这是一篇来自已证抗体库的有关人类 FCGR3B的综述,是根据165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FCGR3B 抗体。
FCGR3B 同义词: CD16; CD16A; CD16b; FCG3; FCGR3; FCGR3A; FCR-10; FCRIII; FCRIIIb

赛默飞世尔
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 1:200; 图 s3a
赛默飞世尔 FCGR3B抗体(Invitrogen, 47-0168-41)被用于被用于流式细胞仪在人类样本上浓度为1:200 (图 s3a). Nature (2021) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 图 s3
赛默飞世尔 FCGR3B抗体(Invitrogen, 47-0168-41)被用于被用于流式细胞仪在人类样本上 (图 s3). Nature (2021) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 1:200; 图 e4a
赛默飞世尔 FCGR3B抗体(Invitrogen, 47-0168-41)被用于被用于流式细胞仪在人类样本上浓度为1:200 (图 e4a). Nature (2021) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 1:25
赛默飞世尔 FCGR3B抗体(eBioscience, CB16)被用于被用于流式细胞仪在人类样本上浓度为1:25. elife (2020) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 图 2a
赛默飞世尔 FCGR3B抗体(eBiosciences, CB16)被用于被用于流式细胞仪在人类样本上 (图 2a). Science (2020) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 1:50; 图 1d
赛默飞世尔 FCGR3B抗体(eBioscience, eBioCB16)被用于被用于流式细胞仪在人类样本上浓度为1:50 (图 1d). elife (2020) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 图 s1a
赛默飞世尔 FCGR3B抗体(eBioscience, 25-0168-42)被用于被用于流式细胞仪在人类样本上 (图 s1a). BMC Cancer (2019) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 猕猴; 1:200; 图 3g
赛默飞世尔 FCGR3B抗体(Invitrogen, 47-0168-41)被用于被用于流式细胞仪在猕猴样本上浓度为1:200 (图 3g). Nature (2019) ncbi
小鼠 单克隆(B73.1)
  • mass cytometry; 人类; 图 s1
赛默飞世尔 FCGR3B抗体(eBioscience, B73.1)被用于被用于mass cytometry在人类样本上 (图 s1). J Exp Med (2019) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 1:100; 图 s1a
赛默飞世尔 FCGR3B抗体(Thermofisher, 48-0168-42)被用于被用于流式细胞仪在人类样本上浓度为1:100 (图 s1a). Cancer Cell (2019) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 1:100; 图 s1d
赛默飞世尔 FCGR3B抗体(Thermofisher, MHCD1617)被用于被用于流式细胞仪在人类样本上浓度为1:100 (图 s1d). Cancer Cell (2019) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 图 s1b, s1c, s1d
赛默飞世尔 FCGR3B抗体(eBioscience, eBioCB16)被用于被用于流式细胞仪在人类样本上 (图 s1b, s1c, s1d). Cell Host Microbe (2019) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 图 3g
赛默飞世尔 FCGR3B抗体(eBioscience, 46-0168-42)被用于被用于流式细胞仪在人类样本上 (图 3g). Science (2019) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 图 9e
赛默飞世尔 FCGR3B抗体(eBiosciences, eBioCB16)被用于被用于流式细胞仪在人类样本上 (图 9e). J Clin Invest (2018) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1a
赛默飞世尔 FCGR3B抗体(生活技术, MHCD1617)被用于被用于流式细胞仪在人类样本上 (图 1a). J Immunol (2018) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 1:100; 图 1a
赛默飞世尔 FCGR3B抗体(eBiosciences, eBioCB16)被用于被用于流式细胞仪在人类样本上浓度为1:100 (图 1a). J Immunol (2017) ncbi
小鼠 单克隆(MEM-154)
  • 免疫印迹; 人类
赛默飞世尔 FCGR3B抗体(Invitrogen, MEM-154)被用于被用于免疫印迹在人类样本上. Clin Exp Allergy (2017) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 1:5
赛默飞世尔 FCGR3B抗体(eBioscience, CB16)被用于被用于流式细胞仪在人类样本上浓度为1:5. Nat Commun (2016) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 猕猴; 表 1
赛默飞世尔 FCGR3B抗体(eBioScience, 3G8)被用于被用于流式细胞仪在猕猴样本上 (表 1). Am J Pathol (2016) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1
赛默飞世尔 FCGR3B抗体(Caltag, MHCD1605)被用于被用于流式细胞仪在人类样本上 (图 1). Cytometry B Clin Cytom (2018) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 图 2
赛默飞世尔 FCGR3B抗体(eBioscience, CB16)被用于被用于流式细胞仪在人类样本上 (图 2). Sci Rep (2016) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 1:20; 图 s5j
