Cytokine Expression and Macrophage Resolution in Skeletal Muscle Injury. Front Physiol. 2018;9:999 pubmed 出版商
  479. Schrand B, Clark E, Levay A, Capote A, Martínez O, Brenneman R, et al. Hapten-mediated recruitment of polyclonal antibodies to tumors engenders antitumor immunity. Nat Commun. 2018;9:3348 pubmed 出版商
  480. Keszei M, Record J, Kritikou J, Wurzer H, Geyer C, Thiemann M, et al. Constitutive activation of WASp in X-linked neutropenia renders neutrophils hyperactive. J Clin Invest. 2018;128:4115-4131 pubmed 出版商
  481. Lee S, North K, Kim E, Jang E, Obeng E, Lu S, et al. Synthetic Lethal and Convergent Biological Effects of Cancer-Associated Spliceosomal Gene Mutations. Cancer Cell. 2018;34:225-241.e8 pubmed 出版商
  482. White E, Gyulay G, Lhotak S, Szewczyk M, Chong T, Fuller M, et al. Sialidase down-regulation reduces non-HDL cholesterol, inhibits leukocyte transmigration, and attenuates atherosclerosis in ApoE knockout mice. J Biol Chem. 2018;293:14689-14706 pubmed 出版商
  483. Kiang L, Ross B, Yao J, Shanmugam S, Andrews C, Hansen S, et al. Vitreous Cytokine Expression and a Murine Model Suggest a Key Role of Microglia in the Inflammatory Response to Retinal Detachment. Invest Ophthalmol Vis Sci. 2018;59:3767-3778 pubmed 出版商
  484. Heshmati Y, Kharazi S, Türköz G, Chang D, Kamali Dolatabadi E, Boström J, et al. The histone chaperone NAP1L3 is required for haematopoietic stem cell maintenance and differentiation. Sci Rep. 2018;8:11202 pubmed 出版商
  485. Gallot Y, Straughn A, Bohnert K, Xiong G, Hindi S, Kumar A. MyD88 is required for satellite cell-mediated myofiber regeneration in dystrophin-deficient mdx mice. Hum Mol Genet. 2018;27:3449-3463 pubmed 出版商
  486. Arnold I, Artola Borán M, Tallón de Lara P, Kyburz A, Taube C, OTTEMANN K, et al. Eosinophils suppress Th1 responses and restrict bacterially induced gastrointestinal inflammation. J Exp Med. 2018;215:2055-2072 pubmed 出版商
  487. Kim Y, Lee M, Gu H, Kim J, Jeong S, Yeo S, et al. HIF-1α activation in myeloid cells accelerates dextran sodium sulfate-induced colitis progression in mice. Dis Model Mech. 2018;11: pubmed 出版商
  488. Puchner A, Saferding V, Bonelli M, Mikami Y, Hofmann M, Brunner J, et al. Non-classical monocytes as mediators of tissue destruction in arthritis. Ann Rheum Dis. 2018;77:1490-1497 pubmed 出版商
  489. Li J, Byrne K, Yan F, Yamazoe T, Chen Z, Baslan T, et al. Tumor Cell-Intrinsic Factors Underlie Heterogeneity of Immune Cell Infiltration and Response to Immunotherapy. Immunity. 2018;49:178-193.e7 pubmed 出版商
  490. Nusse Y, Savage A, Marangoni P, Rosendahl Huber A, Landman T, De Sauvage F, et al. Parasitic helminths induce fetal-like reversion in the intestinal stem cell niche. Nature. 2018;559:109-113 pubmed 出版商
  491. Quenum Zangbede F, Chauhan A, Sharma J, Mishra B. Galectin-3 in M2 Macrophages Plays a Protective Role in Resolution of Neuropathology in Brain Parasitic Infection by Regulating Neutrophil Turnover. J Neurosci. 2018;38:6737-6750 pubmed 出版商
  492. Umemoto T, Hashimoto M, Matsumura T, Nakamura Ishizu A, Suda T. Ca2+-mitochondria axis drives cell division in hematopoietic stem cells. J Exp Med. 2018;215:2097-2113 pubmed 出版商
  493. Wang X, Dong F, Zhang S, Yang W, Yu W, Wang Z, et al. TGF-?1 Negatively Regulates the Number and Function of Hematopoietic Stem Cells. Stem Cell Reports. 2018;11:274-287 pubmed 出版商
  494. Casey A, Sinha A, Singhania R, Livingstone J, Waterhouse P, Tharmapalan P, et al. Mammary molecular portraits reveal lineage-specific features and progenitor cell vulnerabilities. J Cell Biol. 2018;217:2951-2974 pubmed 出版商
  495. Weiss J, Davies L, Karwan M, Ileva L, Ozaki M, Cheng R, et al. Itaconic acid mediates crosstalk between macrophage metabolism and peritoneal tumors. J Clin Invest. 2018;128:3794-3805 pubmed 出版商
  496. Alissafi T, Hatzioannou A, Mintzas K, Barouni R, Banos A, Sormendi S, et al. Autophagy orchestrates the regulatory program of tumor-associated myeloid-derived suppressor cells. J Clin Invest. 2018;128:3840-3852 pubmed 出版商
  497. Greenblatt S, Man N, Hamard P, Asai T, Karl D, Martínez C, et al. CARM1 Is Essential for Myeloid Leukemogenesis but Dispensable for Normal Hematopoiesis. Cancer Cell. 2018;33:1111-1127.e5 pubmed 出版商
  498. Napolitano A, van der Veen A, Bunyan M, Borg A, Frith D, Howell S, et al. Cysteine-Reactive Free ISG15 Generates IL-1β-Producing CD8α+ Dendritic Cells at the Site of Infection. J Immunol. 2018;201:604-614 pubmed 出版商
  499. Gu C, Borjabad A, Hadas E, Kelschenbach J, Kim B, Chao W, et al. EcoHIV infection of mice establishes latent viral reservoirs in T cells and active viral reservoirs in macrophages that are sufficient for induction of neurocognitive impairment. PLoS Pathog. 2018;14:e1007061 pubmed 出版商
  500. Ghanem L, Kromer A, Silverman I, Ji X, Gazzara M, Nguyen N, et al. Poly(C)-Binding Protein Pcbp2 Enables Differentiation of Definitive Erythropoiesis by Directing Functional Splicing of the Runx1 Transcript. Mol Cell Biol. 2018;38: pubmed 出版商
  501. Lau A, Chung H, Komada T, Platnich J, Sandall C, Choudhury S, et al. Renal immune surveillance and dipeptidase-1 contribute to contrast-induced acute kidney injury. J Clin Invest. 2018;128:2894-2913 pubmed 出版商
  502. Tsiantoulas D, Sage A, Göderle L, Ozsvar Kozma M, Murphy D, Porsch F, et al. BAFF Neutralization Aggravates Atherosclerosis. Circulation. 2018;: pubmed 出版商
  503. Chen Y, Qin X, An Q, Yi J, Feng F, Yin D, et al. Mesenchymal Stromal Cells Directly Promote Inflammation by Canonical NLRP3 and Non-canonical Caspase-11 Inflammasomes. EBioMedicine. 2018;32:31-42 pubmed 出版商
  504. Baumgartner C, Toifl S, Farlik M, Halbritter F, Scheicher R, Fischer I, et al. An ERK-Dependent Feedback Mechanism Prevents Hematopoietic Stem Cell Exhaustion. Cell Stem Cell. 2018;22:879-892.e6 pubmed 出版商
  505. Kanneganti A, Malireddi R, Saavedra P, Vande Walle L, Van Gorp H, Kambara H, et al. GSDMD is critical for autoinflammatory pathology in a mouse model of Familial Mediterranean Fever. J Exp Med. 2018;215:1519-1529 pubmed 出版商
  506. Shaw T, Houston S, Wemyss K, Bridgeman H, Barbera T, Zangerle Murray T, et al. Tissue-resident macrophages in the intestine are long lived and defined by Tim-4 and CD4 expression. J Exp Med. 2018;215:1507-1518 pubmed 出版商
  507. Hsiao H, Fernandez R, Tanaka S, Li W, Spahn J, Chiu S, et al. Spleen-derived classical monocytes mediate lung ischemia-reperfusion injury through IL-1β. J Clin Invest. 2018;128:2833-2847 pubmed 出版商
  508. Huynh J, Lin C, Kimmey J, Jarjour N, Schwarzkopf E, Bradstreet T, et al. Bhlhe40 is an essential repressor of IL-10 during Mycobacterium tuberculosis infection. J Exp Med. 2018;215:1823-1838 pubmed 出版商
  509. Mitchell K, Barreyro L, Todorova T, Taylor S, Antony Debré I, Narayanagari S, et al. IL1RAP potentiates multiple oncogenic signaling pathways in AML. J Exp Med. 2018;215:1709-1727 pubmed 出版商
  510. Thomson C, van de Pavert S, Stakenborg M, Labeeuw E, Matteoli G, Mowat A, et al. Expression of the Atypical Chemokine Receptor ACKR4 Identifies a Novel Population of Intestinal Submucosal Fibroblasts That Preferentially Expresses Endothelial Cell Regulators. J Immunol. 2018;201:215-229 pubmed 出版商
  511. Thompson T, Jackson B, Li P, Wang J, Kim A, Huang K, et al. Tumor-derived CSF-1 induces the NKG2D ligand RAE-1δ on tumor-infiltrating macrophages. elife. 2018;7: pubmed 出版商
  512. Gozdecka M, Meduri E, Mazan M, Tzelepis K, Dudek M, Knights A, et al. UTX-mediated enhancer and chromatin remodeling suppresses myeloid leukemogenesis through noncatalytic inverse regulation of ETS and GATA programs. Nat Genet. 2018;50:883-894 pubmed 出版商
  513. Crosby E, Wei J, Yang X, Lei G, Wang T, Liu C, et al. Complimentary mechanisms of dual checkpoint blockade expand unique T-cell repertoires and activate adaptive anti-tumor immunity in triple-negative breast tumors. Oncoimmunology. 2018;7:e1421891 pubmed 出版商
  514. Baba O, Horie T, Nakao T, Hakuno D, Nakashima Y, Nishi H, et al. MicroRNA 33 Regulates the Population of Peripheral Inflammatory Ly6Chigh Monocytes through Dual Pathways. Mol Cell Biol. 2018;38: pubmed 出版商
  515. Takamori A, Nambu A, Sato K, Yamaguchi S, Matsuda K, Numata T, et al. IL-31 is crucial for induction of pruritus, but not inflammation, in contact hypersensitivity. Sci Rep. 2018;8:6639 pubmed 出版商
  516. Ge J, Burnier L, Adamopoulou M, Kwa M, Schaks M, Rottner K, et al. RhoA, Rac1, and Cdc42 differentially regulate αSMA and collagen I expression in mesenchymal stem cells. J Biol Chem. 2018;293:9358-9369 pubmed 出版商
  517. Gounder A, Yokoyama C, Jarjour N, Bricker T, Edelson B, Boon A. Interferon induced protein 35 exacerbates H5N1 influenza disease through the expression of IL-12p40 homodimer. PLoS Pathog. 2018;14:e1007001 pubmed 出版商
  518. Grist J, Marro B, Skinner D, Syage A, Worne C, Doty D, et al. Induced CNS expression of CXCL1 augments neurologic disease in a murine model of multiple sclerosis via enhanced neutrophil recruitment. Eur J Immunol. 2018;48:1199-1210 pubmed 出版商
  519. Chen W, Yang J, Wu Y, Li L, Li R, Chang Y, et al. IL-33/ST2 axis mediates hyperplasia of intrarenal urothelium in obstructive renal injury. Exp Mol Med. 2018;50:36 pubmed 出版商
  520. Salomè M, Magee A, Yalla K, Chaudhury S, Sarrou E, Carmody R, et al. A Trib2-p38 axis controls myeloid leukaemia cell cycle and stress response signalling. Cell Death Dis. 2018;9:443 pubmed 出版商
  521. Beutier H, Hechler B, Godon O, Wang Y, Gillis C, de Chaisemartin L, et al. Platelets expressing IgG receptor FcγRIIA/CD32A determine the severity of experimental anaphylaxis. Sci Immunol. 2018;3: pubmed 出版商
  522. Foerster F, Boegel S, Heck R, Pickert G, R ssel N, Rosigkeit S, et al. Enhanced protection of C57 BL/6 vs Balb/c mice to melanoma liver metastasis is mediated by NK cells. Oncoimmunology. 2018;7:e1409929 pubmed 出版商
  523. Xia P, Wang S, Ye B, Du Y, Li C, Xiong Z, et al. A Circular RNA Protects Dormant Hematopoietic Stem Cells from DNA Sensor cGAS-Mediated Exhaustion. Immunity. 2018;48:688-701.e7 pubmed 出版商
  524. Han Y, Liu Q, Hou J, Gu Y, Zhang Y, Chen Z, et al. Tumor-Induced Generation of Splenic Erythroblast-like Ter-Cells Promotes Tumor Progression. Cell. 2018;173:634-648.e12 pubmed 出版商
  525. Lyons J, Ghazi P, Starchenko A, Tovaglieri A, Baldwin K, Poulin E, et al. The colonic epithelium plays an active role in promoting colitis by shaping the tissue cytokine profile. PLoS Biol. 2018;16:e2002417 pubmed 出版商
  526. Kobayashi Y, Inagawa H, Kohchi C, Kazumura K, Tsuchiya H, Miwa T, et al. Oral administration of Pantoea agglomerans-derived lipopolysaccharide prevents development of atherosclerosis in high-fat diet-fed apoE-deficient mice via ameliorating hyperlipidemia, pro-inflammatory mediators and oxidative responses. PLoS ONE. 2018;13:e0195008 pubmed 出版商
  527. Zhang Y, Xia F, Liu X, Yu Z, Xie L, Liu L, et al. JAM3 maintains leukemia-initiating cell self-renewal through LRP5/AKT/?-catenin/CCND1 signaling. J Clin Invest. 2018;128:1737-1751 pubmed 出版商
  528. Shevchenko M, Bogorodskiy A, Troyanova N, Servuli E, Bolkhovitina E, Büldt G, et al. Aspergillus fumigatus Infection-Induced Neutrophil Recruitment and Location in the Conducting Airway of Immunocompetent, Neutropenic, and Immunosuppressed Mice. J Immunol Res. 2018;2018:5379085 pubmed 出版商
  529. Hill R, Hoffman B, Morita T, Campos S, Lumpkin E, Brem R, et al. The signaling lipid sphingosine 1-phosphate regulates mechanical pain. elife. 2018;7: pubmed 出版商
  530. Verbiest T, Finnon R, Brown N, Cruz Garcia L, Finnon P, O Brien G, et al. Tracking preleukemic cells in vivo to reveal the sequence of molecular events in radiation leukemogenesis. Leukemia. 2018;32:1435-1444 pubmed 出版商
  531. Tsubaki T, Kadonosono T, Sakurai S, Shiozawa T, Goto T, Sakai S, et al. Novel adherent CD11b+ Gr-1+ tumor-infiltrating cells initiate an immunosuppressive tumor microenvironment. Oncotarget. 2018;9:11209-11226 pubmed 出版商
  532. Macdougall C, Wood E, Loschko J, Scagliotti V, Cassidy F, Robinson M, et al. Visceral Adipose Tissue Immune Homeostasis Is Regulated by the Crosstalk between Adipocytes and Dendritic Cell Subsets. Cell Metab. 2018;27:588-601.e4 pubmed 出版商
  533. Giurisato E, Xu Q, Lonardi S, Telfer B, Russo I, Pearson A, et al. Myeloid ERK5 deficiency suppresses tumor growth by blocking protumor macrophage polarization via STAT3 inhibition. Proc Natl Acad Sci U S A. 2018;115:E2801-E2810 pubmed 出版商
  534. Zhang B, Nguyen L, Li L, Zhao D, Kumar B, Wu H, et al. Bone marrow niche trafficking of miR-126 controls the self-renewal of leukemia stem cells in chronic myelogenous leukemia. Nat Med. 2018;24:450-462 pubmed 出版商
  535. Clemente C, Rius C, Alonso Herranz L, Martín Alonso M, Pollán A, Camafeita E, et al. MT4-MMP deficiency increases patrolling monocyte recruitment to early lesions and accelerates atherosclerosis. Nat Commun. 2018;9:910 pubmed 出版商
  536. Yeh C, Nojima T, Kuraoka M, Kelsoe G. Germinal center entry not selection of B cells is controlled by peptide-MHCII complex density. Nat Commun. 2018;9:928 pubmed 出版商
  537. Huang L, Nazarova E, Tan S, Liu Y, Russell D. Growth of Mycobacterium tuberculosis in vivo segregates with host macrophage metabolism and ontogeny. J Exp Med. 2018;215:1135-1152 pubmed 出版商
  538. Hailemichael Y, Woods A, Fu T, He Q, Nielsen M, Hasan F, et al. Cancer vaccine formulation dictates synergy with CTLA-4 and PD-L1 checkpoint blockade therapy. J Clin Invest. 2018;128:1338-1354 pubmed 出版商
  539. Zukor K, Wang H, Siddharthan V, Julander J, Morrey J. Zika virus-induced acute myelitis and motor deficits in adult interferon ??/? receptor knockout mice. J Neurovirol. 2018;24:273-290 pubmed 出版商
  540. Panduro M, Benoist C, Mathis D. Treg cells limit IFN-? production to control macrophage accrual and phenotype during skeletal muscle regeneration. Proc Natl Acad Sci U S A. 2018;115:E2585-E2593 pubmed 出版商
  541. Westhorpe C, Norman M, Hall P, Snelgrove S, Finsterbusch M, Li A, et al. Effector CD4+ T cells recognize intravascular antigen presented by patrolling monocytes. Nat Commun. 2018;9:747 pubmed 出版商
  542. Trapecar M, Khan S, Cohn B, Wu F, Sanjabi S. B cells are the predominant mediators of early systemic viral dissemination during rectal LCMV infection. Mucosal Immunol. 2018;11:1158-1167 pubmed 出版商
  543. Lee Y, Lee J, Jang Y, Seo S, Chang J, Seong B. Non-specific Effect of Vaccines: Immediate Protection against Respiratory Syncytial Virus Infection by a Live Attenuated Influenza Vaccine. Front Microbiol. 2018;9:83 pubmed 出版商
  544. Qu S, Xue H, Dong X, Lin D, Wu R, Nabavi N, et al. Aneustat (OMN54) has aerobic glycolysis-inhibitory activity and also immunomodulatory activity as indicated by a first-generation PDX prostate cancer model. Int J Cancer. 2018;143:419-429 pubmed 出版商
  545. Zhu Y, Zhou J, Feng Y, Chen L, Zhang L, Yang F, et al. Control of Intestinal Inflammation, Colitis-Associated Tumorigenesis, and Macrophage Polarization by Fibrinogen-Like Protein 2. Front Immunol. 2018;9:87 pubmed 出版商
  546. Sokhi U, Liber M, Frye L, Park S, Kang K, Pannellini T, et al. Dissection and function of autoimmunity-associated TNFAIP3 (A20) gene enhancers in humanized mouse models. Nat Commun. 2018;9:658 pubmed 出版商
  547. Supramaniam A, Liu X, Ferro V, Herrero L. Prophylactic Antiheparanase Activity by PG545 Is Antiviral In Vitro and Protects against Ross River Virus Disease in Mice. Antimicrob Agents Chemother. 2018;62: pubmed 出版商
  548. Wen G, An W, Chen J, Maguire E, Chen Q, Yang F, et al. Genetic and Pharmacologic Inhibition of the Neutrophil Elastase Inhibits Experimental Atherosclerosis. J Am Heart Assoc. 2018;7: pubmed 出版商
  549. Perry C, Muñoz Rojas A, Meeth K, Kellman L, Amezquita R, Thakral D, et al. Myeloid-targeted immunotherapies act in synergy to induce inflammation and antitumor immunity. J Exp Med. 2018;215:877-893 pubmed 出版商
  550. King E, Mazor R, Cuburu N, Pastan I. Low-Dose Methotrexate Prevents Primary and Secondary Humoral Immune Responses and Induces Immune Tolerance to a Recombinant Immunotoxin. J Immunol. 2018;200:2038-2045 pubmed 出版商
  551. Pitts M, Combs T, D Orazio S. Neutrophils from Both Susceptible and Resistant Mice Efficiently Kill Opsonized Listeria monocytogenes. Infect Immun. 2018;86: pubmed 出版商
  552. Soncin I, Sheng J, Chen Q, Foo S, Duan K, Lum J, et al. The tumour microenvironment creates a niche for the self-renewal of tumour-promoting macrophages in colon adenoma. Nat Commun. 2018;9:582 pubmed 出版商
  553. Hsieh W, Hsu T, Chang Y, Lai M. IL-6 receptor blockade corrects defects of XIAP-deficient regulatory T cells. Nat Commun. 2018;9:463 pubmed 出版商
  554. Niraula A, Wang Y, Godbout J, Sheridan J. Corticosterone Production during Repeated Social Defeat Causes Monocyte Mobilization from the Bone Marrow, Glucocorticoid Resistance, and Neurovascular Adhesion Molecule Expression. J Neurosci. 2018;38:2328-2340 pubmed 出版商
  555. Bogoslowski A, Butcher E, Kubes P. Neutrophils recruited through high endothelial venules of the lymph nodes via PNAd intercept disseminating Staphylococcus aureus. Proc Natl Acad Sci U S A. 2018;115:2449-2454 pubmed 出版商
  556. Shen Q, Zhang Q, Shi Y, Shi Q, Jiang Y, Gu Y, et al. Tet2 promotes pathogen infection-induced myelopoiesis through mRNA oxidation. Nature. 2018;554:123-127 pubmed 出版商
  557. Delong J, Hall A, Konradt C, Coppock G, Park J, Harms Pritchard G, et al. Cytokine- and TCR-Mediated Regulation of T Cell Expression of Ly6C and Sca-1. J Immunol. 2018;200:1761-1770 pubmed 出版商
  558. Linehan J, Harrison O, Han S, Byrd A, Vujkovic Cvijin I, Villarino A, et al. Non-classical Immunity Controls Microbiota Impact on Skin Immunity and Tissue Repair. Cell. 2018;172:784-796.e18 pubmed 出版商
  559. Yoshida S, Hagiwara Y, Tsuchiya M, Shinoda M, Koide M, Hatakeyama H, et al. Involvement of neutrophils and interleukin-18 in nociception in a mouse model of muscle pain. Mol Pain. 2018;14:1744806918757286 pubmed 出版商
  560. Capucha T, Koren N, Nassar M, Heyman O, Nir T, Levy M, et al. Sequential BMP7/TGF-β1 signaling and microbiota instruct mucosal Langerhans cell differentiation. J Exp Med. 2018;215:481-500 pubmed 出版商
  561. Tang H, Liang Y, Anders R, Taube J, Qiu X, Mulgaonkar A, et al. PD-L1 on host cells is essential for PD-L1 blockade-mediated tumor regression. J Clin Invest. 2018;128:580-588 pubmed 出版商
  562. Tavazoie M, Pollack I, Tanqueco R, Ostendorf B, Reis B, Gonsalves F, et al. LXR/ApoE Activation Restricts Innate Immune Suppression in Cancer. Cell. 2018;172:825-840.e18 pubmed 出版商
  563. Teater M, Domínguez P, Redmond D, Chen Z, Ennishi D, Scott D, et al. AICDA drives epigenetic heterogeneity and accelerates germinal center-derived lymphomagenesis. Nat Commun. 2018;9:222 pubmed 出版商
  564. Christ A, Günther P, Lauterbach M, Duewell P, Biswas D, Pelka K, et al. Western Diet Triggers NLRP3-Dependent Innate Immune Reprogramming. Cell. 2018;172:162-175.e14 pubmed 出版商
  565. Mitroulis I, Ruppova K, Wang B, Chen L, Grzybek M, Grinenko T, et al. Modulation of Myelopoiesis Progenitors Is an Integral Component of Trained Immunity. Cell. 2018;172:147-161.e12 pubmed 出版商
  566. Zhang C, Yi W, Li F, Du X, Wang H, Wu P, et al. Eosinophil-derived CCL-6 impairs hematopoietic stem cell homeostasis. Cell Res. 2018;28:323-335 pubmed 出版商
  567. Garaycoechea J, Crossan G, Langevin F, Mulderrig L, Louzada S, Yang F, et al. Alcohol and endogenous aldehydes damage chromosomes and mutate stem cells. Nature. 2018;553:171-177 pubmed 出版商
  568. Stremmel C, Schuchert R, Wagner F, Thaler R, Weinberger T, Pick R, et al. Yolk sac macrophage progenitors traffic to the embryo during defined stages of development. Nat Commun. 2018;9:75 pubmed 出版商
  569. Ortines R, Liu H, Cheng L, Cohen T, Lawlor H, Gami A, et al. Neutralizing Alpha-Toxin Accelerates Healing of Staphylococcus aureus-Infected Wounds in Nondiabetic and Diabetic Mice. Antimicrob Agents Chemother. 2018;62: pubmed 出版商
  570. Guarnerio J, Mendez L, Asada N, Menon A, Fung J, Berry K, et al. A non-cell-autonomous role for Pml in the maintenance of leukemia from the niche. Nat Commun. 2018;9:66 pubmed 出版商
  571. Kurkewich J, Boucher A, Klopfenstein N, Baskar R, Kapur R, Dahl R. The mirn23a and mirn23b microrna clusters are necessary for proper hematopoietic progenitor cell production and differentiation. Exp Hematol. 2018;59:14-29 pubmed 出版商
  572. Mumau M, Vanderbeck A, Lynch E, Golec S, Emerson S, Punt J. Identification of a Multipotent Progenitor Population in the Spleen That Is Regulated by NR4A1. J Immunol. 2018;200:1078-1087 pubmed 出版商
  573. Kunimoto H, Meydan C, Nazir A, Whitfield J, Shank K, Rapaport F, et al. Cooperative Epigenetic Remodeling by TET2 Loss and NRAS Mutation Drives Myeloid Transformation and MEK Inhibitor Sensitivity. Cancer Cell. 2018;33:44-59.e8 pubmed 出版商
  574. Thion M, Low D, Silvin A, Chen J, Grisel P, Schulte Schrepping J, et al. Microbiome Influences Prenatal and Adult Microglia in a Sex-Specific Manner. Cell. 2018;172:500-516.e16 pubmed 出版商
  575. Campana L, Starkey Lewis P, Pellicoro A, Aucott R, Man J, O Duibhir E, et al. The STAT3-IL-10-IL-6 Pathway Is a Novel Regulator of Macrophage Efferocytosis and Phenotypic Conversion in Sterile Liver Injury. J Immunol. 2018;200:1169-1187 pubmed 出版商