赛默飞世尔 FCGR3B抗体(eBioscience, 48-0168-41)被用于被用于流式细胞仪在人类样本上浓度为1:20 (图 s5j). Nat Cell Biol (2016) ncbi
小鼠 单克隆(3G8)
赛默飞世尔 FCGR3B抗体(生活技术, MHCD1601)被用于. Anal Biochem (2016) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 图 1a
赛默飞世尔 FCGR3B抗体(eBiosciences, eBioCB16)被用于被用于流式细胞仪在人类样本上 (图 1a). Sci Rep (2016) ncbi
小鼠 单克隆(B73.1)
  • 流式细胞仪; 人类; 1:200; 图 5
赛默飞世尔 FCGR3B抗体(ebioscience, B73.1)被用于被用于流式细胞仪在人类样本上浓度为1:200 (图 5). PLoS ONE (2016) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 表 2
赛默飞世尔 FCGR3B抗体(eBiosciences, CB16)被用于被用于流式细胞仪在人类样本上 (表 2). Brain Behav Immun (2016) ncbi
小鼠 单克隆(MEM-154)
  • 流式细胞仪; 人类; 图 1a
赛默飞世尔 FCGR3B抗体(Thermo Scientific, MEM-154)被用于被用于流式细胞仪在人类样本上 (图 1a). Am J Physiol Heart Circ Physiol (2016) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 图 1
赛默飞世尔 FCGR3B抗体(eBioscience, 11-0168)被用于被用于流式细胞仪在人类样本上 (图 1). Clin Exp Immunol (2016) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 表 4
赛默飞世尔 FCGR3B抗体(Invitrogen, 3G8)被用于被用于流式细胞仪在人类样本上 (表 4). Cytometry B Clin Cytom (2015) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 图 3
赛默飞世尔 FCGR3B抗体(eBioscience, 48-0168-42)被用于被用于流式细胞仪在人类样本上 (图 3). Stem Cell Reports (2015) ncbi
小鼠 单克隆(3G8)
  • 免疫沉淀; 人类
赛默飞世尔 FCGR3B抗体(eBioscience, 3G8)被用于被用于免疫沉淀在人类样本上. J Biol Chem (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. Cytometry B Clin Cytom (2015) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 图 1
赛默飞世尔 FCGR3B抗体(eBioscience, CB16)被用于被用于流式细胞仪在人类样本上 (图 1). J Infect Dis (2015) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(eBioscience, CB16)被用于被用于流式细胞仪在人类样本上. J Leukoc Biol (2014) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Invitrogen, 3G8)被用于被用于流式细胞仪在人类样本上. Immunol Invest (2014) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(eBiosciences, eBioCB16)被用于被用于流式细胞仪在人类样本上. J Clin Immunol (2014) ncbi
小鼠 单克隆(MEM-154)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Fisher, MA1?C19563)被用于被用于流式细胞仪在人类样本上. MAbs (2014) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类; 图 1
赛默飞世尔 FCGR3B抗体(eBioscience, CB16)被用于被用于流式细胞仪在人类样本上 (图 1). Exp Gerontol (2014) ncbi
小鼠 单克隆(eBioCB16 (CB16))
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(eBioscience, 17-0168)被用于被用于流式细胞仪在人类样本上. Arthritis Res Ther (2014) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 猕猴; 图 3
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在猕猴样本上 (图 3). Tuberculosis (Edinb) (2013) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 8
赛默飞世尔 FCGR3B抗体(eBioscience, 3G8)被用于被用于流式细胞仪在人类样本上 (图 8). Retrovirology (2013) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1
赛默飞世尔 FCGR3B抗体(Caltag-Medsystems, Clone 3G8)被用于被用于流式细胞仪在人类样本上 (图 1). Transfusion (2014) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 表 1
赛默飞世尔 FCGR3B抗体(Caltag, clone 3G8)被用于被用于流式细胞仪在人类样本上 (表 1). Cytopathology (2014) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 3
赛默飞世尔 FCGR3B抗体(CalTag, MHCD1605)被用于被用于流式细胞仪在人类样本上 (图 3). J Neuroinflammation (2013) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 2
赛默飞世尔 FCGR3B抗体(CALTAG, MHCD1601)被用于被用于流式细胞仪在人类样本上 (图 2). Clin Immunol (2012) ncbi
小鼠 单克隆(B73.1)
  • 流式细胞仪; 人类; 图 s6
赛默飞世尔 FCGR3B抗体(eBioscience, B73.1)被用于被用于流式细胞仪在人类样本上 (图 s6). PLoS Pathog (2012) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1