  576. Zhang Y, Khairallah C, Sheridan B, van der Velden A, Bliska J. CCR2+ Inflammatory Monocytes Are Recruited to Yersinia pseudotuberculosis Pyogranulomas and Dictate Adaptive Responses at the Expense of Innate Immunity during Oral Infection. Infect Immun. 2018;86: pubmed 出版商
  577. Yui S, Azzolin L, Maimets M, Pedersen M, Fordham R, Hansen S, et al. YAP/TAZ-Dependent Reprogramming of Colonic Epithelium Links ECM Remodeling to Tissue Regeneration. Cell Stem Cell. 2018;22:35-49.e7 pubmed 出版商
  578. Wu X, Dao Thi V, Huang Y, Billerbeck E, Saha D, Hoffmann H, et al. Intrinsic Immunity Shapes Viral Resistance of Stem Cells. Cell. 2018;172:423-438.e25 pubmed 出版商
  579. Gaya M, Barral P, Burbage M, Aggarwal S, Montaner B, Warren Navia A, et al. Initiation of Antiviral B Cell Immunity Relies on Innate Signals from Spatially Positioned NKT Cells. Cell. 2018;172:517-533.e20 pubmed 出版商
  580. Montford J, Lehman A, Bauer C, Klawitter J, Klawitter J, Poczobutt J, et al. Bone marrow-derived cPLA2α contributes to renal fibrosis progression. J Lipid Res. 2018;59:380-390 pubmed 出版商
  581. Hoggatt J, Singh P, Tate T, Chou B, Datari S, Fukuda S, et al. Rapid Mobilization Reveals a Highly Engraftable Hematopoietic Stem Cell. Cell. 2018;172:191-204.e10 pubmed 出版商
  582. Medaglia C, Giladi A, Stoler Barak L, De Giovanni M, Salame T, Biram A, et al. Spatial reconstruction of immune niches by combining photoactivatable reporters and scRNA-seq. Science. 2017;358:1622-1626 pubmed 出版商
  583. Zhao B, Mei Y, Cao L, Zhang J, Sumagin R, Yang J, et al. Loss of pleckstrin-2 reverts lethality and vascular occlusions in JAK2V617F-positive myeloproliferative neoplasms. J Clin Invest. 2018;128:125-140 pubmed 出版商
  584. Schmok E, Abad Dar M, Behrends J, Erdmann H, Rückerl D, Endermann T, et al. Suppressor of Cytokine Signaling 3 in Macrophages Prevents Exacerbated Interleukin-6-Dependent Arginase-1 Activity and Early Permissiveness to Experimental Tuberculosis. Front Immunol. 2017;8:1537 pubmed 出版商
  585. Ring N, Herndler Brandstetter D, Weiskopf K, Shan L, Volkmer J, George B, et al. Anti-SIRPα antibody immunotherapy enhances neutrophil and macrophage antitumor activity. Proc Natl Acad Sci U S A. 2017;114:E10578-E10585 pubmed 出版商
  586. Harms A, Thome A, Yan Z, Schonhoff A, Williams G, Li X, et al. Peripheral monocyte entry is required for alpha-Synuclein induced inflammation and Neurodegeneration in a model of Parkinson disease. Exp Neurol. 2018;300:179-187 pubmed 出版商
  587. Kwak J, Laskowski J, Li H, McSharry M, Sippel T, Bullock B, et al. Complement Activation via a C3a Receptor Pathway Alters CD4+ T Lymphocytes and Mediates Lung Cancer Progression. Cancer Res. 2018;78:143-156 pubmed 出版商
  588. Tsai F, Homan P, Agrawal H, Misharin A, Abdala Valencia H, Haines G, et al. Bim suppresses the development of SLE by limiting myeloid inflammatory responses. J Exp Med. 2017;214:3753-3773 pubmed 出版商
  589. Gopalakrishnan V, Spencer C, Nezi L, Reuben A, Andrews M, Karpinets T, et al. Gut microbiome modulates response to anti-PD-1 immunotherapy in melanoma patients. Science. 2018;359:97-103 pubmed 出版商
  590. Mao A, Ishizuka I, Kasal D, Mandal M, Bendelac A. A shared Runx1-bound Zbtb16 enhancer directs innate and innate-like lymphoid lineage development. Nat Commun. 2017;8:863 pubmed 出版商
  591. Wang J, Hossain M, Thanabalasuriar A, Gunzer M, Meininger C, Kubes P. Visualizing the function and fate of neutrophils in sterile injury and repair. Science. 2017;358:111-116 pubmed 出版商
  592. Burns K, Thomas S, Hamilton K, Young S, Cook D, Korach K. Early Endometriosis in Females Is Directed by Immune-Mediated Estrogen Receptor α and IL-6 Cross-Talk. Endocrinology. 2018;159:103-118 pubmed 出版商
  593. Jung K, Heishi T, Incio J, Huang Y, Beech E, Pinter M, et al. Targeting CXCR4-dependent immunosuppressive Ly6Clow monocytes improves antiangiogenic therapy in colorectal cancer. Proc Natl Acad Sci U S A. 2017;114:10455-10460 pubmed 出版商
  594. Nishi H, Furuhashi K, Cullere X, Saggu G, Miller M, Chen Y, et al. Neutrophil Fc?RIIA promotes IgG-mediated glomerular neutrophil capture via Abl/Src kinases. J Clin Invest. 2017;127:3810-3826 pubmed 出版商
  595. Cole C, Russler Germain D, Ketkar S, Verdoni A, Smith A, Bangert C, et al. Haploinsufficiency for DNA methyltransferase 3A predisposes hematopoietic cells to myeloid malignancies. J Clin Invest. 2017;127:3657-3674 pubmed 出版商
  596. Kumar B, Garcia M, Weng L, Jung X, Murakami J, Hu X, et al. Acute myeloid leukemia transforms the bone marrow niche into a leukemia-permissive microenvironment through exosome secretion. Leukemia. 2018;32:575-587 pubmed 出版商
  597. Chang S, Kohlgruber A, Mizoguchi F, Michelet X, Wolf B, Wei K, et al. Stromal cell cadherin-11 regulates adipose tissue inflammation and diabetes. J Clin Invest. 2017;127:3300-3312 pubmed 出版商
  598. Tejada M, Montilla García Á, Cronin S, Cikes D, Sánchez Fernández C, González Cano R, et al. Sigma-1 receptors control immune-driven peripheral opioid analgesia during inflammation in mice. Proc Natl Acad Sci U S A. 2017;114:8396-8401 pubmed 出版商
  599. Billerbeck E, Wolfisberg R, Fahnøe U, Xiao J, Quirk C, Luna J, et al. Mouse models of acute and chronic hepacivirus infection. Science. 2017;357:204-208 pubmed 出版商
  600. Hannibal T, Schmidt Christensen A, Nilsson J, Fransén Pettersson N, Hansen L, Holmberg D. Deficiency in plasmacytoid dendritic cells and type I interferon signalling prevents diet-induced obesity and insulin resistance in mice. Diabetologia. 2017;60:2033-2041 pubmed 出版商
  601. Li X, Thome S, Ma X, Amrute Nayak M, Finigan A, Kitt L, et al. MARK4 regulates NLRP3 positioning and inflammasome activation through a microtubule-dependent mechanism. Nat Commun. 2017;8:15986 pubmed 出版商
  602. Akiel M, Guo C, Li X, Rajasekaran D, Mendoza R, Robertson C, et al. IGFBP7 Deletion Promotes Hepatocellular Carcinoma. Cancer Res. 2017;77:4014-4025 pubmed 出版商
  603. Mylonas K, Turner N, Bageghni S, Kenyon C, White C, McGregor K, et al. 11β-HSD1 suppresses cardiac fibroblast CXCL2, CXCL5 and neutrophil recruitment to the heart post MI. J Endocrinol. 2017;233:315-327 pubmed 出版商
  604. Mildner A, Schönheit J, Giladi A, David E, Lara Astiaso D, Lorenzo Vivas E, et al. Genomic Characterization of Murine Monocytes Reveals C/EBP? Transcription Factor Dependence of Ly6C- Cells. Immunity. 2017;46:849-862.e7 pubmed 出版商
  605. Miyazaki M, Miyazaki K, Chen K, Jin Y, Turner J, Moore A, et al. The E-Id Protein Axis Specifies Adaptive Lymphoid Cell Identity and Suppresses Thymic Innate Lymphoid Cell Development. Immunity. 2017;46:818-834.e4 pubmed 出版商
  606. Hattori A, Tsunoda M, Konuma T, Kobayashi M, Nagy T, Glushka J, et al. Cancer progression by reprogrammed BCAA metabolism in myeloid leukaemia. Nature. 2017;545:500-504 pubmed 出版商
  607. Gordon S, Maute R, Dulken B, Hutter G, George B, McCracken M, et al. PD-1 expression by tumour-associated macrophages inhibits phagocytosis and tumour immunity. Nature. 2017;545:495-499 pubmed 出版商
  608. Lis R, Karrasch C, Poulos M, Kunar B, Redmond D, Duran J, et al. Conversion of adult endothelium to immunocompetent haematopoietic stem cells. Nature. 2017;545:439-445 pubmed 出版商
  609. Hara T, Nakaoka H, Hayashi T, Mimura K, Hoshino D, Inoue M, et al. Control of metastatic niche formation by targeting APBA3/Mint3 in inflammatory monocytes. Proc Natl Acad Sci U S A. 2017;114:E4416-E4424 pubmed 出版商
  610. Kraakman M, Lee M, Al Sharea A, Dragoljevic D, Barrett T, Montenont E, et al. Neutrophil-derived S100 calcium-binding proteins A8/A9 promote reticulated thrombocytosis and atherogenesis in diabetes. J Clin Invest. 2017;127:2133-2147 pubmed 出版商
  611. Ebner F, Sedlyarov V, Tasciyan S, Ivin M, Kratochvill F, Gratz N, et al. The RNA-binding protein tristetraprolin schedules apoptosis of pathogen-engaged neutrophils during bacterial infection. J Clin Invest. 2017;127:2051-2065 pubmed 出版商
  612. Zhang C, Feng J, Du J, Zhuo Z, Yang S, Zhang W, et al. Macrophage-derived IL-1α promotes sterile inflammation in a mouse model of acetaminophen hepatotoxicity. Cell Mol Immunol. 2018;15:973-982 pubmed 出版商
  613. Minutti C, Jackson Jones L, Garcia Fojeda B, Knipper J, Sutherland T, Logan N, et al. Local amplifiers of IL-4R?-mediated macrophage activation promote repair in lung and liver. Science. 2017;356:1076-1080 pubmed 出版商
  614. Bosurgi L, Cao Y, Cabeza Cabrerizo M, Tucci A, Hughes L, Kong Y, et al. Macrophage function in tissue repair and remodeling requires IL-4 or IL-13 with apoptotic cells. Science. 2017;356:1072-1076 pubmed 出版商
  615. Taylor S, Huang Y, Mallett G, Stathopoulou C, Felizardo T, Sun M, et al. PD-1 regulates KLRG1+ group 2 innate lymphoid cells. J Exp Med. 2017;214:1663-1678 pubmed 出版商
  616. Tang A, Choi J, Kotzin J, Yang Y, Hong C, Hobson N, et al. Endothelial TLR4 and the microbiome drive cerebral cavernous malformations. Nature. 2017;545:305-310 pubmed 出版商
  617. Kwan B, Zhu E, Tzeng A, Sugito H, Eltahir A, Ma B, et al. Integrin-targeted cancer immunotherapy elicits protective adaptive immune responses. J Exp Med. 2017;214:1679-1690 pubmed 出版商
  618. Ku A, Shaver T, Rao A, Howard J, Rodriguez C, Miao Q, et al. TCF7L1 promotes skin tumorigenesis independently of β-catenin through induction of LCN2. elife. 2017;6: pubmed 出版商
  619. Thanabalasuriar A, Surewaard B, Willson M, Neupane A, Stover C, Warrener P, et al. Bispecific antibody targets multiple Pseudomonas aeruginosa evasion mechanisms in the lung vasculature. J Clin Invest. 2017;127:2249-2261 pubmed 出版商
  620. Bagchi S, He Y, Zhang H, Cao L, Van Rhijn I, Moody D, et al. CD1b-autoreactive T cells contribute to hyperlipidemia-induced skin inflammation in mice. J Clin Invest. 2017;127:2339-2352 pubmed 出版商
  621. Carrieri C, Comazzetto S, Grover A, Morgan M, Buness A, Nerlov C, et al. A transit-amplifying population underpins the efficient regenerative capacity of the testis. J Exp Med. 2017;214:1631-1641 pubmed 出版商
  622. Audzevich T, Bashford Rogers R, Mabbott N, Frampton D, Freeman T, Potocnik A, et al. Pre/pro-B cells generate macrophage populations during homeostasis and inflammation. Proc Natl Acad Sci U S A. 2017;114:E3954-E3963 pubmed 出版商
  623. Kammertoens T, Friese C, Arina A, Idel C, Briesemeister D, Rothe M, et al. Tumour ischaemia by interferon-? resembles physiological blood vessel regression. Nature. 2017;545:98-102 pubmed 出版商
  624. Daley D, Mani V, Mohan N, Akkad N, Pandian G, Savadkar S, et al. NLRP3 signaling drives macrophage-induced adaptive immune suppression in pancreatic carcinoma. J Exp Med. 2017;214:1711-1724 pubmed 出版商
  625. Ge Y, Gomez N, Adam R, Nikolova M, Yang H, Verma A, et al. Stem Cell Lineage Infidelity Drives Wound Repair and Cancer. Cell. 2017;169:636-650.e14 pubmed 出版商
  626. Deniset J, Surewaard B, Lee W, Kubes P. Splenic Ly6Ghigh mature and Ly6Gint immature neutrophils contribute to eradication of S. pneumoniae. J Exp Med. 2017;214:1333-1350 pubmed 出版商
  627. Lee H, Tian L, Bouladoux N, Davis J, Quinones M, Belkaid Y, et al. Dendritic cells expressing immunoreceptor CD300f are critical for controlling chronic gut inflammation. J Clin Invest. 2017;127:1905-1917 pubmed 出版商
  628. Daley D, Mani V, Mohan N, Akkad N, Ochi A, Heindel D, et al. Dectin 1 activation on macrophages by galectin 9 promotes pancreatic carcinoma and peritumoral immune tolerance. Nat Med. 2017;23:556-567 pubmed 出版商
  629. Huang Y, Rajappa P, Hu W, Hoffman C, CISSE B, Kim J, et al. A proangiogenic signaling axis in myeloid cells promotes malignant progression of glioma. J Clin Invest. 2017;127:1826-1838 pubmed 出版商
  630. Lehmann C, Baranska A, Heidkamp G, Heger L, Neubert K, Lühr J, et al. DC subset-specific induction of T cell responses upon antigen uptake via Fc? receptors in vivo. J Exp Med. 2017;214:1509-1528 pubmed 出版商
  631. Lino C, Barros Martins J, Oberdörfer L, Walzer T, Prinz I. Eomes expression reports the progressive differentiation of IFN-?-producing Th1-like ?? T cells. Eur J Immunol. 2017;47:970-981 pubmed 出版商
  632. Bruce D, Stefanski H, Vincent B, Dant T, Reisdorf S, Bommiasamy H, et al. Type 2 innate lymphoid cells treat and prevent acute gastrointestinal graft-versus-host disease. J Clin Invest. 2017;127:1813-1825 pubmed 出版商
  633. Katerndahl C, Heltemes Harris L, Willette M, Henzler C, Frietze S, Yang R, et al. Antagonism of B cell enhancer networks by STAT5 drives leukemia and poor patient survival. Nat Immunol. 2017;18:694-704 pubmed 出版商
  634. Kitada S, Kayama H, Okuzaki D, Koga R, Kobayashi M, Arima Y, et al. BATF2 inhibits immunopathological Th17 responses by suppressing Il23a expression during Trypanosoma cruzi infection. J Exp Med. 2017;214:1313-1331 pubmed 出版商
  635. Hérault A, Binnewies M, Leong S, Calero Nieto F, Zhang S, Kang Y, et al. Myeloid progenitor cluster formation drives emergency and leukaemic myelopoiesis. Nature. 2017;544:53-58 pubmed 出版商
  636. Guo Q, Minnier J, Burchard J, Chiotti K, Spellman P, Schedin P. Physiologically activated mammary fibroblasts promote postpartum mammary cancer. JCI Insight. 2017;2:e89206 pubmed 出版商
  637. Thomas D, Clare S, Sowerby J, Pardo M, Juss J, Goulding D, et al. Eros is a novel transmembrane protein that controls the phagocyte respiratory burst and is essential for innate immunity. J Exp Med. 2017;214:1111-1128 pubmed 出版商
  638. Briseño C, Gargaro M, Durai V, Davidson J, Theisen D, Anderson D, et al. Deficiency of transcription factor RelB perturbs myeloid and DC development by hematopoietic-extrinsic mechanisms. Proc Natl Acad Sci U S A. 2017;114:3957-3962 pubmed 出版商
  639. He W, Wang C, Mu R, Liang P, Huang Z, Zhang J, et al. MiR-21 is required for anti-tumor immune response in mice: an implication for its bi-directional roles. Oncogene. 2017;36:4212-4223 pubmed 出版商
  640. Sindhava V, Oropallo M, Moody K, Naradikian M, Higdon L, Zhou L, et al. A TLR9-dependent checkpoint governs B cell responses to DNA-containing antigens. J Clin Invest. 2017;127:1651-1663 pubmed 出版商
  641. Liu Z, Ravindranathan R, Kalinski P, Guo Z, Bartlett D. Rational combination of oncolytic vaccinia virus and PD-L1 blockade works synergistically to enhance therapeutic efficacy. Nat Commun. 2017;8:14754 pubmed 出版商
  642. Wang X, Chen H, Tian R, Zhang Y, Drutskaya M, Wang C, et al. Macrophages induce AKT/β-catenin-dependent Lgr5+ stem cell activation and hair follicle regeneration through TNF. Nat Commun. 2017;8:14091 pubmed 出版商
  643. Xiong G, Hindi S, Mann A, Gallot Y, Bohnert K, Cavener D, et al. The PERK arm of the unfolded protein response regulates satellite cell-mediated skeletal muscle regeneration. elife. 2017;6: pubmed 出版商
  644. Wolf Y, Shemer A, Polonsky M, Gross M, Mildner A, Yona S, et al. Autonomous TNF is critical for in vivo monocyte survival in steady state and inflammation. J Exp Med. 2017;214:905-917 pubmed 出版商
  645. Lefrançais E, Ortiz Muñoz G, Caudrillier A, Mallavia B, Liu F, Sayah D, et al. The lung is a site of platelet biogenesis and a reservoir for haematopoietic progenitors. Nature. 2017;544:105-109 pubmed 出版商
  646. Lu X, Horner J, Paul E, Shang X, Troncoso P, Deng P, et al. Effective combinatorial immunotherapy for castration-resistant prostate cancer. Nature. 2017;543:728-732 pubmed 出版商
  647. Klein J, Moses K, Zelinskyy G, Sody S, Buer J, Lang S, et al. Combined toll-like receptor 3/7/9 deficiency on host cells results in T-cell-dependent control of tumour growth. Nat Commun. 2017;8:14600 pubmed 出版商
  648. Jin Z, Liang F, Yang J, Mei W. hnRNP I regulates neonatal immune adaptation and prevents colitis and colorectal cancer. PLoS Genet. 2017;13:e1006672 pubmed 出版商
  649. Hauptmann M, Burkhardt N, Munderloh U, Kuehl S, Richardt U, Krasemann S, et al. GFPuv-Expressing Recombinant Rickettsia typhi: a Useful Tool for the Study of Pathogenesis and CD8+ T Cell Immunology in R. typhi Infection. Infect Immun. 2017;85: pubmed 出版商
  650. Gawlik K, Holmberg J, Svensson M, Einerborg M, Oliveira B, Deierborg T, et al. Potent pro-inflammatory and pro-fibrotic molecules, osteopontin and galectin-3, are not major disease modulators of laminin α2 chain-deficient muscular dystrophy. Sci Rep. 2017;7:44059 pubmed 出版商
  651. Hui X, Zhang M, Gu P, Li K, Gao Y, Wu D, et al. Adipocyte SIRT1 controls systemic insulin sensitivity by modulating macrophages in adipose tissue. EMBO Rep. 2017;18:645-657 pubmed 出版商
  652. Wagner J, Jaurich H, Wallner C, Abraham S, Becerikli M, Dadras M, et al. Diminished bone regeneration after debridement of posttraumatic osteomyelitis is accompanied by altered cytokine levels, elevated B cell activity, and increased osteoclast activity. J Orthop Res. 2017;35:2425-2434 pubmed 出版商
  653. Ramos G, van den Berg A, Nunes Silva V, Weirather J, Peters L, Burkard M, et al. Myocardial aging as a T-cell-mediated phenomenon. Proc Natl Acad Sci U S A. 2017;114:E2420-E2429 pubmed 出版商
  654. Guidi N, Sacma M, Ständker L, Soller K, Marka G, Eiwen K, et al. Osteopontin attenuates aging-associated phenotypes of hematopoietic stem cells. EMBO J. 2017;36:840-853 pubmed 出版商
  655. Baranek T, Morello E, Valayer A, Aimar R, Bréa D, Henry C, et al. FHL2 Regulates Natural Killer Cell Development and Activation during Streptococcus pneumoniae Infection. Front Immunol. 2017;8:123 pubmed 出版商
  656. Ho T, Warr M, Adelman E, Lansinger O, Flach J, Verovskaya E, et al. Autophagy maintains the metabolism and function of young and old stem cells. Nature. 2017;543:205-210 pubmed 出版商
  657. Wan L, Wen H, Li Y, Lyu J, Xi Y, Hoshii T, et al. ENL links histone acetylation to oncogenic gene expression in acute myeloid leukaemia. Nature. 2017;543:265-269 pubmed 出版商
  658. Li H, Liu P, Xu S, Li Y, Dekker J, Li B, et al. FOXP1 controls mesenchymal stem cell commitment and senescence during skeletal aging. J Clin Invest. 2017;127:1241-1253 pubmed 出版商
  659. Stanley R, Piszczatowski R, Bartholdy B, Mitchell K, McKimpson W, Narayanagari S, et al. A myeloid tumor suppressor role for NOL3. J Exp Med. 2017;214:753-771 pubmed 出版商
  660. Schumacher M, Hedl M, Abraham C, Bernard J, Lozano P, Hsieh J, et al. ErbB4 signaling stimulates pro-inflammatory macrophage apoptosis and limits colonic inflammation. Cell Death Dis. 2017;8:e2622 pubmed 出版商
  661. Moestrup K, Andersen M, Jensen K. Isolation and In Vitro Characterization of Epidermal Stem Cells. Methods Mol Biol. 2017;1553:67-83 pubmed 出版商
  662. Hartwig T, Montinaro A, von Karstedt S, Sevko A, Surinova S, Chakravarthy A, et al. The TRAIL-Induced Cancer Secretome Promotes a Tumor-Supportive Immune Microenvironment via CCR2. Mol Cell. 2017;65:730-742.e5 pubmed 出版商
  663. Huang A, Peng D, Guo H, Ben Y, Zuo X, Wu F, et al. A human programmed death-ligand 1-expressing mouse tumor model for evaluating the therapeutic efficacy of anti-human PD-L1 antibodies. Sci Rep. 2017;7:42687 pubmed 出版商
  664. Ellenbroek G, van Puijvelde G, Anas A, Bot M, Asbach M, Schoneveld A, et al. Leukocyte TLR5 deficiency inhibits atherosclerosis by reduced macrophage recruitment and defective T-cell responsiveness. Sci Rep. 2017;7:42688 pubmed 出版商
  665. Huang R, Francois A, McGray A, Miliotto A, Odunsi K. Compensatory upregulation of PD-1, LAG-3, and CTLA-4 limits the efficacy of single-agent checkpoint blockade in metastatic ovarian cancer. Oncoimmunology. 2017;6:e1249561 pubmed 出版商
  666. Lang S, Harre U, Purohit P, Dietel K, Kienhöfer D, Hahn J, et al. Neurodegeneration Enhances the Development of Arthritis. J Immunol. 2017;198:2394-2402 pubmed 出版商
  667. Xu W, Li B, Guan X, Chung S, Wang Y, Yip Y, et al. Cancer cell-secreted IGF2 instigates fibroblasts and bone marrow-derived vascular progenitor cells to promote cancer progression. Nat Commun. 2017;8:14399 pubmed 出版商
  668. Cuccarese M, Dubach J, Pfirschke C, Engblom C, Garris C, Miller M, et al. Heterogeneity of macrophage infiltration and therapeutic response in lung carcinoma revealed by 3D organ imaging. Nat Commun. 2017;8:14293 pubmed 出版商
  669. Munguía Fuentes R, Yam Puc J, Silva Sanchez A, Marcial Juárez E, Gallegos Hernández I, Calderon Amador J, et al. Immunization of Newborn Mice Accelerates the Architectural Maturation of Lymph Nodes, But AID-Dependent IgG Responses Are Still Delayed Compared to the Adult. Front Immunol. 2017;8:13 pubmed 出版商
  670. Lavender N, Yang J, Chen S, Sai J, Johnson C, Owens P, et al. The Yin/Yan of CCL2: a minor role in neutrophil anti-tumor activity in vitro but a major role on the outgrowth of metastatic breast cancer lesions in the lung in vivo. BMC Cancer. 2017;17:88 pubmed 出版商
  671. Berlato C, Khan M, Schioppa T, Thompson R, Maniati E, Montfort A, et al. A CCR4 antagonist reverses the tumor-promoting microenvironment of renal cancer. J Clin Invest. 2017;127:801-813 pubmed 出版商
  672. Zhu Y, Lyapichev K, Lee D, Motti D, Ferraro N, Zhang Y, et al. Macrophage Transcriptional Profile Identifies Lipid Catabolic Pathways That Can Be Therapeutically Targeted after Spinal Cord Injury. J Neurosci. 2017;37:2362-2376 pubmed 出版商
  673. Ishiguro T, Fukawa T, Akaki K, Nagaoka K, Takeda T, Iwakura Y, et al. Absence of DCIR1 reduces the mortality rate of endotoxemic hepatitis in mice. Eur J Immunol. 2017;47:704-712 pubmed 出版商
  674. Gopinath S. Inhibition of Stat3 signaling ameliorates atrophy of the soleus muscles in mice lacking the vitamin D receptor. Skelet Muscle. 2017;7:2 pubmed 出版商
  675. Edwards R, Kopp S, Ifergan I, Shui J, Kronenberg M, Miller S, et al. Murine Corneal Inflammation and Nerve Damage After Infection With HSV-1 Are Promoted by HVEM and Ameliorated by Immune-Modifying Nanoparticle Therapy. Invest Ophthalmol Vis Sci. 2017;58:282-291 pubmed 出版商
  676. Gardner P, Liyanage S, Cristante E, Sampson R, Dick A, Ali R, et al. Hypoxia inducible factors are dispensable for myeloid cell migration into the inflamed mouse eye. Sci Rep. 2017;7:40830 pubmed 出版商
  677. Hattori A, McSkimming D, Kannan N, Ito T. RNA binding protein MSI2 positively regulates FLT3 expression in myeloid leukemia. Leuk Res. 2017;54:47-54 pubmed 出版商
  678. Yanagita T, Murata Y, Tanaka D, Motegi S, Arai E, Daniwijaya E, et al. Anti-SIRPα antibodies as a potential new tool for cancer immunotherapy. JCI Insight. 2017;2:e89140 pubmed 出版商
  679. Guerra E, Lee C, Specht C, Yadav B, Huang H, Akalin A, et al. Central Role of IL-23 and IL-17 Producing Eosinophils as Immunomodulatory Effector Cells in Acute Pulmonary Aspergillosis and Allergic Asthma. PLoS Pathog. 2017;13:e1006175 pubmed 出版商
  680. Zhu J, Cifuentes H, Reynolds J, Lamba D. Immunosuppression via Loss of IL2rγ Enhances Long-Term Functional Integration of hESC-Derived Photoreceptors in the Mouse Retina. Cell Stem Cell. 2017;20:374-384.e5 pubmed 出版商
  681. Oben K, Gachuki B, Alhakeem S, McKenna M, Liang Y, St Clair D, et al. Radiation Induced Apoptosis of Murine Bone Marrow Cells Is Independent of Early Growth Response 1 (EGR1). PLoS ONE. 2017;12:e0169767 pubmed 出版商
  682. Chakraborty K, Raundhal M, Chen B, Morse C, Tyurina Y, Khare A, et al. The mito-DAMP cardiolipin blocks IL-10 production causing persistent inflammation during bacterial pneumonia. Nat Commun. 2017;8:13944 pubmed 出版商
  683. Ellman D, Degn M, Lund M, Clausen B, Novrup H, Flæng S, et al. Genetic Ablation of Soluble TNF Does Not Affect Lesion Size and Functional Recovery after Moderate Spinal Cord Injury in Mice. Mediators Inflamm. 2016;2016:2684098 pubmed 出版商
  684. Britschgi A, Duss S, Kim S, Couto J, Brinkhaus H, Koren S, et al. The Hippo kinases LATS1 and 2 control human breast cell fate via crosstalk with ERα. Nature. 2017;541:541-545 pubmed 出版商
  685. Scott C, Bain C, Mowat A. Isolation and Identification of Intestinal Myeloid Cells. Methods Mol Biol. 2017;1559:223-239 pubmed 出版商
  686. Rowe A, Yun H, Treat B, Kinchington P, Hendricks R. Subclinical Herpes Simplex Virus Type 1 Infections Provide Site-Specific Resistance to an Unrelated Pathogen. J Immunol. 2017;198:1706-1717 pubmed 出版商
  687. de Jong R, Paulin N, Lemnitzer P, Viola J, Winter C, Ferraro B, et al. Protective Aptitude of Annexin A1 in Arterial Neointima Formation in Atherosclerosis-Prone Mice-Brief Report. Arterioscler Thromb Vasc Biol. 2017;37:312-315 pubmed 出版商
  688. Rombouts M, Cools N, Grootaert M, de Bakker F, Van Brussel I, Wouters A, et al. Long-Term Depletion of Conventional Dendritic Cells Cannot Be Maintained in an Atherosclerotic Zbtb46-DTR Mouse Model. PLoS ONE. 2017;12:e0169608 pubmed 出版商
  689. Atkin Smith G, Paone S, Zanker D, Duan M, Phan T, Chen W, et al. Isolation of cell type-specific apoptotic bodies by fluorescence-activated cell sorting. Sci Rep. 2017;7:39846 pubmed 出版商
  690. Cañete A, Carmona R, Ariza L, Sanchez M, Rojas A, Muñoz Chápuli R. A population of hematopoietic stem cells derives from GATA4-expressing progenitors located in the placenta and lateral mesoderm of mice. Haematologica. 2017;102:647-655 pubmed 出版商
  691. Larabee C, Desai S, Agasing A, Georgescu C, Wren J, Axtell R, et al. Loss of Nrf2 exacerbates the visual deficits and optic neuritis elicited by experimental autoimmune encephalomyelitis. Mol Vis. 2016;22:1503-1513 pubmed
  692. Engler J, Kursawe N, Solano M, Patas K, Wehrmann S, Heckmann N, et al. Glucocorticoid receptor in T cells mediates protection from autoimmunity in pregnancy. Proc Natl Acad Sci U S A. 2017;114:E181-E190 pubmed 出版商
  693. Fujikura D, Ikesue M, Endo T, Chiba S, Higashi H, Uede T. Death receptor 6 contributes to autoimmunity in lupus-prone mice. Nat Commun. 2017;8:13957 pubmed 出版商
  694. Astuti Y, Kramer A, Blake A, Blazar B, Tolar J, Taisto M, et al. A Functional Bioluminescent Zebrafish Screen for Enhancing Hematopoietic Cell Homing. Stem Cell Reports. 2017;8:177-190 pubmed 出版商
  695. Guan X, Lapak K, Hennessey R, Yu C, Shakya R, Zhang J, et al. Stromal Senescence By Prolonged CDK4/6 Inhibition Potentiates Tumor Growth. Mol Cancer Res. 2017;15:237-249 pubmed 出版商
  696. Rychtarčíková Z, Lettlova S, Tomkova V, Korenkova V, Langerova L, Simonova E, et al. Tumor-initiating cells of breast and prostate origin show alterations in the expression of genes related to iron metabolism. Oncotarget. 2017;8:6376-6398 pubmed 出版商
  697. Weindel C, Richey L, Mehta A, Shah M, Huber B. Autophagy in Dendritic Cells and B Cells Is Critical for the Inflammatory State of TLR7-Mediated Autoimmunity. J Immunol. 2017;198:1081-1092 pubmed 出版商
  698. Aguilera T, Rafat M, Castellini L, Shehade H, Kariolis M, Hui A, et al. Reprogramming the immunological microenvironment through radiation and targeting Axl. Nat Commun. 2016;7:13898 pubmed 出版商
  699. Yang J, Tanaka Y, Seay M, Li Z, Jin J, Garmire L, et al. Single cell transcriptomics reveals unanticipated features of early hematopoietic precursors. Nucleic Acids Res. 2017;45:1281-1296 pubmed 出版商
  700. Li M, Li Z, Yao Y, Jin W, Wood K, Liu Q, et al. Astrocyte-derived interleukin-15 exacerbates ischemic brain injury via propagation of cellular immunity. Proc Natl Acad Sci U S A. 2017;114:E396-E405 pubmed 出版商
  701. Schneider C, Oellerich T, Baldauf H, Schwarz S, Thomas D, Flick R, et al. SAMHD1 is a biomarker for cytarabine response and a therapeutic target in acute myeloid leukemia. Nat Med. 2017;23:250-255 pubmed 出版商
  702. Kamioka Y, Takakura K, Sumiyama K, Matsuda M. Intravital Förster resonance energy transfer imaging reveals osteopontin-mediated polymorphonuclear leukocyte activation by tumor cell emboli. Cancer Sci. 2017;108:226-235 pubmed 出版商
  703. Karki R, Man S, Malireddi R, Kesavardhana S, Zhu Q, Burton A, et al. NLRC3 is an inhibitory sensor of PI3K-mTOR pathways in cancer. Nature. 2016;540:583-587 pubmed 出版商
  704. Hahm E, Wei C, Fernandez I, Li J, Tardi N, Tracy M, et al. Bone marrow-derived immature myeloid cells are a main source of circulating suPAR contributing to proteinuric kidney disease. Nat Med. 2017;23:100-106 pubmed 出版商
  705. Sharif S, Nakatani Y, Wise L, Corbett M, Real N, Stuart G, et al. A Broad-Spectrum Chemokine-Binding Protein of Bovine Papular Stomatitis Virus Inhibits Neutrophil and Monocyte Infiltration in Inflammatory and Wound Models of Mouse Skin. PLoS ONE. 2016;11:e0168007 pubmed 出版商
  706. Nakaya M, Watari K, Tajima M, Nakaya T, Matsuda S, Ohara H, et al. Cardiac myofibroblast engulfment of dead cells facilitates recovery after myocardial infarction. J Clin Invest. 2017;127:383-401 pubmed 出版商
  707. Bieber K, Witte M, Sun S, Hundt J, Kalies K, Dräger S, et al. T cells mediate autoantibody-induced cutaneous inflammation and blistering in epidermolysis bullosa acquisita. Sci Rep. 2016;6:38357 pubmed 出版商
  708. Connor L, Tang S, Cognard E, Ochiai S, Hilligan K, Old S, et al. Th2 responses are primed by skin dendritic cells with distinct transcriptional profiles. J Exp Med. 2017;214:125-142 pubmed 出版商
  709. Yanagisawa H, Hashimoto M, Minagawa S, Takasaka N, Ma R, Moermans C, et al. Role of IL-17A in murine models of COPD airway disease. Am J Physiol Lung Cell Mol Physiol. 2017;312:L122-L130 pubmed 出版商
  710. Swanson P, Hart G, Russo M, Nayak D, Yazew T, Pena M, et al. CD8+ T Cells Induce Fatal Brainstem Pathology during Cerebral Malaria via Luminal Antigen-Specific Engagement of Brain Vasculature. PLoS Pathog. 2016;12:e1006022 pubmed 出版商
  711. Kretzer N, Theisen D, Tussiwand R, Briseño C, Grajales Reyes G, Wu X, et al. RAB43 facilitates cross-presentation of cell-associated antigens by CD8?+ dendritic cells. J Exp Med. 2016;213:2871-2883 pubmed
  712. Forster M, Farrington K, Petrov J, Belle J, Mindt B, Witalis M, et al. MYSM1-dependent checkpoints in B cell lineage differentiation and B cell-mediated immune response. J Leukoc Biol. 2017;101:643-654 pubmed 出版商
  713. Le Q, Yao W, Chen Y, Yan B, Liu C, Yuan M, et al. GRK6 regulates ROS response and maintains hematopoietic stem cell self-renewal. Cell Death Dis. 2016;7:e2478 pubmed 出版商
  714. Monnerat G, Alarcón M, Vasconcellos L, Hochman Mendez C, Brasil G, Bassani R, et al. Macrophage-dependent IL-1β production induces cardiac arrhythmias in diabetic mice. Nat Commun. 2016;7:13344 pubmed 出版商
  715. Kuchmiy A, D Hont J, Hochepied T, Lamkanfi M. NLRP2 controls age-associated maternal fertility. J Exp Med. 2016;213:2851-2860 pubmed
  716. Sektioglu I, Carretero R, Bulbuc N, Bald T, Tüting T, Rudensky A, et al. Basophils Promote Tumor Rejection via Chemotaxis and Infiltration of CD8+ T Cells. Cancer Res. 2017;77:291-302 pubmed 出版商
  717. Kimura Y, Inoue A, Hangai S, Saijo S, Negishi H, Nishio J, et al. The innate immune receptor Dectin-2 mediates the phagocytosis of cancer cells by Kupffer cells for the suppression of liver metastasis. Proc Natl Acad Sci U S A. 2016;113:14097-14102 pubmed
  718. Hidaka T, Ogawa E, Kobayashi E, Suzuki T, Funayama R, Nagashima T, et al. The aryl hydrocarbon receptor AhR links atopic dermatitis and air pollution via induction of the neurotrophic factor artemin. Nat Immunol. 2017;18:64-73 pubmed 出版商
  719. Yu V, Yusuf R, Oki T, Wu J, Saez B, Wang X, et al. Epigenetic Memory Underlies Cell-Autonomous Heterogeneous Behavior of Hematopoietic Stem Cells. Cell. 2016;167:1310-1322.e17 pubmed 出版商
  720. Ravà M, D Andrea A, Doni M, Kress T, Ostuni R, Bianchi V, et al. Mutual epithelium-macrophage dependency in liver carcinogenesis mediated by ST18. Hepatology. 2017;65:1708-1719 pubmed 出版商
  721. Khan S, Woodruff E, Trapecar M, Fontaine K, Ezaki A, Borbet T, et al. Dampened antiviral immunity to intravaginal exposure to RNA viral pathogens allows enhanced viral replication. J Exp Med. 2016;213:2913-2929 pubmed
  722. Cummings R, Barbet G, Bongers G, Hartmann B, Gettler K, Muniz L, et al. Different tissue phagocytes sample apoptotic cells to direct distinct homeostasis programs. Nature. 2016;539:565-569 pubmed 出版商
  723. Cousins F, Kirkwood P, Saunders P, Gibson D. Evidence for a dynamic role for mononuclear phagocytes during endometrial repair and remodelling. Sci Rep. 2016;6:36748 pubmed 出版商
  724. Geng S, Chen K, Yuan R, Peng L, Maitra U, Diao N, et al. The persistence of low-grade inflammatory monocytes contributes to aggravated atherosclerosis. Nat Commun. 2016;7:13436 pubmed 出版商
  725. Kirschbaum K, Sonner J, Zeller M, Deumelandt K, Bode J, Sharma R, et al. In vivo nanoparticle imaging of innate immune cells can serve as a marker of disease severity in a model of multiple sclerosis. Proc Natl Acad Sci U S A. 2016;113:13227-13232 pubmed
  726. Coleman C, Sisk J, Halasz G, Zhong J, Beck S, Matthews K, et al. CD8+ T Cells and Macrophages Regulate Pathogenesis in a Mouse Model of Middle East Respiratory Syndrome. J Virol. 2017;91: pubmed 出版商
  727. Teng O, Chen S, Hsu T, Sia S, Cole S, Valkenburg S, et al. CLEC5A-Mediated Enhancement of the Inflammatory Response in Myeloid Cells Contributes to Influenza Virus Pathogenicity In Vivo. J Virol. 2017;91: pubmed 出版商
  728. Theeß W, Sellau J, Steeg C, Klinke A, Baldus S, Cramer J, et al. Myeloperoxidase Attenuates Pathogen Clearance during Plasmodium yoelii Nonlethal Infection. Infect Immun. 2017;85: pubmed 出版商
  729. Smirnova T, Bonapace L, MacDonald G, Kondo S, Wyckoff J, Ebersbach H, et al. Serpin E2 promotes breast cancer metastasis by remodeling the tumor matrix and polarizing tumor associated macrophages. Oncotarget. 2016;7:82289-82304 pubmed 出版商
  730. Dong L, Yu W, Zheng H, Loh M, Bunting S, Pauly M, et al. Leukaemogenic effects of Ptpn11 activating mutations in the stem cell microenvironment. Nature. 2016;539:304-308 pubmed 出版商
  731. Ulland T, Jain N, Hornick E, Elliott E, Clay G, Sadler J, et al. Nlrp12 mutation causes C57BL/6J strain-specific defect in neutrophil recruitment. Nat Commun. 2016;7:13180 pubmed 出版商
  732. Thompson J, Hardin D, Glass J, Dziba J, Campion J, Brown S. The Inflammatory Cytokine IL-21 is Expressed by Splenic Neutrophils in Response to Transplantation of Allogeneic Cells. SOJ Immunol. 2016;4:1-9 pubmed
  733. Kotschy A, Szlávik Z, Murray J, Davidson J, Maragno A, Le Toumelin Braizat G, et al. The MCL1 inhibitor S63845 is tolerable and effective in diverse cancer models. Nature. 2016;538:477-482 pubmed 出版商
  734. Jiang J, Gao Q, Wang T, Lin H, Zhan Q, Chu Z, et al. MicroRNA expression profiles of granulocytic myeloid?derived suppressor cells from mice bearing Lewis lung carcinoma. Mol Med Rep. 2016;14:4567-4574 pubmed 出版商
  735. Nowacka J, Baumgartner C, Pelorosso C, Roth M, Zuber J, Baccarini M. MEK1 is required for the development of NRAS-driven leukemia. Oncotarget. 2016;7:80113-80130 pubmed 出版商
  736. Saha S, Aranda E, Hayakawa Y, Bhanja P, Atay S, Brodin N, et al. Macrophage-derived extracellular vesicle-packaged WNTs rescue intestinal stem cells and enhance survival after radiation injury. Nat Commun. 2016;7:13096 pubmed 出版商
  737. Wright R, Souza P, Flak M, Thedchanamoorthy P, Norling L, Cooper D. Galectin-3-null mice display defective neutrophil clearance during acute inflammation. J Leukoc Biol. 2017;101:717-726 pubmed 出版商
  738. Rantakari P, Jäppinen N, Lokka E, Mokkala E, Gerke H, Peuhu E, et al. Fetal liver endothelium regulates the seeding of tissue-resident macrophages. Nature. 2016;538:392-396 pubmed 出版商
  739. Kimura T, Nada S, Takegahara N, Okuno T, Nojima S, Kang S, et al. Polarization of M2 macrophages requires Lamtor1 that integrates cytokine and amino-acid signals. Nat Commun. 2016;7:13130 pubmed 出版商
  740. Vannini N, Girotra M, Naveiras O, Nikitin G, Campos V, Giger S, et al. Specification of haematopoietic stem cell fate via modulation of mitochondrial activity. Nat Commun. 2016;7:13125 pubmed 出版商
  741. Yu S, Pearson A, Lim R, Rodgers D, Li S, Parker H, et al. Targeted Delivery of an Anti-inflammatory PDE4 Inhibitor to Immune Cells via an Antibody-drug Conjugate. Mol Ther. 2016;24:2078-2089 pubmed 出版商
  742. Nalbandian A, Khan A, Srivastava R, Llewellyn K, Tan B, Shukr N, et al. Activation of the NLRP3 Inflammasome Is Associated with Valosin-Containing Protein Myopathy. Inflammation. 2017;40:21-41 pubmed 出版商
  743. Chu V, Graf R, Wirtz T, Weber T, Favret J, Li X, et al. Efficient CRISPR-mediated mutagenesis in primary immune cells using CrispRGold and a C57BL/6 Cas9 transgenic mouse line. Proc Natl Acad Sci U S A. 2016;113:12514-12519 pubmed
  744. Georgiev H, Ravens I, Benarafa C, Forster R, Bernhardt G. Distinct gene expression patterns correlate with developmental and functional traits of iNKT subsets. Nat Commun. 2016;7:13116 pubmed 出版商
  745. Lopez Guadamillas E, Fernandez Marcos P, Pantoja C, Muñoz Martin M, Martinez D, Gomez Lopez G, et al. p21Cip1 plays a critical role in the physiological adaptation to fasting through activation of PPAR?. Sci Rep. 2016;6:34542 pubmed 出版商
  746. Hu X, García M, Weng L, Jung X, Murakami J, Kumar B, et al. Identification of a common mesenchymal stromal progenitor for the adult haematopoietic niche. Nat Commun. 2016;7:13095 pubmed 出版商
  747. Yoon Y, Storm K, Kamimae Lanning A, Goloviznina N, Kurre P. Endogenous DNA Damage Leads to p53-Independent Deficits in Replicative Fitness in Fetal Murine Fancd2-/- Hematopoietic Stem and Progenitor Cells. Stem Cell Reports. 2016;7:840-853 pubmed 出版商
  748. Ramirez Carrozzi V, Sambandam A, Zhou M, Yan D, Kang J, Wu X, et al. Combined blockade of the IL-13 and IL-33 pathways leads to a greater inhibition of type 2 inflammation over inhibition of either pathway alone. J Allergy Clin Immunol. 2017;139:705-708.e6 pubmed 出版商
  749. Mittal S, Omoto M, Amouzegar A, Sahu A, Rezazadeh A, Katikireddy K, et al. Restoration of Corneal Transparency by Mesenchymal Stem Cells. Stem Cell Reports. 2016;7:583-590 pubmed 出版商
  750. Johnston L, Hsu C, Krier Burris R, Chhiba K, Chien K, McKenzie A, et al. IL-33 Precedes IL-5 in Regulating Eosinophil Commitment and Is Required for Eosinophil Homeostasis. J Immunol. 2016;197:3445-3453 pubmed
  751. Ippagunta S, Gangwar R, Finkelstein D, Vogel P, Pelletier S, Gingras S, et al. Keratinocytes contribute intrinsically to psoriasis upon loss of Tnip1 function. Proc Natl Acad Sci U S A. 2016;113:E6162-E6171 pubmed
  752. Thanabalasuriar A, Neupane A, Wang J, Krummel M, Kubes P. iNKT Cell Emigration out of the Lung Vasculature Requires Neutrophils and Monocyte-Derived Dendritic Cells in Inflammation. Cell Rep. 2016;16:3260-3272 pubmed 出版商
  753. Takeshima T, Pop L, Laine A, Iyengar P, Vitetta E, Hannan R. Key role for neutrophils in radiation-induced antitumor immune responses: Potentiation with G-CSF. Proc Natl Acad Sci U S A. 2016;113:11300-11305 pubmed
  754. Kaneda M, Messer K, Ralainirina N, Li H, Leem C, Gorjestani S, et al. PI3Kγ is a molecular switch that controls immune suppression. Nature. 2016;539:437-442 pubmed 出版商
  755. Di Marco Barros R, Roberts N, Dart R, Vantourout P, Jandke A, Nussbaumer O, et al. Epithelia Use Butyrophilin-like Molecules to Shape Organ-Specific γδ T Cell Compartments. Cell. 2016;167:203-218.e17 pubmed 出版商
  756. Altmeier S, Toska A, Sparber F, Teijeira A, Halin C, LeibundGut Landmann S. IL-1 Coordinates the Neutrophil Response to C. albicans in the Oral Mucosa. PLoS Pathog. 2016;12:e1005882 pubmed 出版商
  757. Lopes C, Daifalla N, Das B, Dias da Silva V, Campos Neto A. CD271+ Mesenchymal Stem Cells as a Possible Infectious Niche for Leishmania infantum. PLoS ONE. 2016;11:e0162927 pubmed 出版商
  758. Hay C, Sult E, Huang Q, Mulgrew K, Fuhrmann S, McGlinchey K, et al. Targeting CD73 in the tumor microenvironment with MEDI9447. Oncoimmunology. 2016;5:e1208875 pubmed 出版商
  759. Vila Leahey A, Oldford S, Marignani P, Wang J, Haidl I, Marshall J. Ranitidine modifies myeloid cell populations and inhibits breast tumor development and spread in mice. Oncoimmunology. 2016;5:e1151591 pubmed 出版商
  760. Le Gars M, Haustant M, Klezovich Bénard M, Paget C, Trottein F, Goossens P, et al. Mechanisms of Invariant NKT Cell Activity in Restraining Bacillus anthracis Systemic Dissemination. J Immunol. 2016;197:3225-3232 pubmed
  761. Nam S, Kang K, Cha J, Kim J, Lee H, Kim Y, et al. Interferon regulatory factor 4 (IRF4) controls myeloid-derived suppressor cell (MDSC) differentiation and function. J Leukoc Biol. 2016;100:1273-1284 pubmed
  762. Lewis G, Wehrens E, Labarta Bajo L, Streeck H, Zuniga E. TGF-? receptor maintains CD4 T helper cell identity during chronic viral infections. J Clin Invest. 2016;126:3799-3813 pubmed 出版商
  763. Lu X, Chen Q, Rong Y, Yang G, Li C, Xu N, et al. LECT2 drives haematopoietic stem cell expansion and mobilization via regulating the macrophages and osteolineage cells. Nat Commun. 2016;7:12719 pubmed 出版商
  764. Chew W, Tabebordbar M, Cheng J, Mali P, Wu E, Ng A, et al. A multifunctional AAV-CRISPR-Cas9 and its host response. Nat Methods. 2016;13:868-74 pubmed 出版商
  765. Papadaki G, Kambas K, Choulaki C, Vlachou K, Drakos E, Bertsias G, et al. Neutrophil extracellular traps exacerbate Th1-mediated autoimmune responses in rheumatoid arthritis by promoting DC maturation. Eur J Immunol. 2016;46:2542-2554 pubmed 出版商
  766. Jackson Jones L, Duncan S, Magalhaes M, Campbell S, Maizels R, McSorley H, et al. Fat-associated lymphoid clusters control local IgM secretion during pleural infection and lung inflammation. Nat Commun. 2016;7:12651 pubmed 出版商
  767. Xu H, Gelyana E, Rajsombath M, Yang T, Li S, Selkoe D. Environmental Enrichment Potently Prevents Microglia-Mediated Neuroinflammation by Human Amyloid ?-Protein Oligomers. J Neurosci. 2016;36:9041-56 pubmed 出版商
  768. Olsson A, Venkatasubramanian M, Chaudhri V, Aronow B, Salomonis N, Singh H, et al. Single-cell analysis of mixed-lineage states leading to a binary cell fate choice. Nature. 2016;537:698-702 pubmed 出版商
  769. Stark K, Philippi V, Stockhausen S, Busse J, Antonelli A, Miller M, et al. Disulfide HMGB1 derived from platelets coordinates venous thrombosis in mice. Blood. 2016;128:2435-2449 pubmed
  770. Uckelmann H, Blaszkiewicz S, Nicolae C, Haas S, Schnell A, Wurzer S, et al. Extracellular matrix protein Matrilin-4 regulates stress-induced HSC proliferation via CXCR4. J Exp Med. 2016;213:1961-71 pubmed 出版商
  771. Vogel K, Bell L, Galloway A, Ahlfors H, Turner M. The RNA-Binding Proteins Zfp36l1 and Zfp36l2 Enforce the Thymic ?-Selection Checkpoint by Limiting DNA Damage Response Signaling and Cell Cycle Progression. J Immunol. 2016;197:2673-2685 pubmed 出版商
  772. Greco S, Torres Hernandez A, Kalabin A, Whiteman C, Rokosh R, Ravirala S, et al. Mincle Signaling Promotes Con A Hepatitis. J Immunol. 2016;197:2816-27 pubmed 出版商
  773. Yoon J, Leyva Castillo J, Wang G, Galand C, Oyoshi M, Kumar L, et al. IL-23 induced in keratinocytes by endogenous TLR4 ligands polarizes dendritic cells to drive IL-22 responses to skin immunization. J Exp Med. 2016;213:2147-66 pubmed 出版商
  774. Kim K, Williams J, Wang Y, Ivanov S, Gilfillan S, Colonna M, et al. MHC II+ resident peritoneal and pleural macrophages rely on IRF4 for development from circulating monocytes. J Exp Med. 2016;213:1951-9 pubmed 出版商
  775. Dave M, Silva J, Eliçabe R, Jeréz M, Filippa V, Gorlino C, et al. Yersinia enterocolitica YopH-Deficient Strain Activates Neutrophil Recruitment to Peyer's Patches and Promotes Clearance of the Virulent Strain. Infect Immun. 2016;84:3172-3181 pubmed 出版商
  776. Papp S, Moderzynski K, Rauch J, Heine L, Kuehl S, Richardt U, et al. Liver Necrosis and Lethal Systemic Inflammation in a Murine Model of Rickettsia typhi Infection: Role of Neutrophils, Macrophages and NK Cells. PLoS Negl Trop Dis. 2016;10:e0004935 pubmed 出版商
  777. Murakami S, Shahbazian D, Surana R, Zhang W, Chen H, Graham G, et al. Yes-associated protein mediates immune reprogramming in pancreatic ductal adenocarcinoma. Oncogene. 2017;36:1232-1244 pubmed 出版商
  778. Kim G, Das R, Goduni L, McClellan S, Hazlett L, Mahabeleshwar G. Kruppel-like Factor 6 Promotes Macrophage-mediated Inflammation by Suppressing B Cell Leukemia/Lymphoma 6 Expression. J Biol Chem. 2016;291:21271-21282 pubmed
  779. Melton D, Roberts A, Wang H, Sarwar Z, Wetzel M, Wells J, et al. Absence of CCR2 results in an inflammaging environment in young mice with age-independent impairments in muscle regeneration. J Leukoc Biol. 2016;100:1011-1025 pubmed
  780. Finsterbusch M, Hall P, Li A, Devi S, Westhorpe C, Kitching A, et al. Patrolling monocytes promote intravascular neutrophil activation and glomerular injury in the acutely inflamed glomerulus. Proc Natl Acad Sci U S A. 2016;113:E5172-81 pubmed 出版商
  781. Cordova Z, Grönholm A, Kytölä V, Taverniti V, Hämäläinen S, Aittomäki S, et al. Myeloid cell expressed proprotein convertase FURIN attenuates inflammation. Oncotarget. 2016;7:54392-54404 pubmed 出版商
  782. Henry E, Sy C, Inclan Rico J, Espinosa V, Ghanny S, Dwyer D, et al. Carbonic anhydrase enzymes regulate mast cell-mediated inflammation. J Exp Med. 2016;213:1663-73 pubmed 出版商
  783. Achuthan A, Cook A, Lee M, Saleh R, Khiew H, Chang M, et al. Granulocyte macrophage colony-stimulating factor induces CCL17 production via IRF4 to mediate inflammation. J Clin Invest. 2016;126:3453-66 pubmed 出版商
  784. Lund A, Wagner M, Fankhauser M, Steinskog E, Broggi M, Spranger S, et al. Lymphatic vessels regulate immune microenvironments in human and murine melanoma. J Clin Invest. 2016;126:3389-402 pubmed 出版商
  785. Damgaard R, Walker J, Marco Casanova P, Morgan N, Titheradge H, Elliott P, et al. The Deubiquitinase OTULIN Is an Essential Negative Regulator of Inflammation and Autoimmunity. Cell. 2016;166:1215-1230.e20 pubmed 出版商
  786. Moodley D, Yoshida H, Mostafavi S, Asinovski N, Ortiz Lopez A, Symanowicz P, et al. Network pharmacology of JAK inhibitors. Proc Natl Acad Sci U S A. 2016;113:9852-7 pubmed 出版商
  787. Meliopoulos V, Van De Velde L, Van De Velde N, Karlsson E, Neale G, Vogel P, et al. An Epithelial Integrin Regulates the Amplitude of Protective Lung Interferon Responses against Multiple Respiratory Pathogens. PLoS Pathog. 2016;12:e1005804 pubmed 出版商
  788. Ramo K, Sugamura K, Craige S, Keaney J, Davis R. Suppression of ischemia in arterial occlusive disease by JNK-promoted native collateral artery development. elife. 2016;5: pubmed 出版商
  789. You L, Li L, Zou J, Yan K, Belle J, Nijnik A, et al. BRPF1 is essential for development of fetal hematopoietic stem cells. J Clin Invest. 2016;126:3247-62 pubmed 出版商
  790. Shi Y, Wu W, Chai Q, Li Q, Hou Y, Xia H, et al. LTβR controls thymic portal endothelial cells for haematopoietic progenitor cell homing and T-cell regeneration. Nat Commun. 2016;7:12369 pubmed 出版商
  791. Seki T, Hosaka K, Lim S, Fischer C, Honek J, Yang Y, et al. Endothelial PDGF-CC regulates angiogenesis-dependent thermogenesis in beige fat. Nat Commun. 2016;7:12152 pubmed 出版商
  792. Imhof B, Jemelin S, Ballet R, Vesin C, Schapira M, Karaca M, et al. CCN1/CYR61-mediated meticulous patrolling by Ly6Clow monocytes fuels vascular inflammation. Proc Natl Acad Sci U S A. 2016;113:E4847-56 pubmed 出版商
  793. Ferreirinha P, Pérez Cabezas B, Correia A, Miyazawa B, França A, Carvalhais V, et al. Poly-N-Acetylglucosamine Production by Staphylococcus epidermidis Cells Increases Their In Vivo Proinflammatory Effect. Infect Immun. 2016;84:2933-43 pubmed 出版商
  794. Yoshioka D, Kajiwara C, Ishii Y, Umeki K, Hiramatsu K, Kadota J, et al. Efficacy of ?-Lactam-plus-Macrolide Combination Therapy in a Mouse Model of Lethal Pneumococcal Pneumonia. Antimicrob Agents Chemother. 2016;60:6146-54 pubmed 出版商
  795. Chow K, Delconte R, Huntington N, Tarlinton D, Sutherland R, Zhan Y, et al. Innate Allorecognition Results in Rapid Accumulation of Monocyte-Derived Dendritic Cells. J Immunol. 2016;197:2000-8 pubmed 出版商
  796. Biton J, Khaleghparast Athari S, Thiolat A, Santinon F, Lemeiter D, Hervé R, et al. In Vivo Expansion of Activated Foxp3+ Regulatory T Cells and Establishment of a Type 2 Immune Response upon IL-33 Treatment Protect against Experimental Arthritis. J Immunol. 2016;197:1708-19 pubmed 出版商
  797. Barin J, Talor M, Schaub J, Diny N, Hou X, Hoyer M, et al. Collaborative Interferon-? and Interleukin-17 Signaling Protects the Oral Mucosa from Staphylococcus aureus. Am J Pathol. 2016;186:2337-52 pubmed 出版商
  798. Schneider C, Nobs S, Heer A, Hirsch E, Penninger J, Siggs O, et al. Frontline Science: Coincidental null mutation of Csf2rα in a colony of PI3Kγ-/- mice causes alveolar macrophage deficiency and fatal respiratory viral infection. J Leukoc Biol. 2017;101:367-376 pubmed 出版商
  799. Di Siena S, Gimmelli R, Nori S, Barbagallo F, Campolo F, Dolci S, et al. Activated c-Kit receptor in the heart promotes cardiac repair and regeneration after injury. Cell Death Dis. 2016;7:e2317 pubmed 出版商
  800. Eichenfield D, Troutman T, Link V, Lam M, Cho H, Gosselin D, et al. Tissue damage drives co-localization of NF-?B, Smad3, and Nrf2 to direct Rev-erb sensitive wound repair in mouse macrophages. elife. 2016;5: pubmed 出版商
  801. Aryal B, Rotllan N, Araldi E, Ramírez C, He S, Chousterman B, et al. ANGPTL4 deficiency in haematopoietic cells promotes monocyte expansion and atherosclerosis progression. Nat Commun. 2016;7:12313 pubmed 出版商
  802. Chen S, Miyazaki M, Chandra V, Fisch K, Chang A, Murre C. Id3 Orchestrates Germinal Center B Cell Development. Mol Cell Biol. 2016;36:2543-52 pubmed 出版商
  803. Lesina M, Wörmann S, Morton J, Diakopoulos K, Korneeva O, Wimmer M, et al. RelA regulates CXCL1/CXCR2-dependent oncogene-induced senescence in murine Kras-driven pancreatic carcinogenesis. J Clin Invest. 2016;126:2919-32 pubmed 出版商
  804. Mothes B, Bucher K, Ammon Treiber S, Schwab M, Piekorz R, Hirsch E, et al. p110γ/δ Double-Deficiency Induces Eosinophilia and IgE Production but Protects from OVA-Induced Airway Inflammation. PLoS ONE. 2016;11:e0159310 pubmed 出版商
  805. Fransén Pettersson N, Duarte N, Nilsson J, Lundholm M, Mayans S, Larefalk A, et al. A New Mouse Model That Spontaneously Develops Chronic Liver Inflammation and Fibrosis. PLoS ONE. 2016;11:e0159850 pubmed 出版商
  806. Metz H, Kargl J, Busch S, Kim K, Kurland B, Abberbock S, et al. Insulin receptor substrate-1 deficiency drives a proinflammatory phenotype in KRAS mutant lung adenocarcinoma. Proc Natl Acad Sci U S A. 2016;113:8795-800 pubmed 出版商
  807. Kojima Y, Volkmer J, McKenna K, Civelek M, Lusis A, Miller C, et al. CD47-blocking antibodies restore phagocytosis and prevent atherosclerosis. Nature. 2016;536:86-90 pubmed
  808. Parsa R, Lund H, Georgoudaki A, Zhang X, Ortlieb Guerreiro Cacais A, Grommisch D, et al. BAFF-secreting neutrophils drive plasma cell responses during emergency granulopoiesis. J Exp Med. 2016;213:1537-53 pubmed 出版商
  809. Raguz J, Jerić I, Niault T, Nowacka J, Kuzet S, Rupp C, et al. Epidermal RAF prevents allergic skin disease. elife. 2016;5: pubmed 出版商
  810. Theurl I, Hilgendorf I, Nairz M, Tymoszuk P, Haschka D, Asshoff M, et al. On-demand erythrocyte disposal and iron recycling requires transient macrophages in the liver. Nat Med. 2016;22:945-51 pubmed 出版商
  811. Xiao Y, Tang J, Guo H, Zhao Y, Tang R, Ouyang S, et al. Targeting CBLB as a potential therapeutic approach for disseminated candidiasis. Nat Med. 2016;22:906-14 pubmed 出版商
  812. Terracina K, Graham L, Payne K, Manjili M, Baek A, Damle S, et al. DNA methyltransferase inhibition increases efficacy of adoptive cellular immunotherapy of murine breast cancer. Cancer Immunol Immunother. 2016;65:1061-73 pubmed 出版商
  813. Hoppe P, Schwarzfischer M, Loeffler D, Kokkaliaris K, Hilsenbeck O, Moritz N, et al. Early myeloid lineage choice is not initiated by random PU.1 to GATA1 protein ratios. Nature. 2016;535:299-302 pubmed 出版商
  814. Lowndes M, Rotherham M, Price J, El Haj A, Habib S. Immobilized WNT Proteins Act as a Stem Cell Niche for Tissue Engineering. Stem Cell Reports. 2016;7:126-37 pubmed 出版商
  815. Ibiza S, García Cassani B, Ribeiro H, Carvalho T, Almeida L, Marques R, et al. Glial-cell-derived neuroregulators control type 3 innate lymphoid cells and gut defence. Nature. 2016;535:440-443 pubmed 出版商
  816. Kretschmer S, Pieper M, Hüttmann G, Bölke T, Wollenberg B, Marsh L, et al. Autofluorescence multiphoton microscopy for visualization of tissue morphology and cellular dynamics in murine and human airways. Lab Invest. 2016;96:918-31 pubmed 出版商
  817. Clausen B, Degn M, Sivasaravanaparan M, Fogtmann T, Andersen M, Trojanowsky M, et al. Conditional ablation of myeloid TNF increases lesion volume after experimental stroke in mice, possibly via altered ERK1/2 signaling. Sci Rep. 2016;6:29291 pubmed 出版商
  818. Allison K, Sajti E, Collier J, Gosselin D, Troutman T, Stone E, et al. Affinity and dose of TCR engagement yield proportional enhancer and gene activity in CD4+ T cells. elife. 2016;5: pubmed 出版商
  819. Ngambenjawong C, Gustafson H, Pineda J, Kacherovsky N, Cieslewicz M, Pun S. Serum Stability and Affinity Optimization of an M2 Macrophage-Targeting Peptide (M2pep). Theranostics. 2016;6:1403-14 pubmed 出版商
  820. Metruccio M, Evans D, Gabriel M, Kadurugamuwa J, Fleiszig S. Pseudomonas aeruginosa Outer Membrane Vesicles Triggered by Human Mucosal Fluid and Lysozyme Can Prime Host Tissue Surfaces for Bacterial Adhesion. Front Microbiol. 2016;7:871 pubmed 出版商
  821. Neves J, Zhu J, Sousa Victor P, Konjikusic M, Riley R, Chew S, et al. Immune modulation by MANF promotes tissue repair and regenerative success in the retina. Science. 2016;353:aaf3646 pubmed 出版商
  822. Yu Q, Song W, Wang D, Zeng Y. Identification of blood vascular endothelial stem cells by the expression of protein C receptor. Cell Res. 2016;26:1079-1098 pubmed 出版商
  823. Garaude J, Acin Perez R, Martínez Cano S, Enamorado M, Ugolini M, Nistal Villán E, et al. Mitochondrial respiratory-chain adaptations in macrophages contribute to antibacterial host defense. Nat Immunol. 2016;17:1037-1045 pubmed 出版商
  824. Deng Z, Rong Y, Teng Y, Zhuang X, Samykutty A, Mu J, et al. Exosomes miR-126a released from MDSC induced by DOX treatment promotes lung metastasis. Oncogene. 2017;36:639-651 pubmed 出版商
  825. Matcovitch Natan O, Winter D, Giladi A, Vargas Aguilar S, Spinrad A, Sarrazin S, et al. Microglia development follows a stepwise program to regulate brain homeostasis. Science. 2016;353:aad8670 pubmed 出版商
  826. Quantius J, Schmoldt C, Vazquez Armendariz A, Becker C, El Agha E, Wilhelm J, et al. Influenza Virus Infects Epithelial Stem/Progenitor Cells of the Distal Lung: Impact on Fgfr2b-Driven Epithelial Repair. PLoS Pathog. 2016;12:e1005544 pubmed 出版商
  827. Albarrán Juárez J, Kaur H, Grimm M, Offermanns S, Wettschureck N. Lineage tracing of cells involved in atherosclerosis. Atherosclerosis. 2016;251:445-453 pubmed 出版商
  828. Terashima A, Okamoto K, Nakashima T, Akira S, Ikuta K, Takayanagi H. Sepsis-Induced Osteoblast Ablation Causes Immunodeficiency. Immunity. 2016;44:1434-43 pubmed 出版商
  829. Lo T, Silveira P, Fromm P, Verma N, Vu P, Kupresanin F, et al. Characterization of the Expression and Function of the C-Type Lectin Receptor CD302 in Mice and Humans Reveals a Role in Dendritic Cell Migration. J Immunol. 2016;197:885-98 pubmed 出版商
  830. Stentzel S, Teufelberger A, Nordengrün M, Kolata J, Schmidt F, Van Crombruggen K, et al. Staphylococcal serine protease-like proteins are pacemakers of allergic airway reactions to Staphylococcus aureus. J Allergy Clin Immunol. 2017;139:492-500.e8 pubmed 出版商
  831. De Grove K, Provoost S, Hendriks R, McKenzie A, Seys L, Kumar S, et al. Dysregulation of type 2 innate lymphoid cells and TH2 cells impairs pollutant-induced allergic airway responses. J Allergy Clin Immunol. 2017;139:246-257.e4 pubmed 出版商
  832. Goetz B, An W, Mohapatra B, Zutshi N, Iseka F, Storck M, et al. A novel CBL-Bflox/flox mouse model allows tissue-selective fully conditional CBL/CBL-B double-knockout: CD4-Cre mediated CBL/CBL-B deletion occurs in both T-cells and hematopoietic stem cells. Oncotarget. 2016;7:51107-51123 pubmed 出版商
  833. Ruhland M, Loza A, Capietto A, Luo X, Knolhoff B, Flanagan K, et al. Stromal senescence establishes an immunosuppressive microenvironment that drives tumorigenesis. Nat Commun. 2016;7:11762 pubmed 出版商
  834. Chen I, Caprioli A, Ohnuki H, Kwak H, Porcher C, Tosato G. EphrinB2 regulates the emergence of a hemogenic endothelium from the aorta. Sci Rep. 2016;6:27195 pubmed 出版商
  835. Incio J, Liu H, Suboj P, Chin S, Chen I, Pinter M, et al. Obesity-Induced Inflammation and Desmoplasia Promote Pancreatic Cancer Progression and Resistance to Chemotherapy. Cancer Discov. 2016;6:852-69 pubmed 出版商
  836. Quirino G, Nascimento M, Davoli Ferreira M, Sacramento L, Lima M, Almeida R, et al. Interleukin-27 (IL-27) Mediates Susceptibility to Visceral Leishmaniasis by Suppressing the IL-17-Neutrophil Response. Infect Immun. 2016;84:2289-2298 pubmed 出版商
  837. Quarta M, Brett J, DiMarco R, de Morrée A, Boutet S, Chacon R, et al. An artificial niche preserves the quiescence of muscle stem cells and enhances their therapeutic efficacy. Nat Biotechnol. 2016;34:752-9 pubmed 出版商
  838. Seehus C, Kaye J. In vitro Differentiation of Murine Innate Lymphoid Cells from Common Lymphoid Progenitor Cells. Bio Protoc. 2016;6: pubmed
  839. Sinclair A, Park L, Shah M, Drotar M, Calaminus S, Hopcroft L, et al. CXCR2 and CXCL4 regulate survival and self-renewal of hematopoietic stem/progenitor cells. Blood. 2016;128:371-83 pubmed 出版商
  840. Yang X, Lin Y, Shi Y, Li B, Liu W, Yin W, et al. FAP Promotes Immunosuppression by Cancer-Associated Fibroblasts in the Tumor Microenvironment via STAT3-CCL2 Signaling. Cancer Res. 2016;76:4124-35 pubmed 出版商
  841. Ricard C, Tchoghandjian A, Luche H, Grenot P, Figarella Branger D, Rougon G, et al. Phenotypic dynamics of microglial and monocyte-derived cells in glioblastoma-bearing mice. Sci Rep. 2016;6:26381 pubmed 出版商
  842. Stein S, Mack E, Rome K, Pajcini K, Ohtani T, Xu L, et al. Trib2 Suppresses Tumor Initiation in Notch-Driven T-ALL. PLoS ONE. 2016;11:e0155408 pubmed 出版商
  843. Patenaude J, Perreault C. Thymic Mesenchymal Cells Have a Distinct Transcriptomic Profile. J Immunol. 2016;196:4760-70 pubmed 出版商
  844. Welte T, Kim I, Tian L, Gao X, Wang H, Li J, et al. Oncogenic mTOR signalling recruits myeloid-derived suppressor cells to promote tumour initiation. Nat Cell Biol. 2016;18:632-44 pubmed 出版商
  845. Rothhammer V, Mascanfroni I, Bunse L, Takenaka M, Kenison J, Mayo L, et al. Type I interferons and microbial metabolites of tryptophan modulate astrocyte activity and central nervous system inflammation via the aryl hydrocarbon receptor. Nat Med. 2016;22:586-97 pubmed 出版商
  846. Wen S, Dooner M, Cheng Y, Papa E, Del Tatto M, Pereira M, et al. Mesenchymal stromal cell-derived extracellular vesicles rescue radiation damage to murine marrow hematopoietic cells. Leukemia. 2016;30:2221-2231 pubmed 出版商
  847. Reynaldi A, Smith N, Schlub T, Venturi V, Rudd B, Davenport M. Modeling the dynamics of neonatal CD8+ T-cell responses. Immunol Cell Biol. 2016;94:838-848 pubmed 出版商
  848. Hollmen M, Karaman S, Schwager S, Lisibach A, Christiansen A, Maksimow M, et al. G-CSF regulates macrophage phenotype and associates with poor overall survival in human triple-negative breast cancer. Oncoimmunology. 2016;5:e1115177 pubmed
  849. Shiraishi M, Shintani Y, Shintani Y, Ishida H, Saba R, Yamaguchi A, et al. Alternatively activated macrophages determine repair of the infarcted adult murine heart. J Clin Invest. 2016;126:2151-66 pubmed 出版商
  850. Szalay G, Martinecz B, Lénárt N, Kornyei Z, Orsolits B, Judák L, et al. Microglia protect against brain injury and their selective elimination dysregulates neuronal network activity after stroke. Nat Commun. 2016;7:11499 pubmed 出版商
  851. Larabee C, Hu Y, Desai S, Georgescu C, Wren J, Axtell R, et al. Myelin-specific Th17 cells induce severe relapsing optic neuritis with irreversible loss of retinal ganglion cells in C57BL/6 mice. Mol Vis. 2016;22:332-41 pubmed
  852. Wang Y, Wang X, Flores E, Yu J, Chang S. Dysfunctional telomeres induce p53-dependent and independent apoptosis to compromise cellular proliferation and inhibit tumor formation. Aging Cell. 2016;15:646-60 pubmed 出版商
  853. Pietras E, Mirantes Barbeito C, Fong S, Loeffler D, Kovtonyuk L, Zhang S, et al. Chronic interleukin-1 exposure drives haematopoietic stem cells towards precocious myeloid differentiation at the expense of self-renewal. Nat Cell Biol. 2016;18:607-18 pubmed 出版商
  854. Hull T, Boddu R, Guo L, Tisher C, Traylor A, Patel B, et al. Heme oxygenase-1 regulates mitochondrial quality control in the heart. JCI Insight. 2016;1:e85817 pubmed
  855. Song Z, Li Z, Li D, Fang W, Liu H, Yang D, et al. Seminal plasma induces inflammation in the uterus through the ?? T/IL-17 pathway. Sci Rep. 2016;6:25118 pubmed 出版商
  856. Carofino B, Ayanga B, Tracey L, Brooke Bisschop T, Justice M. PRDM14 promotes RAG-dependent Notch1 driver mutations in mouse T-ALL. Biol Open. 2016;5:645-53 pubmed 出版商
  857. Riabov V, Yin S, Song B, Avdic A, Schledzewski K, Ovsiy I, et al. Stabilin-1 is expressed in human breast cancer and supports tumor growth in mammary adenocarcinoma mouse model. Oncotarget. 2016;7:31097-110 pubmed 出版商
  858. Ziltener P, Reinheckel T, Oxenius A. Neutrophil and Alveolar Macrophage-Mediated Innate Immune Control of Legionella pneumophila Lung Infection via TNF and ROS. PLoS Pathog. 2016;12:e1005591 pubmed 出版商
  859. Rybtsov S, Ivanovs A, Zhao S, Medvinsky A. Concealed expansion of immature precursors underpins acute burst of adult HSC activity in foetal liver. Development. 2016;143:1284-9 pubmed 出版商
  860. Yin S, Jian F, Chen Y, Chien S, Hsieh M, Hsiao P, et al. Induction of IL-25 secretion from tumour-associated fibroblasts suppresses mammary tumour metastasis. Nat Commun. 2016;7:11311 pubmed 出版商
  861. Lim S, Yuzhalin A, Gordon Weeks A, Muschel R. Tumor-infiltrating monocytes/macrophages promote tumor invasion and migration by upregulating S100A8 and S100A9 expression in cancer cells. Oncogene. 2016;35:5735-5745 pubmed 出版商
  862. Kurkewich J, Bikorimana E, Nguyen T, Klopfenstein N, Zhang H, Hallas W, et al. The mirn23a microRNA cluster antagonizes B cell development. J Leukoc Biol. 2016;100:665-677 pubmed
  863. Itkin T, Gur Cohen S, Spencer J, Schajnovitz A, Ramasamy S, Kusumbe A, et al. Distinct bone marrow blood vessels differentially regulate haematopoiesis. Nature. 2016;532:323-8 pubmed 出版商
  864. Spiegel A, Brooks M, Houshyar S, Reinhardt F, Ardolino M, Fessler E, et al. Neutrophils Suppress Intraluminal NK Cell-Mediated Tumor Cell Clearance and Enhance Extravasation of Disseminated Carcinoma Cells. Cancer Discov. 2016;6:630-49 pubmed 出版商
  865. Liu Q, Babadjouni R, Radwanski R, Cheng H, Patel A, Hodis D, et al. Stroke Damage Is Exacerbated by Nano-Size Particulate Matter in a Mouse Model. PLoS ONE. 2016;11:e0153376 pubmed 出版商
  866. Jackson S, Jacobs H, Arkatkar T, Dam E, Scharping N, Kolhatkar N, et al. B cell IFN-γ receptor signaling promotes autoimmune germinal centers via cell-intrinsic induction of BCL-6. J Exp Med. 2016;213:733-50 pubmed 出版商
  867. Chen W, Cao Z, Sugaya S, Lopez M, Sendra V, Laver N, et al. Pathological lymphangiogenesis is modulated by galectin-8-dependent crosstalk between podoplanin and integrin-associated VEGFR-3. Nat Commun. 2016;7:11302 pubmed 出版商
  868. Vandenberk L, Garg A, Verschuere T, Koks C, Belmans J, Beullens M, et al. Irradiation of necrotic cancer cells, employed for pulsing dendritic cells (DCs), potentiates DC vaccine-induced antitumor immunity against high-grade glioma. Oncoimmunology. 2016;5:e1083669 pubmed
  869. Mall C, Sckisel G, Proia D, Mirsoian A, Grossenbacher S, Pai C, et al. Repeated PD-1/PD-L1 monoclonal antibody administration induces fatal xenogeneic hypersensitivity reactions in a murine model of breast cancer. Oncoimmunology. 2016;5:e1075114 pubmed
  870. Seifert L, Werba G, Tiwari S, Giao Ly N, Alothman S, Alqunaibit D, et al. The necrosome promotes pancreatic oncogenesis via CXCL1 and Mincle-induced immune suppression. Nature. 2016;532:245-9 pubmed 出版商
  871. Chen G, Luo Y, Eriksson D, Meng X, Qian C, Bauerle T, et al. High fat diet increases melanoma cell growth in the bone marrow by inducing osteopontin and interleukin 6. Oncotarget. 2016;7:26653-69 pubmed 出版商
  872. Yosef R, Pilpel N, Tokarsky Amiel R, Biran A, Ovadya Y, Cohen S, et al. Directed elimination of senescent cells by inhibition of BCL-W and BCL-XL. Nat Commun. 2016;7:11190 pubmed 出版商
  873. Xiong H, Keith J, Samilo D, Carter R, Leiner I, Pamer E. Innate Lymphocyte/Ly6C(hi) Monocyte Crosstalk Promotes Klebsiella Pneumoniae Clearance. Cell. 2016;165:679-89 pubmed 出版商
  874. Griffiths K, Dolezal O, Cao B, Nilsson S, See H, Pfleger K, et al. i-bodies, Human Single Domain Antibodies That Antagonize Chemokine Receptor CXCR4. J Biol Chem. 2016;291:12641-57 pubmed 出版商
  875. Jiang S, Li X, Hess N, Guan Y, Tapping R. TLR10 Is a Negative Regulator of Both MyD88-Dependent and -Independent TLR Signaling. J Immunol. 2016;196:3834-41 pubmed 出版商
  876. Braun J, Meixner A, Brachner A, Foisner R. The GIY-YIG Type Endonuclease Ankyrin Repeat and LEM Domain-Containing Protein 1 (ANKLE1) Is Dispensable for Mouse Hematopoiesis. PLoS ONE. 2016;11:e0152278 pubmed 出版商
  877. Yang Y, Xu J, Chen H, Fei X, Tang Y, Yan Y, et al. MiR-128-2 inhibits common lymphoid progenitors from developing into progenitor B cells. Oncotarget. 2016;7:17520-31 pubmed 出版商
  878. Peteranderl C, Morales Nebreda L, Selvakumar B, Lecuona E, Vadász I, Morty R, et al. Macrophage-epithelial paracrine crosstalk inhibits lung edema clearance during influenza infection. J Clin Invest. 2016;126:1566-80 pubmed 出版商
  879. Martin B, Wang C, Zhang C, Kang Z, Gulen M, Zepp J, et al. T cell-intrinsic ASC critically promotes T(H)17-mediated experimental autoimmune encephalomyelitis. Nat Immunol. 2016;17:583-92 pubmed 出版商
  880. O Rourke J, Bogdanik L, Yáñez A, Lall D, Wolf A, Muhammad A, et al. C9orf72 is required for proper macrophage and microglial function in mice. Science. 2016;351:1324-9 pubmed 出版商
  881. Gomez de Agüero M, Ganal Vonarburg S, Fuhrer T, Rupp S, Uchimura Y, Li H, et al. The maternal microbiota drives early postnatal innate immune development. Science. 2016;351:1296-302 pubmed 出版商
  882. Miller M, Rosten P, Lemieux M, Lai C, Humphries R. Meis1 Is Required for Adult Mouse Erythropoiesis, Megakaryopoiesis and Hematopoietic Stem Cell Expansion. PLoS ONE. 2016;11:e0151584 pubmed 出版商
  883. Kocijancic D, Felgner S, Frahm M, Komoll R, Iljazovic A, Pawar V, et al. Therapy of solid tumors using probiotic Symbioflor-2: restraints and potential. Oncotarget. 2016;7:22605-22 pubmed 出版商
  884. Osterloh A, Papp S, Moderzynski K, Kuehl S, Richardt U, Fleischer B. Persisting Rickettsia typhi Causes Fatal Central Nervous System Inflammation. Infect Immun. 2016;84:1615-1632 pubmed 出版商
  885. Menheniott T, O Connor L, Chionh Y, Däbritz J, Scurr M, Rollo B, et al. Loss of gastrokine-2 drives premalignant gastric inflammation and tumor progression. J Clin Invest. 2016;126:1383-400 pubmed 出版商
  886. McFarland B, Marks M, Rowse A, Fehling S, Gerigk M, Qin H, et al. Loss of SOCS3 in myeloid cells prolongs survival in a syngeneic model of glioma. Oncotarget. 2016;7:20621-35 pubmed 出版商
  887. Chattopadhyay A, Navab M, Hough G, Grijalva V, Mukherjee P, Fogelman H, et al. Tg6F ameliorates the increase in oxidized phospholipids in the jejunum of mice fed unsaturated LysoPC or WD. J Lipid Res. 2016;57:832-47 pubmed 出版商
  888. Stempel H, Jung M, Pérez Gómez A, Leinders Zufall T, Zufall F, Bufe B. Strain-specific Loss of Formyl Peptide Receptor 3 in the Murine Vomeronasal and Immune Systems. J Biol Chem. 2016;291:9762-75 pubmed 出版商
  889. Antony A, Paillard M, Moffat C, Juskeviciute E, Correnti J, Bolon B, et al. MICU1 regulation of mitochondrial Ca(2+) uptake dictates survival and tissue regeneration. Nat Commun. 2016;7:10955 pubmed 出版商
  890. Carevic M, Oz H, Fuchs K, Laval J, Schroth C, Frey N, et al. CXCR1 Regulates Pulmonary Anti-Pseudomonas Host Defense. J Innate Immun. 2016;8:362-73 pubmed 出版商
  891. Seifert L, Werba G, Tiwari S, Giao Ly N, Nguy S, Alothman S, et al. Radiation Therapy Induces Macrophages to Suppress T-Cell Responses Against Pancreatic Tumors in Mice. Gastroenterology. 2016;150:1659-1672.e5 pubmed 出版商
  892. Liu S, Wu C, Huang K, Wang C, Guan S, Chen L, et al. C/EBP homologous protein (CHOP) deficiency ameliorates renal fibrosis in unilateral ureteral obstructive kidney disease. Oncotarget. 2016;7:21900-12 pubmed 出版商
  893. Crisan M, Solaimani Kartalaei P, Neagu A, Karkanpouna S, Yamada Inagawa T, Purini C, et al. BMP and Hedgehog Regulate Distinct AGM Hematopoietic Stem Cells Ex Vivo. Stem Cell Reports. 2016;6:383-95 pubmed 出版商
  894. Frodermann V, Van Duijn J, van Puijvelde G, van Santbrink P, Lagraauw H, de Vries M, et al. Heat-killed Staphylococcus aureus reduces atherosclerosis by inducing anti-inflammatory macrophages. J Intern Med. 2016;279:592-605 pubmed 出版商
  895. Wang L, Siegenthaler J, Dowell R, Yi R. Foxc1 reinforces quiescence in self-renewing hair follicle stem cells. Science. 2016;351:613-7 pubmed 出版商
  896. Tagliamonte M, Petrizzo A, Napolitano M, Luciano A, Rea D, Barbieri A, et al. A novel multi-drug metronomic chemotherapy significantly delays tumor growth in mice. J Transl Med. 2016;14:58 pubmed 出版商
  897. Zondler L, Müller K, Khalaji S, Bliederhäuser C, Ruf W, Grozdanov V, et al. Peripheral monocytes are functionally altered and invade the CNS in ALS patients. Acta Neuropathol. 2016;132:391-411 pubmed 出版商
  898. Kabat A, Harrison O, Riffelmacher T, Moghaddam A, Pearson C, Laing A, et al. The autophagy gene Atg16l1 differentially regulates Treg and TH2 cells to control intestinal inflammation. elife. 2016;5:e12444 pubmed 出版商
  899. Xu J, Zhou L, Ji L, Chen F, Fortmann K, Zhang K, et al. The REGγ-proteasome forms a regulatory circuit with IκBÉ› and NFκB in experimental colitis. Nat Commun. 2016;7:10761 pubmed 出版商
  900. Yang Y, Poe J, Yang L, Fedoriw A, Desai S, Magnuson T, et al. Rad18 confers hematopoietic progenitor cell DNA damage tolerance independently of the Fanconi Anemia pathway in vivo. Nucleic Acids Res. 2016;44:4174-88 pubmed 出版商
  901. Zhao W, Wang C, Liu R, Wei C, Duan J, Liu K, et al. Effect of TGF-β1 on the Migration and Recruitment of Mesenchymal Stem Cells after Vascular Balloon Injury: Involvement of Matrix Metalloproteinase-14. Sci Rep. 2016;6:21176 pubmed 出版商
  902. Karmakar M, Katsnelson M, Dubyak G, Pearlman E. Neutrophil P2X7 receptors mediate NLRP3 inflammasome-dependent IL-1β secretion in response to ATP. Nat Commun. 2016;7:10555 pubmed 出版商
  903. Lombard R, Doz E, Carreras F, Epardaud M, Le Vern Y, Buzoni Gatel D, et al. IL-17RA in Non-Hematopoietic Cells Controls CXCL-1 and 5 Critical to Recruit Neutrophils to the Lung of Mycobacteria-Infected Mice during the Adaptive Immune Response. PLoS ONE. 2016;11:e0149455 pubmed 出版商
  904. Park J, Park J, Park D, Kim D, Kim H. Stem Cells Antigen-1 Enriches for a Cancer Stem Cell-Like Subpopulation in Mouse Gastric Cancer. Stem Cells. 2016;34:1177-87 pubmed 出版商
  905. Chen J, Miyanishi M, Wang S, Yamazaki S, Sinha R, Kao K, et al. Hoxb5 marks long-term haematopoietic stem cells and reveals a homogenous perivascular niche. Nature. 2016;530:223-7 pubmed 出版商
  906. Vila Leahey A, Rogers D, Marshall J. The impact of ranitidine on monocyte responses in the context of solid tumors. Oncotarget. 2016;7:10891-904 pubmed 出版商
  907. Roffê E, Marino A, Weaver J, Wan W, de Araújo F, Hoffman V, et al. Trypanosoma cruzi Causes Paralyzing Systemic Necrotizing Vasculitis Driven by Pathogen-Specific Type I Immunity in Mice. Infect Immun. 2016;84:1123-1136 pubmed 出版商
  908. Smith R, Reyes N, Khandelwal P, Schlereth S, Lee H, Masli S, et al. Secondary allergic T cell responses are regulated by dendritic cell-derived thrombospondin-1 in the setting of allergic eye disease. J Leukoc Biol. 2016;100:371-80 pubmed 出版商
  909. Crompton R, Williams H, Ansell D, Campbell L, Holden K, Cruickshank S, et al. Oestrogen promotes healing in a bacterial LPS model of delayed cutaneous wound repair. Lab Invest. 2016;96:439-49 pubmed 出版商
  910. Däbritz J, Judd L, Chalinor H, Menheniott T, Giraud A. Altered gp130 signalling ameliorates experimental colitis via myeloid cell-specific STAT3 activation and myeloid-derived suppressor cells. Sci Rep. 2016;6:20584 pubmed 出版商
  911. Howitt M, Lavoie S, Michaud M, Blum A, Tran S, Weinstock J, et al. Tuft cells, taste-chemosensory cells, orchestrate parasite type 2 immunity in the gut. Science. 2016;351:1329-33 pubmed 出版商
  912. Azpilikueta A, Agorreta J, Labiano S, Pérez Gracia J, Sánchez Paulete A, Aznar M, et al. Successful Immunotherapy against a Transplantable Mouse Squamous Lung Carcinoma with Anti-PD-1 and Anti-CD137 Monoclonal Antibodies. J Thorac Oncol. 2016;11:524-36 pubmed 出版商
  913. Wu X, Fleming A, Ricketts T, Pavel M, Virgin H, Menzies F, et al. Autophagy regulates Notch degradation and modulates stem cell development and neurogenesis. Nat Commun. 2016;7:10533 pubmed 出版商
  914. Lin C, Bradstreet T, Schwarzkopf E, Jarjour N, Chou C, Archambault A, et al. IL-1-induced Bhlhe40 identifies pathogenic T helper cells in a model of autoimmune neuroinflammation. J Exp Med. 2016;213:251-71 pubmed 出版商
  915. Ying W, Tseng A, Chang R, Wang H, Lin Y, Kanameni S, et al. miR-150 regulates obesity-associated insulin resistance by controlling B cell functions. Sci Rep. 2016;6:20176 pubmed 出版商
  916. Bulla R, Tripodo C, Rami D, Ling G, Agostinis C, Guarnotta C, et al. C1q acts in the tumour microenvironment as a cancer-promoting factor independently of complement activation. Nat Commun. 2016;7:10346 pubmed 出版商
  917. Naujoks J, Tabeling C, Dill B, Hoffmann C, Brown A, Kunze M, et al. IFNs Modify the Proteome of Legionella-Containing Vacuoles and Restrict Infection Via IRG1-Derived Itaconic Acid. PLoS Pathog. 2016;12:e1005408 pubmed 出版商
  918. Megías J, Martínez A, Yáñez A, Goodridge H, Gozalbo D, Gil M. TLR2, TLR4 and Dectin-1 signalling in hematopoietic stem and progenitor cells determines the antifungal phenotype of the macrophages they produce. Microbes Infect. 2016;18:354-63 pubmed 出版商
  919. Atkinson S, Hoffmann U, Hamann A, Bach E, Danneskiold Samsøe N, Kristiansen K, et al. Depletion of regulatory T cells leads to an exacerbation of delayed-type hypersensitivity arthritis in C57BL/6 mice that can be counteracted by IL-17 blockade. Dis Model Mech. 2016;9:427-40 pubmed 出版商
  920. Maelfait J, Roose K, Vereecke L, Mc Guire C, Sze M, Schuijs M, et al. A20 Deficiency in Lung Epithelial Cells Protects against Influenza A Virus Infection. PLoS Pathog. 2016;12:e1005410 pubmed 出版商
  921. Scott C, Zheng F, De Baetselier P, Martens L, Saeys Y, De Prijck S, et al. Bone marrow-derived monocytes give rise to self-renewing and fully differentiated Kupffer cells. Nat Commun. 2016;7:10321 pubmed 出版商
  922. Kim I, Mlsna L, Yoon S, Le B, Yu S, Xu D, et al. A postnatal peak in microglial development in the mouse hippocampus is correlated with heightened sensitivity to seizure triggers. Brain Behav. 2015;5:e00403 pubmed 出版商
  923. Baudiß K, de Paula Vieira R, Cicko S, Ayata K, Hossfeld M, Ehrat N, et al. C1P Attenuates Lipopolysaccharide-Induced Acute Lung Injury by Preventing NF-κB Activation in Neutrophils. J Immunol. 2016;196:2319-26 pubmed 出版商
  924. Chu C, Gardner P, Copland D, Liyanage S, Gonzalez Cordero A, Kleine Holthaus S, et al. Multimodal analysis of ocular inflammation using the endotoxin-induced uveitis mouse model. Dis Model Mech. 2016;9:473-81 pubmed 出版商
  925. Luchsinger L, de Almeida M, Corrigan D, Mumau M, Snoeck H. Mitofusin 2 maintains haematopoietic stem cells with extensive lymphoid potential. Nature. 2016;529:528-31 pubmed 出版商
  926. Montufar Solis D, Klein J. Splenic Leukocytes Traffic to the Thyroid and Produce a Novel TSHβ Isoform during Acute Listeria monocytogenes Infection in Mice. PLoS ONE. 2016;11:e0146111 pubmed 出版商
  927. Catarinella M, Monestiroli A, Escobar G, Fiocchi A, Tran N, Aiolfi R, et al. IFNα gene/cell therapy curbs colorectal cancer colonization of the liver by acting on the hepatic microenvironment. EMBO Mol Med. 2016;8:155-70 pubmed 出版商
  928. Lasigliè D, Boero S, Bauer I, Morando S, Damonte P, Cea M, et al. Sirt6 regulates dendritic cell differentiation, maturation, and function. Aging (Albany NY). 2016;8:34-49 pubmed
  929. Leiva M, Quintana J, Ligos J, Hidalgo A. Haematopoietic ESL-1 enables stem cell proliferation in the bone marrow by limiting TGFβ availability. Nat Commun. 2016;7:10222 pubmed 出版商
  930. García Prat L, Martínez Vicente M, Perdiguero E, Ortet L, Rodríguez Ubreva J, Rebollo E, et al. Autophagy maintains stemness by preventing senescence. Nature. 2016;529:37-42 pubmed 出版商
  931. Arai S, Kitada K, Yamazaki T, Takai R, Zhang X, Tsugawa Y, et al. Apoptosis inhibitor of macrophage protein enhances intraluminal debris clearance and ameliorates acute kidney injury in mice. Nat Med. 2016;22:183-93 pubmed 出版商
  932. McCubbrey A, Nelson J, Stolberg V, Blakely P, McCloskey L, Janssen W, et al. MicroRNA-34a Negatively Regulates Efferocytosis by Tissue Macrophages in Part via SIRT1. J Immunol. 2016;196:1366-75 pubmed 出版商
  933. Gallego Ortega D, Ledger A, Roden D, Law A, Magenau A, Kikhtyak Z, et al. ELF5 Drives Lung Metastasis in Luminal Breast Cancer through Recruitment of Gr1+ CD11b+ Myeloid-Derived Suppressor Cells. PLoS Biol. 2015;13:e1002330 pubmed 出版商
  934. Rybalko V, Hsieh P, Merscham Banda M, Suggs L, Farrar R. The Development of Macrophage-Mediated Cell Therapy to Improve Skeletal Muscle Function after Injury. PLoS ONE. 2015;10:e0145550 pubmed 出版商
  935. Zahavi T, Lanton T, Divon M, Salmon A, Peretz T, Galun E, et al. Sorafenib treatment during partial hepatectomy reduces tumorgenesis in an inflammation-associated liver cancer model. Oncotarget. 2016;7:4860-70 pubmed 出版商
  936. Scholz A, Harter P, Cremer S, Yalcin B, Gurnik S, Yamaji M, et al. Endothelial cell-derived angiopoietin-2 is a therapeutic target in treatment-naive and bevacizumab-resistant glioblastoma. EMBO Mol Med. 2016;8:39-57 pubmed 出版商
  937. Kimmey J, Huynh J, Weiss L, Park S, Kambal A, Debnath J, et al. Unique role for ATG5 in neutrophil-mediated immunopathology during M. tuberculosis infection. Nature. 2015;528:565-9 pubmed 出版商
  938. Ogura Y, Hindi S, Sato S, Xiong G, Akira S, Kumar A. TAK1 modulates satellite stem cell homeostasis and skeletal muscle repair. Nat Commun. 2015;6:10123 pubmed 出版商
  939. Ensan S, Li A, Besla R, Degousee N, Cosme J, Roufaiel M, et al. Self-renewing resident arterial macrophages arise from embryonic CX3CR1(+) precursors and circulating monocytes immediately after birth. Nat Immunol. 2016;17:159-68 pubmed 出版商
  940. Shi H, Wang Y, Li X, Zhan X, Tang M, Fina M, et al. NLRP3 activation and mitosis are mutually exclusive events coordinated by NEK7, a new inflammasome component. Nat Immunol. 2016;17:250-8 pubmed 出版商
  941. Qiao J, Huang Y, Xia Y, Chu P, Yao H, Xu L, et al. Busulfan and cyclosphamide induce liver inflammation through NLRP3 activation in mice after hematopoietic stem cell transplantation. Sci Rep. 2015;5:17828 pubmed 出版商
  942. Liu Q, Yang R, Huang X, Zhang H, He L, Zhang L, et al. Genetic lineage tracing identifies in situ Kit-expressing cardiomyocytes. Cell Res. 2016;26:119-30 pubmed 出版商
  943. Arnold L, Perrin H, de Chanville C, Saclier M, Hermand P, Poupel L, et al. CX3CR1 deficiency promotes muscle repair and regeneration by enhancing macrophage ApoE production. Nat Commun. 2015;6:8972 pubmed 出版商
  944. Kaplan J, Marshall M, C McSkimming C, Harmon D, Garmey J, Oldham S, et al. Adipocyte progenitor cells initiate monocyte chemoattractant protein-1-mediated macrophage accumulation in visceral adipose tissue. Mol Metab. 2015;4:779-94 pubmed 出版商
  945. Ge Y, Zhang L, Nikolova M, Reva B, Fuchs E. Strand-specific in vivo screen of cancer-associated miRNAs unveils a role for miR-21(∗) in SCC progression. Nat Cell Biol. 2016;18:111-21 pubmed 出版商
  946. Cuttano R, Rudini N, Bravi L, Corada M, Giampietro C, Papa E, et al. KLF4 is a key determinant in the development and progression of cerebral cavernous malformations. EMBO Mol Med. 2016;8:6-24 pubmed 出版商
  947. Zhong C, Cui K, Wilhelm C, Hu G, Mao K, Belkaid Y, et al. Group 3 innate lymphoid cells continuously require the transcription factor GATA-3 after commitment. Nat Immunol. 2016;17:169-78 pubmed 出版商
  948. Cole C, Verdoni A, Ketkar S, Leight E, Russler Germain D, Lamprecht T, et al. PML-RARA requires DNA methyltransferase 3A to initiate acute promyelocytic leukemia. J Clin Invest. 2016;126:85-98 pubmed 出版商
  949. Kraut B, Maier H, Kókai E, Fiedler K, Boettger T, Illing A, et al. Cardiac-Specific Activation of IKK2 Leads to Defects in Heart Development and Embryonic Lethality. PLoS ONE. 2015;10:e0141591 pubmed 出版商
  950. Neirinckx V, Agirman G, Coste C, Marquet A, Dion V, Rogister B, et al. Adult bone marrow mesenchymal and neural crest stem cells are chemoattractive and accelerate motor recovery in a mouse model of spinal cord injury. Stem Cell Res Ther. 2015;6:211 pubmed 出版商
  951. Kim J, Phan T, Nguyen V, Dinh Vu H, Zheng J, Yun M, et al. Salmonella typhimurium Suppresses Tumor Growth via the Pro-Inflammatory Cytokine Interleukin-1β. Theranostics. 2015;5:1328-42 pubmed 出版商
  952. Van Helden M, Goossens S, Daussy C, Mathieu A, Faure F, Marçais A, et al. Terminal NK cell maturation is controlled by concerted actions of T-bet and Zeb2 and is essential for melanoma rejection. J Exp Med. 2015;212:2015-25 pubmed 出版商
  953. Finkin S, Yuan D, Stein I, Taniguchi K, Weber A, Unger K, et al. Ectopic lymphoid structures function as microniches for tumor progenitor cells in hepatocellular carcinoma. Nat Immunol. 2015;16:1235-44 pubmed 出版商
  954. Barbarov Y, Timaner M, Alishekevitz D, Hai T, Yokoyama K, Shaked Y, et al. Host JDP2 expression in the bone marrow contributes to metastatic spread. Oncotarget. 2015;6:37737-49 pubmed 出版商
  955. Gallego Colon E, Sampson R, Sattler S, Schneider M, Rosenthal N, Tonkin J. Cardiac-Restricted IGF-1Ea Overexpression Reduces the Early Accumulation of Inflammatory Myeloid Cells and Mediates Expression of Extracellular Matrix Remodelling Genes after Myocardial Infarction. Mediators Inflamm. 2015;2015:484357 pubmed 出版商
  956. Alam M, Gaida M, Bergmann F, Lasitschka F, Giese T, Giese N, et al. Selective inhibition of the p38 alternative activation pathway in infiltrating T cells inhibits pancreatic cancer progression. Nat Med. 2015;21:1337-43 pubmed 出版商
  957. Trierweiler C, Hockenjos B, Zatloukal K, Thimme R, Blum H, Wagner E, et al. The transcription factor c-JUN/AP-1 promotes HBV-related liver tumorigenesis in mice. Cell Death Differ. 2016;23:576-82 pubmed 出版商
  958. Black L, Srivastava R, Schoeb T, Moore R, Barnes S, KABAROWSKI J. Cholesterol-Independent Suppression of Lymphocyte Activation, Autoimmunity, and Glomerulonephritis by Apolipoprotein A-I in Normocholesterolemic Lupus-Prone Mice. J Immunol. 2015;195:4685-98 pubmed 出版商
  959. Stasulli N, Eichelberger K, Price P, Pechous R, Montgomery S, Parker J, et al. Spatially distinct neutrophil responses within the inflammatory lesions of pneumonic plague. MBio. 2015;6:e01530-15 pubmed 出版商
  960. Sinadinos A, Young C, Al Khalidi R, Teti A, Kalinski P, Mohamad S, et al. P2RX7 purinoceptor: a therapeutic target for ameliorating the symptoms of duchenne muscular dystrophy. PLoS Med. 2015;12:e1001888 pubmed 出版商
  961. Varney M, Niederkorn M, Konno H, Matsumura T, Gohda J, Yoshida N, et al. Loss of Tifab, a del(5q) MDS gene, alters hematopoiesis through derepression of Toll-like receptor-TRAF6 signaling. J Exp Med. 2015;212:1967-85 pubmed 出版商
  962. Alvarez S, Diaz M, Flach J, Rodriguez Acebes S, López Contreras A, Martinez D, et al. Replication stress caused by low MCM expression limits fetal erythropoiesis and hematopoietic stem cell functionality. Nat Commun. 2015;6:8548 pubmed 出版商
  963. Matthews G, Mehdipour P, Cluse L, Falkenberg K, Wang E, Roth M, et al. Functional-genetic dissection of HDAC dependencies in mouse lymphoid and myeloid malignancies. Blood. 2015;126:2392-403 pubmed 出版商
  964. Abboud D, Daubeuf F, Do Q, Utard V, Villa P, Haiech J, et al. A strategy to discover decoy chemokine ligands with an anti-inflammatory activity. Sci Rep. 2015;5:14746 pubmed 出版商
  965. Phinney D, Di Giuseppe M, Njah J, Sala E, Shiva S, St Croix C, et al. Mesenchymal stem cells use extracellular vesicles to outsource mitophagy and shuttle microRNAs. Nat Commun. 2015;6:8472 pubmed 出版商
  966. Jones D, Wilmore J, Allman D. Cellular Dynamics of Memory B Cell Populations: IgM+ and IgG+ Memory B Cells Persist Indefinitely as Quiescent Cells. J Immunol. 2015;195:4753-9 pubmed 出版商
  967. Patel M, Jacobson B, Ji Y, Drees J, Tang S, Xiong K, et al. Vesicular stomatitis virus expressing interferon-β is oncolytic and promotes antitumor immune responses in a syngeneic murine model of non-small cell lung cancer. Oncotarget. 2015;6:33165-77 pubmed 出版商
  968. Vlachou K, Mintzas K, Glymenaki M, Ioannou M, Papadaki G, Bertsias G, et al. Elimination of Granulocytic Myeloid-Derived Suppressor Cells in Lupus-Prone Mice Linked to Reactive Oxygen Species-Dependent Extracellular Trap Formation. Arthritis Rheumatol. 2016;68:449-61 pubmed 出版商
  969. Liu L, Cheung T, Charville G, Rando T. Isolation of skeletal muscle stem cells by fluorescence-activated cell sorting. Nat Protoc. 2015;10:1612-24 pubmed 出版商
  970. Aparicio Domingo P, Romera Hernandez M, Karrich J, Cornelissen F, Papazian N, Lindenbergh Kortleve D, et al. Type 3 innate lymphoid cells maintain intestinal epithelial stem cells after tissue damage. J Exp Med. 2015;212:1783-91 pubmed 出版商
  971. Skrzypek K, Kusienicka A, Szewczyk B, Adamus T, Lukasiewicz E, Miekus K, et al. Constitutive activation of MET signaling impairs myogenic differentiation of rhabdomyosarcoma and promotes its development and progression. Oncotarget. 2015;6:31378-98 pubmed 出版商
  972. Brasseit J, Althaus Steiner E, Faderl M, Dickgreber N, Saurer L, Genitsch V, et al. CD4 T cells are required for both development and maintenance of disease in a new mouse model of reversible colitis. Mucosal Immunol. 2016;9:689-701 pubmed 出版商
  973. Hanot Mambres D, Machelart A, Vanderwinden J, De Trez C, Ryffel B, Letesson J, et al. In Situ Characterization of Splenic Brucella melitensis Reservoir Cells during the Chronic Phase of Infection in Susceptible Mice. PLoS ONE. 2015;10:e0137835 pubmed 出版商
  974. Oltolina F, Zamperone A, Colangelo D, Gregoletto L, Reano S, Pietronave S, et al. Human Cardiac Progenitor Spheroids Exhibit Enhanced Engraftment Potential. PLoS ONE. 2015;10:e0137999 pubmed 出版商
  975. Rathert P, Roth M, Neumann T, Muerdter F, Roe J, Muhar M, et al. Transcriptional plasticity promotes primary and acquired resistance to BET inhibition. Nature. 2015;525:543-547 pubmed 出版商
  976. Fong C, Gilan O, Lam E, Rubin A, Ftouni S, Tyler D, et al. BET inhibitor resistance emerges from leukaemia stem cells. Nature. 2015;525:538-42 pubmed 出版商
  977. Shirasuna K, Karasawa T, Usui F, Kobayashi M, Komada T, Kimura H, et al. NLRP3 Deficiency Improves Angiotensin II-Induced Hypertension But Not Fetal Growth Restriction During Pregnancy. Endocrinology. 2015;156:4281-92 pubmed 出版商
  978. Guo L, Huang Y, Chen X, Hu Li J, Urban J, Paul W. Innate immunological function of TH2 cells in vivo. Nat Immunol. 2015;16:1051-9 pubmed 出版商
  979. Fu Y, Huang C, Xu X, Gu H, Ye Y, Jiang C, et al. Direct reprogramming of mouse fibroblasts into cardiomyocytes with chemical cocktails. Cell Res. 2015;25:1013-24 pubmed 出版商
  980. Crosby E, Clark M, Novais F, Wherry E, Scott P. Lymphocytic Choriomeningitis Virus Expands a Population of NKG2D+CD8+ T Cells That Exacerbates Disease in Mice Coinfected with Leishmania major. J Immunol. 2015;195:3301-10 pubmed 出版商
  981. Merches K, Khairnar V, Knuschke T, Shaabani N, Honke N, Duhan V, et al. Virus-Induced Type I Interferon Deteriorates Control of Systemic Pseudomonas Aeruginosa Infection. Cell Physiol Biochem. 2015;36:2379-92 pubmed 出版商
  982. Eichin D, Laurila J, Jalkanen S, Salmi M. CD73 Activity is Dispensable for the Polarization of M2 Macrophages. PLoS ONE. 2015;10:e0134721 pubmed 出版商
  983. Ngiow S, Young A, Jacquelot N, Yamazaki T, Enot D, Zitvogel L, et al. A Threshold Level of Intratumor CD8+ T-cell PD1 Expression Dictates Therapeutic Response to Anti-PD1. Cancer Res. 2015;75:3800-11 pubmed 出版商
  984. Zhang W, Zheng X, Du L, Sun J, Shen Z, Shi C, et al. High salt primes a specific activation state of macrophages, M(Na). Cell Res. 2015;25:893-910 pubmed 出版商
  985. Fujimura N, Xu B, Dalman J, Deng H, Aoyama K, Dalman R. CCR2 inhibition sequesters multiple subsets of leukocytes in the bone marrow. Sci Rep. 2015;5:11664 pubmed 出版商
  986. Ermert D, Shaughnessy J, Joeris T, Kaplan J, Pang C, Kurt Jones E, et al. Virulence of Group A Streptococci Is Enhanced by Human Complement Inhibitors. PLoS Pathog. 2015;11:e1005043 pubmed 出版商
  987. ELDREDGE L, Treuting P, MANICONE A, Ziegler S, Parks W, McGuire J. CD11b(+) Mononuclear Cells Mitigate Hyperoxia-Induced Lung Injury in Neonatal Mice. Am J Respir Cell Mol Biol. 2016;54:273-83 pubmed 出版商
  988. Kratochvill F, Gratz N, Qualls J, Van De Velde L, Chi H, Kovarik P, et al. Tristetraprolin Limits Inflammatory Cytokine Production in Tumor-Associated Macrophages in an mRNA Decay-Independent Manner. Cancer Res. 2015;75:3054-64 pubmed 出版商
  989. Han H, Yan P, Chen L, Luo C, Gao H, Deng Q, et al. Flaxseed Oil Containing α -Linolenic Acid Ester of Plant Sterol Improved Atherosclerosis in ApoE Deficient Mice. Oxid Med Cell Longev. 2015;2015:958217 pubmed 出版商
  990. Lowe K, Navarro Núñez L, Bénézech C, Nayar S, Kingston B, Nieswandt B, et al. The expression of mouse CLEC-2 on leucocyte subsets varies according to their anatomical location and inflammatory state. Eur J Immunol. 2015;45:2484-93 pubmed 出版商
  991. Deng B, Deng W, Xiao P, Zeng K, Zhang S, Zhang H, et al. Nonadherent culture method downregulates stem cell antigen-1 expression in mouse bone marrow mesenchymal stem cells. Exp Ther Med. 2015;10:31-36 pubmed
  992. Ripperger T, Manukjan G, Meyer J, Wolter S, Schambach A, Bohne J, et al. The heteromeric transcription factor GABP activates the ITGAM/CD11b promoter and induces myeloid differentiation. Biochim Biophys Acta. 2015;1849:1145-54 pubmed 出版商
  993. Di Cicco A, Petit V, Chiche A, Bresson L, Romagnoli M, Orian Rousseau V, et al. Paracrine Met signaling triggers epithelial-mesenchymal transition in mammary luminal progenitors, affecting their fate. elife. 2015;4: pubmed 出版商
  994. Hiemstra I, Vrijland K, Hogenboom M, Bouma G, Kraal G, den Haan J. Intestinal epithelial cell transported TLR2 ligand stimulates Ly6C⁺ monocyte differentiation in a G-CSF dependent manner. Immunobiology. 2015;220:1255-65 pubmed 出版商
  995. Kim M, Taparowsky E, Kim C. Retinoic Acid Differentially Regulates the Migration of Innate Lymphoid Cell Subsets to the Gut. Immunity. 2015;43:107-19 pubmed 出版商
  996. Herz J, Johnson K, McGavern D. Therapeutic antiviral T cells noncytopathically clear persistently infected microglia after conversion into antigen-presenting cells. J Exp Med. 2015;212:1153-69 pubmed 出版商
  997. Weindel C, Richey L, Bolland S, Mehta A, Kearney J, Huber B. B cell autophagy mediates TLR7-dependent autoimmunity and inflammation. Autophagy. 2015;11:1010-24 pubmed 出版商
  998. Mikucki M, Fisher D, Matsuzaki J, Skitzki J, Gaulin N, Muhitch J, et al. Non-redundant requirement for CXCR3 signalling during tumoricidal T-cell trafficking across tumour vascular checkpoints. Nat Commun. 2015;6:7458 pubmed 出版商
  999. Singh N, Kotla S, Dyukova E, Traylor J, Orr A, Chernoff J, et al. Disruption of p21-activated kinase 1 gene diminishes atherosclerosis in apolipoprotein E-deficient mice. Nat Commun. 2015;6:7450 pubmed 出版商
  1000. Zhang J, Li L, Baldwin A, Friedman A, Paz Priel I. Loss of IKKβ but Not NF-κB p65 Skews Differentiation towards Myeloid over Erythroid Commitment and Increases Myeloid Progenitor Self-Renewal and Functional Long-Term Hematopoietic Stem Cells. PLoS ONE. 2015;10:e0130441 pubmed 出版商
  1001. Onishi S, Adnan E, Ishizaki J, Miyazaki T, Tanaka Y, Matsumoto T, et al. Novel Autoantigens Associated with Lupus Nephritis. PLoS ONE. 2015;10:e0126564 pubmed 出版商
  1002. Joshi P, Waterhouse P, Kannan N, Narala S, Fang H, Di Grappa M, et al. RANK Signaling Amplifies WNT-Responsive Mammary Progenitors through R-SPONDIN1. Stem Cell Reports. 2015;5:31-44 pubmed 出版商
  1003. Tacke R, Hilgendorf I, Garner H, Waterborg C, Park K, Nowyhed H, et al. The transcription factor NR4A1 is essential for the development of a novel macrophage subset in the thymus. Sci Rep. 2015;5:10055 pubmed 出版商
  1004. Xu G, Wu H, Zhang J, Li D, Wang Y, Wang Y, et al. Metformin ameliorates ionizing irradiation-induced long-term hematopoietic stem cell injury in mice. Free Radic Biol Med. 2015;87:15-25 pubmed 出版商
  1005. Charmsaz S, Beckett K, Smith F, Bruedigam C, Moore A, Al Ejeh F, et al. EphA2 Is a Therapy Target in EphA2-Positive Leukemias but Is Not Essential for Normal Hematopoiesis or Leukemia. PLoS ONE. 2015;10:e0130692 pubmed 出版商
  1006. Conde P, Rodriguez M, van der Touw W, Jimenez A, Burns M, Miller J, et al. DC-SIGN(+) Macrophages Control the Induction of Transplantation Tolerance. Immunity. 2015;42:1143-58 pubmed 出版商
  1007. Chang D, Moniz R, Xu Z, Sun J, Signoretti S, Zhu Q, et al. Human anti-CAIX antibodies mediate immune cell inhibition of renal cell carcinoma in vitro and in a humanized mouse model in vivo. Mol Cancer. 2015;14:119 pubmed 出版商
  1008. Kamachi F, Isshiki T, Harada N, Akiba H, Miyake S. ICOS promotes group 2 innate lymphoid cell activation in lungs. Biochem Biophys Res Commun. 2015;463:739-45 pubmed 出版商
  1009. Koronyo Y, Salumbides B, Sheyn J, Pelissier L, Li S, Ljubimov V, et al. Therapeutic effects of glatiramer acetate and grafted CD115⁺ monocytes in a mouse model of Alzheimer's disease. Brain. 2015;138:2399-422 pubmed 出版商
  1010. Imai Y, Ayithan N, Wu X, Yuan Y, Wang L, Hwang S. Cutting Edge: PD-1 Regulates Imiquimod-Induced Psoriasiform Dermatitis through Inhibition of IL-17A Expression by Innate γδ-Low T Cells. J Immunol. 2015;195:421-5 pubmed 出版商
  1011. Durrans A, Gao D, Gupta R, Fischer K, Choi H, El Rayes T, et al. Identification of Reprogrammed Myeloid Cell Transcriptomes in NSCLC. PLoS ONE. 2015;10:e0129123 pubmed 出版商
  1012. Castiglioni A, Corna G, Rigamonti E, Basso V, Vezzoli M, Monno A, et al. FOXP3+ T Cells Recruited to Sites of Sterile Skeletal Muscle Injury Regulate the Fate of Satellite Cells and Guide Effective Tissue Regeneration. PLoS ONE. 2015;10:e0128094 pubmed 出版商
  1013. Holzapfel B, Hutmacher D, Nowlan B, Barbier V, Thibaudeau L, Theodoropoulos C, et al. Tissue engineered humanized bone supports human hematopoiesis in vivo. Biomaterials. 2015;61:103-14 pubmed 出版商
  1014. Wang H, Hong L, Huang J, Jiang Q, Tao R, Tan C, et al. P2RX7 sensitizes Mac-1/ICAM-1-dependent leukocyte-endothelial adhesion and promotes neurovascular injury during septic encephalopathy. Cell Res. 2015;25:674-90 pubmed 出版商
  1015. Liang X, Ding Y, Zhang Y, Chai Y, He J, Chiu S, et al. Activation of NRG1-ERBB4 signaling potentiates mesenchymal stem cell-mediated myocardial repairs following myocardial infarction. Cell Death Dis. 2015;6:e1765 pubmed 出版商
  1016. Teo T, Her Z, Tan J, Lum F, Lee W, Chan Y, et al. Caribbean and La Réunion Chikungunya Virus Isolates Differ in Their Capacity To Induce Proinflammatory Th1 and NK Cell Responses and Acute Joint Pathology. J Virol. 2015;89:7955-69 pubmed 出版商
  1017. Jacque E, Schweighoffer E, Tybulewicz V, Ley S. BAFF activation of the ERK5 MAP kinase pathway regulates B cell survival. J Exp Med. 2015;212:883-92 pubmed 出版商
  1018. Shankman L, Gomez D, Cherepanova O, Salmon M, Alencar G, Haskins R, et al. KLF4-dependent phenotypic modulation of smooth muscle cells has a key role in atherosclerotic plaque pathogenesis. Nat Med. 2015;21:628-37 pubmed 出版商
  1019. Xue J, Sharma V, Hsieh M, Chawla A, Murali R, Pandol S, et al. Alternatively activated macrophages promote pancreatic fibrosis in chronic pancreatitis. Nat Commun. 2015;6:7158 pubmed 出版商
  1020. Yang L, Carrillo M, Wu Y, DiAngelo S, Silveyra P, Umstead T, et al. SP-R210 (Myo18A) Isoforms as Intrinsic Modulators of Macrophage Priming and Activation. PLoS ONE. 2015;10:e0126576 pubmed 出版商
  1021. Doni A, Musso T, Morone D, Bastone A, Zambelli V, Sironi M, et al. An acidic microenvironment sets the humoral pattern recognition molecule PTX3 in a tissue repair mode. J Exp Med. 2015;212:905-25 pubmed 出版商
  1022. Liechtenstein T, Perez Janices N, Blanco Luquin I, Goyvaerts C, Schwarze J, Dufait I, et al. Anti-melanoma vaccines engineered to simultaneously modulate cytokine priming and silence PD-L1 characterized using ex vivo myeloid-derived suppressor cells as a readout of therapeutic efficacy. Oncoimmunology. 2014;3:e945378 pubmed
  1023. Berent Maoz B, Montecino Rodriguez E, Fice M, Casero D, Seet C, Crooks G, et al. The expansion of thymopoiesis in neonatal mice is dependent on expression of high mobility group a 2 protein (Hmga2). PLoS ONE. 2015;10:e0125414 pubmed 出版商
  1024. Carmi Y, Spitzer M, Linde I, Burt B, Prestwood T, Perlman N, et al. Allogeneic IgG combined with dendritic cell stimuli induce antitumour T-cell immunity. Nature. 2015;521:99-104 pubmed 出版商
  1025. Wang E, Kawaoka S, Roe J, Shi J, Hohmann A, Xu Y, et al. The transcriptional cofactor TRIM33 prevents apoptosis in B lymphoblastic leukemia by deactivating a single enhancer. elife. 2015;4:e06377 pubmed 出版商
  1026. Li X, Maretzky T, Weskamp G, Monette S, Qing X, Issuree P, et al. iRhoms 1 and 2 are essential upstream regulators of ADAM17-dependent EGFR signaling. Proc Natl Acad Sci U S A. 2015;112:6080-5 pubmed 出版商
  1027. Moguche A, Shafiani S, Clemons C, Larson R, Dinh C, Higdon L, et al. ICOS and Bcl6-dependent pathways maintain a CD4 T cell population with memory-like properties during tuberculosis. J Exp Med. 2015;212:715-28 pubmed 出版商
  1028. Hegde V, Singh U, Nagarkatti P, Nagarkatti M. Critical Role of Mast Cells and Peroxisome Proliferator-Activated Receptor γ in the Induction of Myeloid-Derived Suppressor Cells by Marijuana Cannabidiol In Vivo. J Immunol. 2015;194:5211-22 pubmed 出版商
  1029. Dahlgren M, Gustafsson Hedberg T, Livingston M, Cucak H, Alsén S, Yrlid U, et al. T follicular helper, but not Th1, cell differentiation in the absence of conventional dendritic cells. J Immunol. 2015;194:5187-99 pubmed 出版商
  1030. Tabariès S, Ouellet V, Hsu B, Annis M, Rose A, Meunier L, et al. Granulocytic immune infiltrates are essential for the efficient formation of breast cancer liver metastases. Breast Cancer Res. 2015;17:45 pubmed 出版商
  1031. Kitur K, Parker D, Nieto P, Ahn D, Cohen T, Chung S, et al. Toxin-induced necroptosis is a major mechanism of Staphylococcus aureus lung damage. PLoS Pathog. 2015;11:e1004820 pubmed 出版商
  1032. Crawford G, Boldison J, Copland D, Adamson P, Gale D, Brandt M, et al. The role of lipoprotein-associated phospholipase A2 in a murine model of experimental autoimmune uveoretinitis. PLoS ONE. 2015;10:e0122093 pubmed 出版商
  1033. Huang Y, Lo P, Yen C, Nigrovic P, Chao W, Wang W, et al. Redox Regulation of Pro-IL-1β Processing May Contribute to the Increased Severity of Serum-Induced Arthritis in NOX2-Deficient Mice. Antioxid Redox Signal. 2015;23:973-84 pubmed 出版商
  1034. Wan W, Liu Q, Lionakis M, Marino A, Anderson S, Swamydas M, et al. Atypical chemokine receptor 1 deficiency reduces atherogenesis in ApoE-knockout mice. Cardiovasc Res. 2015;106:478-87 pubmed 出版商
  1035. Iwai H, Funatogawa K, Matsumura K, Kato Miyazawa M, Kirikae F, Kiga K, et al. MicroRNA-155 knockout mice are susceptible to Mycobacterium tuberculosis infection. Tuberculosis (Edinb). 2015;95:246-50 pubmed 出版商
  1036. Bao M, Cai Z, Zhang X, Li L, Liu X, Wan N, et al. Dickkopf-3 protects against cardiac dysfunction and ventricular remodelling following myocardial infarction. Basic Res Cardiol. 2015;110:25 pubmed 出版商
  1037. Rao T, Marks Bluth J, Sullivan J, Gupta M, Chandrakanthan V, Fitch S, et al. High-level Gpr56 expression is dispensable for the maintenance and function of hematopoietic stem and progenitor cells in mice. Stem Cell Res. 2015;14:307-22 pubmed 出版商
  1038. Lal G, Nakayama Y, Sethi A, Singh A, Burrell B, Kulkarni N, et al. Interleukin-10 From Marginal Zone Precursor B-Cell Subset Is Required for Costimulatory Blockade-Induced Transplantation Tolerance. Transplantation. 2015;99:1817-28 pubmed 出版商
  1039. Steinckwich N, Myers P, Janardhan K, Flagler N, King D, Petranka J, et al. Role of the store-operated calcium entry protein, STIM1, in neutrophil chemotaxis and infiltration into a murine model of psoriasis-inflamed skin. FASEB J. 2015;29:3003-13 pubmed 出版商
  1040. Koh F, Lizama C, Wong P, Hawkins J, Zovein A, Ramalho Santos M. Emergence of hematopoietic stem and progenitor cells involves a Chd1-dependent increase in total nascent transcription. Proc Natl Acad Sci U S A. 2015;112:E1734-43 pubmed 出版商
  1041. Lujan E, Zunder E, Ng Y, Goronzy I, Nolan G, Wernig M. Early reprogramming regulators identified by prospective isolation and mass cytometry. Nature. 2015;521:352-6 pubmed 出版商
  1042. Brunner P, Glitzner E, Reininger B, Klein I, Stary G, Mildner M, et al. CCL7 contributes to the TNF-alpha-dependent inflammation of lesional psoriatic skin. Exp Dermatol. 2015;24:522-8 pubmed 出版商
  1043. Cheah M, Chen J, Sahoo D, Contreras Trujillo H, Volkmer A, Scheeren F, et al. CD14-expressing cancer cells establish the inflammatory and proliferative tumor microenvironment in bladder cancer. Proc Natl Acad Sci U S A. 2015;112:4725-30 pubmed 出版商
  1044. Tesio M, Tang Y, Müdder K, Saini M, von Paleske L, Macintyre E, et al. Hematopoietic stem cell quiescence and function are controlled by the CYLD-TRAF2-p38MAPK pathway. J Exp Med. 2015;212:525-38 pubmed 出版商
  1045. Napier R, Norris B, Swimm A, Giver C, Harris W, Laval J, et al. Low doses of imatinib induce myelopoiesis and enhance host anti-microbial immunity. PLoS Pathog. 2015;11:e1004770 pubmed 出版商
  1046. Moalli F, Proulx S, Schwendener R, Detmar M, Schlapbach C, Stein J. Intravital and whole-organ imaging reveals capture of melanoma-derived antigen by lymph node subcapsular macrophages leading to widespread deposition on follicular dendritic cells. Front Immunol. 2015;6:114 pubmed 出版商
  1047. Dal Secco D, Wang J, Zeng Z, Kolaczkowska E, Wong C, Petri B, et al. A dynamic spectrum of monocytes arising from the in situ reprogramming of CCR2+ monocytes at a site of sterile injury. J Exp Med. 2015;212:447-56 pubmed 出版商
  1048. Povinelli B, Kokolus K, Eng J, Dougher C, Curtin L, Capitano M, et al. Standard sub-thermoneutral caging temperature influences radiosensitivity of hematopoietic stem and progenitor cells. PLoS ONE. 2015;10:e0120078 pubmed 出版商
  1049. Koh H, Chang C, Jeon S, Yoon H, Ahn Y, Kim H, et al. The HIF-1/glial TIM-3 axis controls inflammation-associated brain damage under hypoxia. Nat Commun. 2015;6:6340 pubmed 出版商
  1050. Hu Lieskovan S, Mok S, Homet Moreno B, Tsoi J, Robert L, Goedert L, et al. Improved antitumor activity of immunotherapy with BRAF and MEK inhibitors in BRAF(V600E) melanoma. Sci Transl Med. 2015;7:279ra41 pubmed 出版商
  1051. Brulhart Meynet M, Braunersreuther V, Brinck J, Montecucco F, Prost J, Thomas A, et al. Improving reconstituted HDL composition for efficient post-ischemic reduction of ischemia reperfusion injury. PLoS ONE. 2015;10:e0119664 pubmed 出版商
  1052. Liu B, Lee J, Chen C, Hershey G, Wang Y. Collaborative interactions between type 2 innate lymphoid cells and antigen-specific CD4+ Th2 cells exacerbate murine allergic airway diseases with prominent eosinophilia. J Immunol. 2015;194:3583-93 pubmed 出版商
  1053. Bretscher P, Egger J, Shamshiev A, Trötzmüller M, Köfeler H, Carreira E, et al. Phospholipid oxidation generates potent anti-inflammatory lipid mediators that mimic structurally related pro-resolving eicosanoids by activating Nrf2. EMBO Mol Med. 2015;7:593-607 pubmed 出版商
  1054. Wiesner D, Specht C, Lee C, Smith K, Mukaremera L, Lee S, et al. Chitin recognition via chitotriosidase promotes pathologic type-2 helper T cell responses to cryptococcal infection. PLoS Pathog. 2015;11:e1004701 pubmed 出版商
  1055. Boulay A, Mazeraud A, Cisternino S, Saubaméa B, Mailly P, Jourdren L, et al. Immune quiescence of the brain is set by astroglial connexin 43. J Neurosci. 2015;35:4427-39 pubmed 出版商
  1056. Rao E, Zhang Y, Zhu G, Hao J, Persson X, Egilmez N, et al. Deficiency of AMPK in CD8+ T cells suppresses their anti-tumor function by inducing protein phosphatase-mediated cell death. Oncotarget. 2015;6:7944-58 pubmed
  1057. Li C, Cheng P, Liang M, Chen Y, Lu Q, Wang J, et al. MicroRNA-188 regulates age-related switch between osteoblast and adipocyte differentiation. J Clin Invest. 2015;125:1509-22 pubmed 出版商
  1058. Wensveen F, Jelenčić V, Valentić S, Å estan M, Wensveen T, Theurich S, et al. NK cells link obesity-induced adipose stress to inflammation and insulin resistance. Nat Immunol. 2015;16:376-85 pubmed 出版商
  1059. Pechous R, Broberg C, Stasulli N, Miller V, Goldman W. In vivo transcriptional profiling of Yersinia pestis reveals a novel bacterial mediator of pulmonary inflammation. MBio. 2015;6:e02302-14 pubmed 出版商
  1060. Watson N, Schneider K, Massa P. SHP-1-dependent macrophage differentiation exacerbates virus-induced myositis. J Immunol. 2015;194:2796-809 pubmed 出版商
  1061. Gong W, Shou D, Cheng F, Shi J, Ge F, Liu D. Tolerance induced by IL-6 deficient donor heart is significantly involved in myeloid-derived suppressor cells (MDSCs). Transpl Immunol. 2015;32:72-5 pubmed 出版商
  1062. Kessinger C, Kim J, Henke P, Thompson B, McCarthy J, Hara T, et al. Statins improve the resolution of established murine venous thrombosis: reductions in thrombus burden and vein wall scarring. PLoS ONE. 2015;10:e0116621 pubmed 出版商
  1063. Pannu J, Belle J, Forster M, Duerr C, Shen S, Kane L, et al. Ubiquitin specific protease 21 is dispensable for normal development, hematopoiesis and lymphocyte differentiation. PLoS ONE. 2015;10:e0117304 pubmed 出版商
  1064. Drees J, Mertensotto M, Liu G, Panyam J, Leonard A, Augustin L, et al. Attenuated Salmonella enterica Typhimurium reduces tumor burden in an autochthonous breast cancer model. Anticancer Res. 2015;35:843-9 pubmed
  1065. Gong J, Weng D, Eguchi T, Murshid A, Sherman M, Song B, et al. Targeting the hsp70 gene delays mammary tumor initiation and inhibits tumor cell metastasis. Oncogene. 2015;34:5460-71 pubmed 出版商
  1066. Herbst S, Shah A, Mazon Moya M, Marzola V, Jensen B, Reed A, et al. Phagocytosis-dependent activation of a TLR9-BTK-calcineurin-NFAT pathway co-ordinates innate immunity to Aspergillus fumigatus. EMBO Mol Med. 2015;7:240-58 pubmed 出版商
  1067. Hu W, Dooley J, Chung S, Chandramohan D, Cimmino L, Mukherjee S, et al. miR-29a maintains mouse hematopoietic stem cell self-renewal by regulating Dnmt3a. Blood. 2015;125:2206-16 pubmed 出版商
  1068. Shaw A, Pickup M, Chytil A, Aakre M, Owens P, Moses H, et al. TGFβ signaling in myeloid cells regulates mammary carcinoma cell invasion through fibroblast interactions. PLoS ONE. 2015;10:e0117908 pubmed 出版商
  1069. Franckaert D, Schlenner S, Heirman N, Gill J, Skogberg G, Ekwall O, et al. Premature thymic involution is independent of structural plasticity of the thymic stroma. Eur J Immunol. 2015;45:1535-47 pubmed 出版商
  1070. Baillet A, Rehaume L, Benham H, O Meara C, Armitage C, Ruscher R, et al. High Chlamydia Burden Promotes Tumor Necrosis Factor-Dependent Reactive Arthritis in SKG Mice. Arthritis Rheumatol. 2015;67:1535-47 pubmed 出版商
  1071. Peng H, Li C, Kadow S, Henry B, Steinmann J, Becker K, et al. Acid sphingomyelinase inhibition protects mice from lung edema and lethal Staphylococcus aureus sepsis. J Mol Med (Berl). 2015;93:675-89 pubmed 出版商
  1072. Zimmermann M, Aguilera F, Castellucci M, Rossato M, Costa S, Lunardi C, et al. Chromatin remodelling and autocrine TNFα are required for optimal interleukin-6 expression in activated human neutrophils. Nat Commun. 2015;6:6061 pubmed 出版商
  1073. Jing W, Gershan J, Weber J, Tlomak D, McOlash L, Sabatos Peyton C, et al. Combined immune checkpoint protein blockade and low dose whole body irradiation as immunotherapy for myeloma. J Immunother Cancer. 2015;3:2 pubmed 出版商
  1074. Evans E, Jonason A, Bussler H, Torno S, Veeraraghavan J, Reilly C, et al. Antibody Blockade of Semaphorin 4D Promotes Immune Infiltration into Tumor and Enhances Response to Other Immunomodulatory Therapies. Cancer Immunol Res. 2015;3:689-701 pubmed 出版商
  1075. Funakoshi S, Shimizu T, Numata O, Ato M, Melchers F, Ohnishi K. BILL-cadherin/cadherin-17 contributes to the survival of memory B cells. PLoS ONE. 2015;10:e0117566 pubmed 出版商
  1076. Kanayama M, Inoue M, Danzaki K, Hammer G, He Y, Shinohara M. Autophagy enhances NFκB activity in specific tissue macrophages by sequestering A20 to boost antifungal immunity. Nat Commun. 2015;6:5779 pubmed 出版商
  1077. Du J, Shen X, Hu X, Sun B, Guan W, Li S, et al. Wip1-deficient neutrophils significantly promote intestinal ischemia/reperfusion injury in mice. Curr Mol Med. 2015;15:100-8 pubmed
  1078. Bergot A, Monnet N, Le Tran S, Mittal D, Al Kouba J, Steptoe R, et al. HPV16 E7 expression in skin induces TSLP secretion, type 2 ILC infiltration and atopic dermatitis-like lesions. Immunol Cell Biol. 2015;93:540-7 pubmed 出版商
  1079. CismaÅŸiu V, Popescu L. Telocytes transfer extracellular vesicles loaded with microRNAs to stem cells. J Cell Mol Med. 2015;19:351-8 pubmed 出版商
  1080. Sun C, Schattgen S, Pisitkun P, Jorgensen J, Hilterbrand A, Wang L, et al. Evasion of innate cytosolic DNA sensing by a gammaherpesvirus facilitates establishment of latent infection. J Immunol. 2015;194:1819-31 pubmed 出版商
  1081. Ballesteros I, Cuartero M, Moraga A, de la Parra J, Lizasoain I, Moro M. Stereological and flow cytometry characterization of leukocyte subpopulations in models of transient or permanent cerebral ischemia. J Vis Exp. 2014;: pubmed 出版商
  1082. Karsten C, Laumonnier Y, Eurich B, Ender F, Bröker K, Roy S, et al. Monitoring and cell-specific deletion of C5aR1 using a novel floxed GFP-C5aR1 reporter knock-in mouse. J Immunol. 2015;194:1841-55 pubmed 出版商
  1083. Leon Rico D, Fernández García M, Aldea M, Sánchez R, Peces Barba M, Martínez Palacio J, et al. Comparison of haematopoietic stem cell engraftment through the retro-orbital venous sinus and the lateral vein: alternative routes for bone marrow transplantation in mice. Lab Anim. 2015;49:132-41 pubmed 出版商
  1084. Khaled W, Choon Lee S, Stingl J, Chen X, Raza Ali H, Rueda O, et al. BCL11A is a triple-negative breast cancer gene with critical functions in stem and progenitor cells. Nat Commun. 2015;6:5987 pubmed 出版商
  1085. Sullivan B, Teijaro J, de la Torre J, Oldstone M. Early virus-host interactions dictate the course of a persistent infection. PLoS Pathog. 2015;11:e1004588 pubmed 出版商
  1086. Djukic M, Sostmann N, Bertsch T, Mecke M, Nessler S, Manig A, et al. Vitamin D deficiency decreases survival of bacterial meningoencephalitis in mice. J Neuroinflammation. 2015;12:208 pubmed 出版商
  1087. Shrestha S, Yang K, Guy C, Vogel P, Neale G, Chi H. Treg cells require the phosphatase PTEN to restrain TH1 and TFH cell responses. Nat Immunol. 2015;16:178-87 pubmed 出版商
  1088. Krysiak K, Tibbitts J, Shao J, Liu T, Ndonwi M, Walter M. Reduced levels of Hspa9 attenuate Stat5 activation in mouse B cells. Exp Hematol. 2015;43:319-30.e10 pubmed 出版商
  1089. Sakaguchi S, Hombauer M, Hassan H, Tanaka H, Yasmin N, Naoe Y, et al. A novel Cd8-cis-regulatory element preferentially directs expression in CD44hiCD62L+ CD8+ T cells and in CD8αα+ dendritic cells. J Leukoc Biol. 2015;97:635-44 pubmed 出版商
  1090. Pérez de Puig I, Miró Mur F, Ferrer Ferrer M, Gelpi E, Pedragosa J, Justicia C, et al. Neutrophil recruitment to the brain in mouse and human ischemic stroke. Acta Neuropathol. 2015;129:239-57 pubmed 出版商
  1091. Su X, Zhang L, Ye J, Yang L, Li Y, Wang Y. Bone marrow mesenchymal stem cells suppress ascitogenous hepatoma progression in BALB/c mouse through reducing myeloid-derived suppressor cells. Biomed Mater Eng. 2015;25:167-77 pubmed 出版商
  1092. Skripuletz T, Manzel A, Gropengießer K, Schäfer N, Gudi V, Singh V, et al. Pivotal role of choline metabolites in remyelination. Brain. 2015;138:398-413 pubmed 出版商
  1093. Karamitros D, Patmanidi A, Kotantaki P, Potocnik A, Bähr Ivacevic T, Benes V, et al. Geminin deletion increases the number of fetal hematopoietic stem cells by affecting the expression of key transcription factors. Development. 2015;142:70-81 pubmed 出版商
  1094. Evrard M, Chong S, Devi S, Chew W, Lee B, Poidinger M, et al. Visualization of bone marrow monocyte mobilization using Cx3cr1gfp/+Flt3L-/- reporter mouse by multiphoton intravital microscopy. J Leukoc Biol. 2015;97:611-9 pubmed 出版商
  1095. Nacer A, Movila A, Sohet F, Girgis N, Gundra U, Loke P, et al. Experimental cerebral malaria pathogenesis--hemodynamics at the blood brain barrier. PLoS Pathog. 2014;10:e1004528 pubmed 出版商
  1096. Naik A, Hawwari A, Krangel M. Specification of Vδ and Vα usage by Tcra/Tcrd locus V gene segment promoters. J Immunol. 2015;194:790-4 pubmed 出版商
  1097. Fontana M, Baccarella A, Pancholi N, Pufall M, Herbert D, Kim C. JUNB is a key transcriptional modulator of macrophage activation. J Immunol. 2015;194:177-86 pubmed 出版商
  1098. Her Z, Teng T, Tan J, Teo T, Kam Y, Lum F, et al. Loss of TLR3 aggravates CHIKV replication and pathology due to an altered virus-specific neutralizing antibody response. EMBO Mol Med. 2015;7:24-41 pubmed 出版商
  1099. Vela Ramirez J, Goodman J, Boggiatto P, Roychoudhury R, Pohl N, Hostetter J, et al. Safety and biocompatibility of carbohydrate-functionalized polyanhydride nanoparticles. AAPS J. 2015;17:256-67 pubmed 出版商
  1100. Schliehe C, Flynn E, Vilagos B, Richson U, Swaminanthan S, Bosnjak B, et al. The methyltransferase Setdb2 mediates virus-induced susceptibility to bacterial superinfection. Nat Immunol. 2015;16:67-74 pubmed 出版商
  1101. van Blijswijk J, Schraml B, Rogers N, Whitney P, Zelenay S, Acton S, et al. Altered lymph node composition in diphtheria toxin receptor-based mouse models to ablate dendritic cells. J Immunol. 2015;194:307-15 pubmed 出版商
  1102. Svahn S, Grahnemo L, Pálsdóttir V, Nookaew I, Wendt K, Gabrielsson B, et al. Dietary polyunsaturated fatty acids increase survival and decrease bacterial load during septic Staphylococcus aureus infection and improve neutrophil function in mice. Infect Immun. 2015;83:514-21 pubmed 出版商
  1103. Lieber S, Scheer F, Finkernagel F, Meissner W, Giehl G, Brendel C, et al. The inverse agonist DG172 triggers a PPARβ/δ-independent myeloid lineage shift and promotes GM-CSF/IL-4-induced dendritic cell differentiation. Mol Pharmacol. 2015;87:162-73 pubmed 出版商
  1104. Barnes M, McMullen M, Roychowdhury S, Madhun N, Niese K, Olman M, et al. Macrophage migration inhibitory factor is required for recruitment of scar-associated macrophages during liver fibrosis. J Leukoc Biol. 2015;97:161-9 pubmed 出版商
  1105. Plosa E, Young L, Gulleman P, Polosukhin V, Zaynagetdinov R, Benjamin J, et al. Epithelial β1 integrin is required for lung branching morphogenesis and alveolarization. Development. 2014;141:4751-62 pubmed 出版商
  1106. Lee J, Dang X, Borboa A, Coimbra R, Baird A, Eliceiri B. Thrombin-processed Ecrg4 recruits myeloid cells and induces antitumorigenic inflammation. Neuro Oncol. 2015;17:685-96 pubmed 出版商
  1107. Simpson L, Patel S, Bhakta N, Choy D, Brightbill H, Ren X, et al. A microRNA upregulated in asthma airway T cells promotes TH2 cytokine production. Nat Immunol. 2014;15:1162-70 pubmed 出版商
  1108. Lim A, Shin K, Zhao C, Kawano S, Beachy P. Spatially restricted Hedgehog signalling regulates HGF-induced branching of the adult prostate. Nat Cell Biol. 2014;16:1135-45 pubmed 出版商
  1109. Fu C, Odegaard J, Hsieh M. Macrophages are required for host survival in experimental urogenital schistosomiasis. FASEB J. 2015;29:193-207 pubmed 出版商
  1110. Behler F, Maus R, Bohling J, Knippenberg S, Kirchhof G, Nagata M, et al. Macrophage-inducible C-type lectin Mincle-expressing dendritic cells contribute to control of splenic Mycobacterium bovis BCG infection in mice. Infect Immun. 2015;83:184-96 pubmed 出版商
  1111. Sakamoto H, Takeda N, Arai F, Hosokawa K, García P, Suda T, et al. Determining c-Myb protein levels can isolate functional hematopoietic stem cell subtypes. Stem Cells. 2015;33:479-90 pubmed 出版商
  1112. Morales D, Monte K, Sun L, Struckhoff J, Agapov E, Holtzman M, et al. Novel mode of ISG15-mediated protection against influenza A virus and Sendai virus in mice. J Virol. 2015;89:337-49 pubmed 出版商
  1113. McDonnell A, Lesterhuis W, Khong A, Nowak A, Lake R, Currie A, et al. Tumor-infiltrating dendritic cells exhibit defective cross-presentation of tumor antigens, but is reversed by chemotherapy. Eur J Immunol. 2015;45:49-59 pubmed 出版商
  1114. Guttman O, Yossef R, Freixo Lima G, Rider P, Porgador A, Lewis E. α1-Antitrypsin modifies general NK cell interactions with dendritic cells and specific interactions with islet β-cells in favor of protection from autoimmune diabetes. Immunology. 2014;: pubmed 出版商
  1115. Goren I, Pfeilschifter J, Frank S. Uptake of neutrophil-derived Ym1 protein distinguishes wound macrophages in the absence of interleukin-4 signaling in murine wound healing. Am J Pathol. 2014;184:3249-61 pubmed 出版商
  1116. Xia H, Ren X, Bolte C, Ustiyan V, Zhang Y, Shah T, et al. Foxm1 regulates resolution of hyperoxic lung injury in newborns. Am J Respir Cell Mol Biol. 2015;52:611-21 pubmed 出版商
  1117. Tugues S, Roche F, Noguer O, Orlova A, Bhoi S, Padhan N, et al. Histidine-rich glycoprotein uptake and turnover is mediated by mononuclear phagocytes. PLoS ONE. 2014;9:e107483 pubmed 出版商
  1118. ZasÅ‚ona Z, Przybranowski S, Wilke C, Van Rooijen N, Teitz Tennenbaum S, Osterholzer J, et al. Resident alveolar macrophages suppress, whereas recruited monocytes promote, allergic lung inflammation in murine models of asthma. J Immunol. 2014;193:4245-53 pubmed 出版商
  1119. Jacque E, Schweighoffer E, Visekruna A, Papoutsopoulou S, Janzen J, Zillwood R, et al. IKK-induced NF-κB1 p105 proteolysis is critical for B cell antibody responses to T cell-dependent antigen. J Exp Med. 2014;211:2085-101 pubmed 出版商
  1120. Cao Y, Slaney C, Bidwell B, Parker B, Johnstone C, Rautela J, et al. BMP4 inhibits breast cancer metastasis by blocking myeloid-derived suppressor cell activity. Cancer Res. 2014;74:5091-102 pubmed 出版商
  1121. Wang W, Kissig M, Rajakumari S, Huang L, Lim H, Won K, et al. Ebf2 is a selective marker of brown and beige adipogenic precursor cells. Proc Natl Acad Sci U S A. 2014;111:14466-71 pubmed 出版商
  1122. Praet J, Santermans E, Reekmans K, De Vocht N, Le Blon D, Hoornaert C, et al. Histological characterization and quantification of cellular events following neural and fibroblast(-like) stem cell grafting in healthy and demyelinated CNS tissue. Methods Mol Biol. 2014;1213:265-83 pubmed 出版商
  1123. Schwartz C, Oeser K, Prazeres da Costa C, Layland L, Voehringer D. T cell-derived IL-4/IL-13 protects mice against fatal Schistosoma mansoni infection independently of basophils. J Immunol. 2014;193:3590-9 pubmed 出版商
  1124. Chen J, Zhao Y, Zhang C, Chen H, Feng J, Chi X, et al. Persistent hepatitis C virus infections and hepatopathological manifestations in immune-competent humanized mice. Cell Res. 2014;24:1050-66 pubmed 出版商
  1125. Cremasco V, Woodruff M, Onder L, Cupovic J, Nieves Bonilla J, Schildberg F, et al. B cell homeostasis and follicle confines are governed by fibroblastic reticular cells. Nat Immunol. 2014;15:973-81 pubmed 出版商
  1126. Sauter K, Pridans C, Sehgal A, Bain C, Scott C, Moffat L, et al. The MacBlue binary transgene (csf1r-gal4VP16/UAS-ECFP) provides a novel marker for visualisation of subsets of monocytes, macrophages and dendritic cells and responsiveness to CSF1 administration. PLoS ONE. 2014;9:e105429 pubmed 出版商
  1127. Zhu Y, Knolhoff B, Meyer M, Nywening T, West B, Luo J, et al. CSF1/CSF1R blockade reprograms tumor-infiltrating macrophages and improves response to T-cell checkpoint immunotherapy in pancreatic cancer models. Cancer Res. 2014;74:5057-69 pubmed 出版商
  1128. Flach J, Bakker S, Mohrin M, Conroy P, Pietras E, Reynaud D, et al. Replication stress is a potent driver of functional decline in ageing haematopoietic stem cells. Nature. 2014;512:198-202 pubmed 出版商
  1129. Pisano F, Heine W, Rosenheinrich M, Schweer J, Nuss A, Dersch P. Influence of PhoP and intra-species variations on virulence of Yersinia pseudotuberculosis during the natural oral infection route. PLoS ONE. 2014;9:e103541 pubmed 出版商
  1130. Kim K, Skora A, Li Z, Liu Q, Tam A, Blosser R, et al. Eradication of metastatic mouse cancers resistant to immune checkpoint blockade by suppression of myeloid-derived cells. Proc Natl Acad Sci U S A. 2014;111:11774-9 pubmed 出版商
  1131. Ostapoff K, Cenik B, Wang M, Ye R, Xu X, Nugent D, et al. Neutralizing murine TGF?R2 promotes a differentiated tumor cell phenotype and inhibits pancreatic cancer metastasis. Cancer Res. 2014;74:4996-5007 pubmed 出版商
  1132. Reeh K, Cardenas K, Bain V, Liu Z, LAURENT M, Manley N, et al. Ectopic TBX1 suppresses thymic epithelial cell differentiation and proliferation during thymus organogenesis. Development. 2014;141:2950-8 pubmed 出版商
  1133. Chung Y, Kim E, Abdel Wahab O. Femoral bone marrow aspiration in live mice. J Vis Exp. 2014;: pubmed 出版商
  1134. Lambertsen K, Østergaard K, Clausen B, Hansen S, Stenvang J, Thorsen S, et al. No effect of ablation of surfactant protein-D on acute cerebral infarction in mice. J Neuroinflammation. 2014;11:123 pubmed 出版商
  1135. Price P, Luckow B, Torres Domínguez L, Brandmüller C, Zorn J, Kirschning C, et al. Chemokine (C-C Motif) receptor 1 is required for efficient recruitment of neutrophils during respiratory infection with modified vaccinia virus Ankara. J Virol. 2014;88:10840-50 pubmed 出版商
  1136. Knoop K, McDonald K, McCrate S, McDole J, Newberry R. Microbial sensing by goblet cells controls immune surveillance of luminal antigens in the colon. Mucosal Immunol. 2015;8:198-210 pubmed 出版商
  1137. Radovanovic I, Leung V, Iliescu A, Bongfen S, Mullick A, Langlais D, et al. Genetic control of susceptibility to Candida albicans in SM/J mice. J Immunol. 2014;193:1290-300 pubmed 出版商
  1138. Ehlken H, Krishna Subramanian S, Ochoa Callejero L, Kondylis V, Nadi N, Straub B, et al. Death receptor-independent FADD signalling triggers hepatitis and hepatocellular carcinoma in mice with liver parenchymal cell-specific NEMO knockout. Cell Death Differ. 2014;21:1721-32 pubmed 出版商
  1139. Collins C, Wang J, Miao H, Bronstein J, Nawer H, Xu T, et al. C/EBP? is an essential collaborator in Hoxa9/Meis1-mediated leukemogenesis. Proc Natl Acad Sci U S A. 2014;111:9899-904 pubmed 出版商
  1140. Madireddi S, Eun S, Lee S, Nemčovičová I, Mehta A, Zajonc D, et al. Galectin-9 controls the therapeutic activity of 4-1BB-targeting antibodies. J Exp Med. 2014;211:1433-48 pubmed 出版商
  1141. Kim C, Pasparakis M. Epidermal p65/NF-?B signalling is essential for skin carcinogenesis. EMBO Mol Med. 2014;6:970-83 pubmed 出版商
  1142. Franklin B, Bossaller L, De Nardo D, Ratter J, Stutz A, Engels G, et al. The adaptor ASC has extracellular and 'prionoid' activities that propagate inflammation. Nat Immunol. 2014;15:727-37 pubmed 出版商
  1143. Zhou Q, Ho A, Schlitzer A, Tang Y, Wong K, Wong F, et al. GM-CSF-licensed CD11b+ lung dendritic cells orchestrate Th2 immunity to Blomia tropicalis. J Immunol. 2014;193:496-509 pubmed 出版商
  1144. Moreno M, Bannerman P, Ma J, Guo F, Miers L, Soulika A, et al. Conditional ablation of astroglial CCL2 suppresses CNS accumulation of M1 macrophages and preserves axons in mice with MOG peptide EAE. J Neurosci. 2014;34:8175-85 pubmed 出版商
  1145. Mise Omata S, Alles N, Fukazawa T, Aoki K, Ohya K, Jimi E, et al. NF-?B RELA-deficient bone marrow macrophages fail to support bone formation and to maintain the hematopoietic niche after lethal irradiation and stem cell transplantation. Int Immunol. 2014;26:607-18 pubmed 出版商
  1146. Weston W, Zayas J, Perez R, George J, Jurecic R. Dynamic equilibrium of heterogeneous and interconvertible multipotent hematopoietic cell subsets. Sci Rep. 2014;4:5199 pubmed 出版商
  1147. Geem D, Medina Contreras O, McBride M, Newberry R, Koni P, Denning T. Specific microbiota-induced intestinal Th17 differentiation requires MHC class II but not GALT and mesenteric lymph nodes. J Immunol. 2014;193:431-8 pubmed 出版商
  1148. Grymula K, Tarnowski M, Piotrowska K, Suszynska M, Mierzejewska K, Borkowska S, et al. Evidence that the population of quiescent bone marrow-residing very small embryonic/epiblast-like stem cells (VSELs) expands in response to neurotoxic treatment. J Cell Mol Med. 2014;18:1797-806 pubmed 出版商
  1149. Ghazaryan S, Sy C, Hu T, An X, Mohandas N, Fu H, et al. Inactivation of Rb and E2f8 synergizes to trigger stressed DNA replication during erythroid terminal differentiation. Mol Cell Biol. 2014;34:2833-47 pubmed 出版商
  1150. Weber G, Chousterman B, Hilgendorf I, Robbins C, Theurl I, Gerhardt L, et al. Pleural innate response activator B cells protect against pneumonia via a GM-CSF-IgM axis. J Exp Med. 2014;211:1243-56 pubmed 出版商
  1151. Wang J, Eguchi K, Matsumoto S, Fujiu K, Komuro I, Nagai R, et al. The ?-3 polyunsaturated fatty acid, eicosapentaenoic acid, attenuates abdominal aortic aneurysm development via suppression of tissue remodeling. PLoS ONE. 2014;9:e96286 pubmed 出版商
  1152. Zhao C, Gillette D, Li X, Zhang Z, Wen H. Nuclear factor E2-related factor-2 (Nrf2) is required for NLRP3 and AIM2 inflammasome activation. J Biol Chem. 2014;289:17020-9 pubmed 出版商
  1153. Morshed M, Hlushchuk R, Simon D, Walls A, Obata Ninomiya K, Karasuyama H, et al. NADPH oxidase-independent formation of extracellular DNA traps by basophils. J Immunol. 2014;192:5314-23 pubmed 出版商
  1154. Meraz I, Hearnden C, Liu X, Yang M, Williams L, Savage D, et al. Multivalent presentation of MPL by porous silicon microparticles favors T helper 1 polarization enhancing the anti-tumor efficacy of doxorubicin nanoliposomes. PLoS ONE. 2014;9:e94703 pubmed 出版商
  1155. Xu Y, Hyun Y, Lim K, Lee H, Cummings R, Gerber S, et al. Optogenetic control of chemokine receptor signal and T-cell migration. Proc Natl Acad Sci U S A. 2014;111:6371-6 pubmed 出版商
  1156. Dupont C, Christian D, Selleck E, Pepper M, Leney Greene M, Harms Pritchard G, et al. Parasite fate and involvement of infected cells in the induction of CD4+ and CD8+ T cell responses to Toxoplasma gondii. PLoS Pathog. 2014;10:e1004047 pubmed 出版商
  1157. Saulep Easton D, Vincent F, Le Page M, Wei A, Ting S, Croce C, et al. Cytokine-driven loss of plasmacytoid dendritic cell function in chronic lymphocytic leukemia. Leukemia. 2014;28:2005-15 pubmed 出版商
  1158. Pilling D, Gomer R. Persistent lung inflammation and fibrosis in serum amyloid P component (APCs-/-) knockout mice. PLoS ONE. 2014;9:e93730 pubmed 出版商
  1159. Sauter K, Pridans C, Sehgal A, Tsai Y, Bradford B, Raza S, et al. Pleiotropic effects of extended blockade of CSF1R signaling in adult mice. J Leukoc Biol. 2014;96:265-74 pubmed 出版商
  1160. Haldar M, Kohyama M, So A, Kc W, Wu X, Briseño C, et al. Heme-mediated SPI-C induction promotes monocyte differentiation into iron-recycling macrophages. Cell. 2014;156:1223-1234 pubmed 出版商
  1161. Martin R, Saleem S, Folgosa L, Zellner H, Damle S, Nguyen G, et al. Mast cell histamine promotes the immunoregulatory activity of myeloid-derived suppressor cells. J Leukoc Biol. 2014;96:151-9 pubmed 出版商
  1162. Magri G, Miyajima M, Bascones S, Mortha A, Puga I, Cassis L, et al. Innate lymphoid cells integrate stromal and immunological signals to enhance antibody production by splenic marginal zone B cells. Nat Immunol. 2014;15:354-364 pubmed 出版商
  1163. Sousa Victor P, Gutarra S, García Prat L, Rodriguez Ubreva J, Ortet L, Ruiz Bonilla V, et al. Geriatric muscle stem cells switch reversible quiescence into senescence. Nature. 2014;506:316-21 pubmed 出版商
  1164. Weckbach L, Gola A, Winkelmann M, Jakob S, Groesser L, Borgolte J, et al. The cytokine midkine supports neutrophil trafficking during acute inflammation by promoting adhesion via ?2 integrins (CD11/CD18). Blood. 2014;123:1887-96 pubmed 出版商
  1165. Weber B, Schuster S, Zysset D, Rihs S, Dickgreber N, Schürch C, et al. TREM-1 deficiency can attenuate disease severity without affecting pathogen clearance. PLoS Pathog. 2014;10:e1003900 pubmed 出版商
  1166. Misumi I, Whitmire J. B cell depletion curtails CD4+ T cell memory and reduces protection against disseminating virus infection. J Immunol. 2014;192:1597-608 pubmed 出版商
  1167. Polesskaya O, Wong C, Lebron L, Chamberlain J, Gelbard H, Goodfellow V, et al. MLK3 regulates fMLP-stimulated neutrophil motility. Mol Immunol. 2014;58:214-22 pubmed 出版商
  1168. Bignon A, Gaudin F, Hemon P, Tharinger H, Mayol K, Walzer T, et al. CCR1 inhibition ameliorates the progression of lupus nephritis in NZB/W mice. J Immunol. 2014;192:886-96 pubmed 出版商
  1169. Driskell R, Lichtenberger B, Hoste E, Kretzschmar K, Simons B, Charalambous M, et al. Distinct fibroblast lineages determine dermal architecture in skin development and repair. Nature. 2013;504:277-281 pubmed 出版商
  1170. Kim H, Lee H, Chang Y, Pichavant M, Shore S, Fitzgerald K, et al. Interleukin-17-producing innate lymphoid cells and the NLRP3 inflammasome facilitate obesity-associated airway hyperreactivity. Nat Med. 2014;20:54-61 pubmed 出版商
  1171. Salem H, Trojanowski B, Fiedler K, Maier H, Schirmbeck R, Wagner M, et al. Long-term IKK2/NF-?B signaling in pancreatic ?-cells induces immune-mediated diabetes. Diabetes. 2014;63:960-75 pubmed 出版商
  1172. Gujar S, Clements D, Dielschneider R, Helson E, Marcato P, Lee P. Gemcitabine enhances the efficacy of reovirus-based oncotherapy through anti-tumour immunological mechanisms. Br J Cancer. 2014;110:83-93 pubmed 出版商
  1173. Gorina R, Lyck R, Vestweber D, Engelhardt B. ?2 integrin-mediated crawling on endothelial ICAM-1 and ICAM-2 is a prerequisite for transcellular neutrophil diapedesis across the inflamed blood-brain barrier. J Immunol. 2014;192:324-37 pubmed 出版商
  1174. Iwata A, Kawashima S, Kobayashi M, Okubo A, Kawashima H, Suto A, et al. Th2-type inflammation instructs inflammatory dendritic cells to induce airway hyperreactivity. Int Immunol. 2014;26:103-14 pubmed 出版商
  1175. Lafkas D, Rodilla V, Huyghe M, Mourao L, Kiaris H, Fre S. Notch3 marks clonogenic mammary luminal progenitor cells in vivo. J Cell Biol. 2013;203:47-56 pubmed 出版商
  1176. Povinelli B, Nemeth M. Wnt5a regulates hematopoietic stem cell proliferation and repopulation through the Ryk receptor. Stem Cells. 2014;32:105-15 pubmed 出版商
  1177. Satpathy A, Briseño C, Lee J, Ng D, Manieri N, Kc W, et al. Notch2-dependent classical dendritic cells orchestrate intestinal immunity to attaching-and-effacing bacterial pathogens. Nat Immunol. 2013;14:937-48 pubmed 出版商
  1178. Pioli P, Dahlem T, Weis J, Weis J. Deletion of Snai2 and Snai3 results in impaired physical development compounded by lymphocyte deficiency. PLoS ONE. 2013;8:e69216 pubmed 出版商
  1179. Conine S, Cross J. MIF deficiency does not alter glucose homeostasis or adipose tissue inflammatory cell infiltrates during diet-induced obesity. Obesity (Silver Spring). 2014;22:418-25 pubmed 出版商
  1180. Christoforou N, Liau B, Chakraborty S, Chellapan M, Bursac N, Leong K. Induced pluripotent stem cell-derived cardiac progenitors differentiate to cardiomyocytes and form biosynthetic tissues. PLoS ONE. 2013;8:e65963 pubmed 出版商
  1181. Stoilova B, Kowenz Leutz E, Scheller M, Leutz A. Lymphoid to myeloid cell trans-differentiation is determined by C/EBP? structure and post-translational modifications. PLoS ONE. 2013;8:e65169 pubmed 出版商
  1182. Redecke V, Wu R, Zhou J, Finkelstein D, Chaturvedi V, High A, et al. Hematopoietic progenitor cell lines with myeloid and lymphoid potential. Nat Methods. 2013;10:795-803 pubmed 出版商
  1183. Ke F, Bouillet P, Kaufmann T, Strasser A, Kerr J, Voss A. Consequences of the combined loss of BOK and BAK or BOK and BAX. Cell Death Dis. 2013;4:e650 pubmed 出版商
  1184. Kim M, Kang S, Park J, Yanagisawa M, Kim C. Short-chain fatty acids activate GPR41 and GPR43 on intestinal epithelial cells to promote inflammatory responses in mice. Gastroenterology. 2013;145:396-406.e1-10 pubmed 出版商
  1185. Martinod K, Demers M, Fuchs T, Wong S, Brill A, Gallant M, et al. Neutrophil histone modification by peptidylarginine deiminase 4 is critical for deep vein thrombosis in mice. Proc Natl Acad Sci U S A. 2013;110:8674-9 pubmed 出版商
  1186. Gerber S, Sedlacek A, Cron K, Murphy S, Frelinger J, Lord E. IFN-γ mediates the antitumor effects of radiation therapy in a murine colon tumor. Am J Pathol. 2013;182:2345-54 pubmed 出版商
  1187. Vink P, Smout W, Driessen Engels L, de Bruin A, Delsing D, Krajnc Franken M, et al. In vivo knockdown of TAK1 accelerates bone marrow proliferation/differentiation and induces systemic inflammation. PLoS ONE. 2013;8:e57348 pubmed 出版商
  1188. Roehrich M, Spicher A, Milano G, Vassalli G. Characterization of cardiac-resident progenitor cells expressing high aldehyde dehydrogenase activity. Biomed Res Int. 2013;2013:503047 pubmed 出版商
  1189. Koning J, Kooij G, de Vries H, Nolte M, Mebius R. Mesenchymal stem cells are mobilized from the bone marrow during inflammation. Front Immunol. 2013;4:49 pubmed 出版商
  1190. Kobayashi A, Donaldson D, Erridge C, Kanaya T, Williams I, Ohno H, et al. The functional maturation of M cells is dramatically reduced in the Peyer's patches of aged mice. Mucosal Immunol. 2013;6:1027-37 pubmed 出版商
  1191. Powell N, Walker A, Stolarczyk E, Canavan J, Gökmen M, Marks E, et al. The transcription factor T-bet regulates intestinal inflammation mediated by interleukin-7 receptor+ innate lymphoid cells. Immunity. 2012;37:674-84 pubmed 出版商
  1192. Syu L, El Zaatari M, Eaton K, Liu Z, Tetarbe M, Keeley T, et al. Transgenic expression of interferon-? in mouse stomach leads to inflammation, metaplasia, and dysplasia. Am J Pathol. 2012;181:2114-25 pubmed 出版商
  1193. Jenkins C, Shevchuk O, Giambra V, Lam S, Carboni J, Gottardis M, et al. IGF signaling contributes to malignant transformation of hematopoietic progenitors by the MLL-AF9 oncoprotein. Exp Hematol. 2012;40:715-723.e6 pubmed 出版商
  1194. Botelho F, Bauer C, Finch D, Nikota J, Zavitz C, Kelly A, et al. IL-1?/IL-1R1 expression in chronic obstructive pulmonary disease and mechanistic relevance to smoke-induced neutrophilia in mice. PLoS ONE. 2011;6:e28457 pubmed 出版商
  1195. McPhee C, Sproule T, Shin D, Bubier J, Schott W, Steinbuck M, et al. MHC class I family proteins retard systemic lupus erythematosus autoimmunity and B cell lymphomagenesis. J Immunol. 2011;187:4695-704 pubmed 出版商
  1196. Krajewska M, You Z, Rong J, Kress C, Huang X, Yang J, et al. Neuronal deletion of caspase 8 protects against brain injury in mouse models of controlled cortical impact and kainic acid-induced excitotoxicity. PLoS ONE. 2011;6:e24341 pubmed 出版商
  1197. Ripich T, Jessberger R. SWAP-70 regulates erythropoiesis by controlling ?4 integrin. Haematologica. 2011;96:1743-52 pubmed 出版商
  1198. Hemmers S, Teijaro J, Arandjelovic S, Mowen K. PAD4-mediated neutrophil extracellular trap formation is not required for immunity against influenza infection. PLoS ONE. 2011;6:e22043 pubmed 出版商
  1199. Qian B, Li J, Zhang H, Kitamura T, Zhang J, Campion L, et al. CCL2 recruits inflammatory monocytes to facilitate breast-tumour metastasis. Nature. 2011;475:222-5 pubmed 出版商
  1200. Tousif S, Singh Y, Prasad D, Sharma P, Van Kaer L, Das G. T cells from Programmed Death-1 deficient mice respond poorly to Mycobacterium tuberculosis infection. PLoS ONE. 2011;6:e19864 pubmed 出版商
  1201. Weishaupt H, Attema J. A Method to Study the Epigenetic Chromatin States of Rare Hematopoietic Stem and Progenitor Cells; MiniChIP-Chip. Biol Proced Online. 2010;12:1-17 pubmed 出版商
  1202. Ludwig A, Otto G, Riento K, Hams E, Fallon P, Nichols B. Flotillin microdomains interact with the cortical cytoskeleton to control uropod formation and neutrophil recruitment. J Cell Biol. 2010;191:771-81 pubmed 出版商
  1203. Uchida Y, Ke B, Freitas M, Ji H, Zhao D, Benjamin E, et al. The emerging role of T cell immunoglobulin mucin-1 in the mechanism of liver ischemia and reperfusion injury in the mouse. Hepatology. 2010;51:1363-72 pubmed 出版商
  1204. Zavitz C, Bauer C, Gaschler G, Fraser K, Strieter R, Hogaboam C, et al. Dysregulated macrophage-inflammatory protein-2 expression drives illness in bacterial superinfection of influenza. J Immunol. 2010;184:2001-13 pubmed 出版商
  1205. Fahl S, Crittenden R, Allman D, Bender T. c-Myb is required for pro-B cell differentiation. J Immunol. 2009;183:5582-92 pubmed 出版商
  1206. Guibal F, Alberich Jorda M, Hirai H, Ebralidze A, Levantini E, Di Ruscio A, et al. Identification of a myeloid committed progenitor as the cancer-initiating cell in acute promyelocytic leukemia. Blood. 2009;114:5415-25 pubmed 出版商
  1207. Zumsteg A, Baeriswyl V, Imaizumi N, Schwendener R, Ruegg C, Christofori G. Myeloid cells contribute to tumor lymphangiogenesis. PLoS ONE. 2009;4:e7067 pubmed 出版商
  1208. Carlow D, Gold M, Ziltener H. Lymphocytes in the peritoneum home to the omentum and are activated by resident dendritic cells. J Immunol. 2009;183:1155-65 pubmed 出版商
  1209. Horman S, Velu C, Chaubey A, Bourdeau T, Zhu J, Paul W, et al. Gfi1 integrates progenitor versus granulocytic transcriptional programming. Blood. 2009;113:5466-75 pubmed 出版商
  1210. Tambuyzer B, Bergwerf I, De Vocht N, Reekmans K, Daans J, Jorens P, et al. Allogeneic stromal cell implantation in brain tissue leads to robust microglial activation. Immunol Cell Biol. 2009;87:267-73 pubmed 出版商
  1211. Kanwar N, Fayyazi A, Backofen B, Nitsche M, Dressel R, von Mollard G. Thymic alterations in mice deficient for the SNARE protein VAMP8/endobrevin. Cell Tissue Res. 2008;334:227-42 pubmed 出版商
  1212. Sheng H, Wang Y, Jin Y, Zhang Q, Zhang Y, Wang L, et al. A critical role of IFNgamma in priming MSC-mediated suppression of T cell proliferation through up-regulation of B7-H1. Cell Res. 2008;18:846-57 pubmed 出版商
  1213. Waskow C, Liu K, Darrasse Jèze G, Guermonprez P, Ginhoux F, Merad M, et al. The receptor tyrosine kinase Flt3 is required for dendritic cell development in peripheral lymphoid tissues. Nat Immunol. 2008;9:676-83 pubmed 出版商
  1214. Culshaw S, Millington O, Brewer J, McInnes I. Murine neutrophils present Class II restricted antigen. Immunol Lett. 2008;118:49-54 pubmed 出版商
  1215. Wanasen N, Xin L, Soong L. Pathogenic role of B cells and antibodies in murine Leishmania amazonensis infection. Int J Parasitol. 2008;38:417-29 pubmed
  1216. Jeannet G, Scheller M, Scarpellino L, Duboux S, Gardiol N, Back J, et al. Long-term, multilineage hematopoiesis occurs in the combined absence of beta-catenin and gamma-catenin. Blood. 2008;111:142-9 pubmed
  1217. Laurie K, Blundell M, Baxendale H, Howe S, Sinclair J, Qasim W, et al. Cell-specific and efficient expression in mouse and human B cells by a novel hybrid immunoglobulin promoter in a lentiviral vector. Gene Ther. 2007;14:1623-31 pubmed
  1218. van der Marel A, Samsom J, Greuter M, van Berkel L, O Toole T, Kraal G, et al. Blockade of IDO inhibits nasal tolerance induction. J Immunol. 2007;179:894-900 pubmed
  1219. Huang B, Zhao J, Shen S, Li H, He K, Shen G, et al. Listeria monocytogenes promotes tumor growth via tumor cell toll-like receptor 2 signaling. Cancer Res. 2007;67:4346-52 pubmed
  1220. Chang S, Wang K, Lu Y, Yang L, Chen W, Lin Y, et al. Characterization of early gamma interferon (IFN-gamma) expression during murine listeriosis: identification of NK1.1+ CD11c+ cells as the primary IFN-gamma-expressing cells. Infect Immun. 2007;75:1167-76 pubmed
  1221. HogenEsch H, Dunham A, Seymour R, Renninger M, Sundberg J. Expression of chitinase-like proteins in the skin of chronic proliferative dermatitis (cpdm/cpdm) mice. Exp Dermatol. 2006;15:808-14 pubmed
  1222. Grisaru D, Pick M, Perry C, Sklan E, Almog R, Goldberg I, et al. Hydrolytic and nonenzymatic functions of acetylcholinesterase comodulate hemopoietic stress responses. J Immunol. 2006;176:27-35 pubmed
  1223. Schneider B, Fine J, Tiidus P. Indices of leukocyte infiltration and muscle recovery after eccentric contraction-induced injury in young and adult male mice. Orthop Nurs. 2005;24:399-405 pubmed
  1224. Gupta R, Karpatkin S, Basch R. Hematopoiesis and stem cell renewal in long-term bone marrow cultures containing catalase. Blood. 2006;107:1837-46 pubmed
  1225. Fan J, Li Y, Vodovotz Y, Billiar T, Wilson M. Hemorrhagic shock-activated neutrophils augment TLR4 signaling-induced TLR2 upregulation in alveolar macrophages: role in hemorrhage-primed lung inflammation. Am J Physiol Lung Cell Mol Physiol. 2006;290:L738-L746 pubmed
  1226. Lu M, Tayu R, Ikawa T, Masuda K, Matsumoto I, Mugishima H, et al. The earliest thymic progenitors in adults are restricted to T, NK, and dendritic cell lineage and have a potential to form more diverse TCRbeta chains than fetal progenitors. J Immunol. 2005;175:5848-56 pubmed
  1227. Ohki Y, Heissig B, Sato Y, Akiyama H, Zhu Z, Hicklin D, et al. Granulocyte colony-stimulating factor promotes neovascularization by releasing vascular endothelial growth factor from neutrophils. FASEB J. 2005;19:2005-7 pubmed
  1228. Iwasaki H, Mizuno S, Mayfield R, Shigematsu H, Arinobu Y, Seed B, et al. Identification of eosinophil lineage-committed progenitors in the murine bone marrow. J Exp Med. 2005;201:1891-7 pubmed
  1229. Nakae S, Suto H, Kakurai M, Sedgwick J, Tsai M, Galli S. Mast cells enhance T cell activation: Importance of mast cell-derived TNF. Proc Natl Acad Sci U S A. 2005;102:6467-72 pubmed
  1230. Eruslanov E, Lyadova I, Kondratieva T, Majorov K, Scheglov I, Orlova M, et al. Neutrophil responses to Mycobacterium tuberculosis infection in genetically susceptible and resistant mice. Infect Immun. 2005;73:1744-53 pubmed
  1231. Noel J, Guo X, Wells Byrum D, Schwemberger S, Caldwell C, Ogle C. Effect of thermal injury on splenic myelopoiesis. Shock. 2005;23:115-22 pubmed
  1232. Mischenko V, Kapina M, Eruslanov E, Kondratieva E, Lyadova I, Young D, et al. Mycobacterial dissemination and cellular responses after 1-lobe restricted tuberculosis infection of genetically susceptible and resistant mice. J Infect Dis. 2004;190:2137-45 pubmed
  1233. Zheng S, Jiang J, Shen H, Chen Y. Reduced apoptosis and ameliorated listeriosis in TRAIL-null mice. J Immunol. 2004;173:5652-8 pubmed
  1234. Prockop S, Petrie H. Regulation of thymus size by competition for stromal niches among early T cell progenitors. J Immunol. 2004;173:1604-11 pubmed
  1235. Smith P, Walsh C, Mangan N, Fallon R, Sayers J, McKenzie A, et al. Schistosoma mansoni worms induce anergy of T cells via selective up-regulation of programmed death ligand 1 on macrophages. J Immunol. 2004;173:1240-8 pubmed
  1236. Seroogy C, Soares L, Ranheim E, Su L, Holness C, Bloom D, et al. The gene related to anergy in lymphocytes, an E3 ubiquitin ligase, is necessary for anergy induction in CD4 T cells. J Immunol. 2004;173:79-85 pubmed
  1237. Yuan Y, Shen H, Franklin D, Scadden D, Cheng T. In vivo self-renewing divisions of haematopoietic stem cells are increased in the absence of the early G1-phase inhibitor, p18INK4C. Nat Cell Biol. 2004;6:436-42 pubmed
  1238. de Haas C, Veldkamp K, Peschel A, Weerkamp F, Van Wamel W, Heezius E, et al. Chemotaxis inhibitory protein of Staphylococcus aureus, a bacterial antiinflammatory agent. J Exp Med. 2004;199:687-95 pubmed
  1239. Morin J, Faideau B, Gagnerault M, Lepault F, Boitard C, Boudaly S. Passive transfer of flt-3L-derived dendritic cells delays diabetes development in NOD mice and associates with early production of interleukin (IL)-4 and IL-10 in the spleen of recipient mice. Clin Exp Immunol. 2003;134:388-95 pubmed
  1240. León B, Martinez del Hoyo G, Parrillas V, Vargas H, Sánchez Mateos P, Longo N, et al. Dendritic cell differentiation potential of mouse monocytes: monocytes represent immediate precursors of CD8- and CD8+ splenic dendritic cells. Blood. 2004;103:2668-76 pubmed
  1241. Power U, Plotnicky H, Blaecke A, Nguyen T. The immunogenicity, protective efficacy and safety of BBG2Na, a subunit respiratory syncytial virus (RSV) vaccine candidate, against RSV-B. Vaccine. 2003;22:168-76 pubmed
  1242. Morin J, Chimènes A, Boitard C, Berthier R, Boudaly S. Granulocyte-dendritic cell unbalance in the non-obese diabetic mice. Cell Immunol. 2003;223:13-25 pubmed
  1243. Brown C, Blaho V, Loiacono C. Susceptibility to experimental Lyme arthritis correlates with KC and monocyte chemoattractant protein-1 production in joints and requires neutrophil recruitment via CXCR2. J Immunol. 2003;171:893-901 pubmed
  1244. Lan F, Zeng D, Higuchi M, Higgins J, Strober S. Host conditioning with total lymphoid irradiation and antithymocyte globulin prevents graft-versus-host disease: the role of CD1-reactive natural killer T cells. Biol Blood Marrow Transplant. 2003;9:355-63 pubmed
  1245. Melani C, Chiodoni C, Forni G, Colombo M. Myeloid cell expansion elicited by the progression of spontaneous mammary carcinomas in c-erbB-2 transgenic BALB/c mice suppresses immune reactivity. Blood. 2003;102:2138-45 pubmed
  1246. Plotnicky H, Siegrist C, Aubry J, Bonnefoy J, Corvaia N, Nguyen T, et al. Enhanced pulmonary immunopathology following neonatal priming with formalin-inactivated respiratory syncytial virus but not with the BBG2NA vaccine candidate. Vaccine. 2003;21:2651-60 pubmed
  1247. Saio M, Radoja S, Marino M, Frey A. Tumor-infiltrating macrophages induce apoptosis in activated CD8(+) T cells by a mechanism requiring cell contact and mediated by both the cell-associated form of TNF and nitric oxide. J Immunol. 2001;167:5583-93 pubmed
  1248. Lan F, Zeng D, Higuchi M, Huie P, Higgins J, Strober S. Predominance of NK1.1+TCR alpha beta+ or DX5+TCR alpha beta+ T cells in mice conditioned with fractionated lymphoid irradiation protects against graft-versus-host disease: "natural suppressor" cells. J Immunol. 2001;167:2087-96 pubmed
  1249. Klinguer C, Beck A, de Lys P, Bussat M, Blaecke A, Derouet F, et al. Lipophilic quaternary ammonium salt acts as a mucosal adjuvant when co-administered by the nasal route with vaccine antigens. Vaccine. 2001;19:4236-44 pubmed
  1250. Goetsch L, Plotnicky Gilquin H, Aubry J, de Lys P, Haeuw J, Bonnefoy J, et al. BBG2Na an RSV subunit vaccine candidate intramuscularly injected to human confers protection against viral challenge after nasal immunization in mice. Vaccine. 2001;19:4036-42 pubmed
  1251. de Oca R, Buendia A, Del Rio L, Sanchez J, Salinas J, Navarro J. Polymorphonuclear neutrophils are necessary for the recruitment of CD8(+) T cells in the liver in a pregnant mouse model of Chlamydophila abortus (Chlamydia psittaci serotype 1) infection. Infect Immun. 2000;68:1746-51 pubmed
  1252. Whalen M, Carlos T, Dixon C, Robichaud P, Clark R, Marion D, et al. Reduced brain edema after traumatic brain injury in mice deficient in P-selectin and intercellular adhesion molecule-1. J Leukoc Biol. 2000;67:160-8 pubmed
  1253. Saitoh T, Morimoto K, Kumagai T, Tsuboi I, Aikawa S, Horie T. Comparison of erythropoietic response to androgen in young and old senescence accelerated mice. Mech Ageing Dev. 1999;109:125-39 pubmed
  1254. Lee S, Wang Y, Milbrandt J. Unimpaired macrophage differentiation and activation in mice lacking the zinc finger transplantation factor NGFI-A (EGR1). Mol Cell Biol. 1996;16:4566-72 pubmed
  1255. Palfree R, Dumont F, Hammerling U. Ly-6A.2 and Ly-6E.1 molecules are antithetical and identical to MALA-1. Immunogenetics. 1986;23:197-207 pubmed
  1256. Lewinsohn D, Bargatze R, Butcher E. Leukocyte-endothelial cell recognition: evidence of a common molecular mechanism shared by neutrophils, lymphocytes, and other leukocytes. J Immunol. 1987;138:4313-21 pubmed
  1257. Jutila M, Kroese F, Jutila K, Stall A, Fiering S, Herzenberg L, et al. Ly-6C is a monocyte/macrophage and endothelial cell differentiation antigen regulated by interferon-gamma. Eur J Immunol. 1988;18:1819-26 pubmed
  1258. Codias E, Cray C, Baler R, Levy R, Malek T. Expression of Ly-6A/E alloantigens in thymocyte and T-lymphocyte subsets: variability related to the Ly-6a and Ly-6b haplotypes. Immunogenetics. 1989;29:98-107 pubmed