赛默飞世尔 FCGR3B抗体(Invitrogen, MHCD1629)被用于被用于流式细胞仪在人类样本上 (图 1). Oncoimmunology (2012) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. Genes Immun (2012) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 2
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上 (图 2). J Infect Dis (2011) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 小鼠
赛默飞世尔 FCGR3B抗体(Invitrogen, 3G8)被用于被用于流式细胞仪在小鼠样本上. Nature (2011) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1, 2, 3
赛默飞世尔 FCGR3B抗体(Invitrogen, 3G8)被用于被用于流式细胞仪在人类样本上 (图 1, 2, 3). Allergy (2011) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; African green monkey; 图 4
赛默飞世尔 FCGR3B抗体(Invitrogen, 3G8)被用于被用于流式细胞仪在African green monkey样本上 (图 4). J Med Primatol (2010) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. J Immunol (2009) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 3
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上 (图 3). J Immunol (2009) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 猕猴
赛默飞世尔 FCGR3B抗体(Invitrogen, 3G8)被用于被用于流式细胞仪在猕猴样本上. J Med Primatol (2008) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. Cytometry B Clin Cytom (2008) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上 (图 1). Microbes Infect (2008) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 4
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上 (图 4). J Immunol (2007) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. Clin Immunol (2006) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. Blood (2006) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. Methods Mol Biol (2005) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. J Immunol (2005) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. Cytometry A (2005) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 2
赛默飞世尔 FCGR3B抗体(Caltag Laboratories, 3G8)被用于被用于流式细胞仪在人类样本上 (图 2). J Immunol Methods (2004) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. J Immunol (2004) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 2C
  • 免疫组化; 人类; 图 2C
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上 (图 2C) 和 被用于免疫组化在人类样本上 (图 2C). J Leukoc Biol (2004) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上 (图 1). J Immunol (2004) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. J Hepatol (2004) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. Cytometry B Clin Cytom (2003) ncbi
小鼠 单克隆(3G8)
  • 酶联免疫吸附测定; 人类; 图 6
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于酶联免疫吸附测定在人类样本上 (图 6). J Immunol (2003) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. Proc Natl Acad Sci U S A (2002) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. Haematologica (2002) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 2 ug/ml
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上浓度为2 ug/ml. Blood (2001) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 2
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上 (图 2). Blood (2000) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. Infect Immun (2000) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
赛默飞世尔 FCGR3B抗体(Caltag, 3G8)被用于被用于流式细胞仪在人类样本上. Proc Natl Acad Sci U S A (1999) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1
  • 免疫沉淀; 人类; 图 2
赛默飞世尔 FCGR3B抗体(invitrogen, 3G8)被用于被用于流式细胞仪在人类样本上 (图 1) 和 被用于免疫沉淀在人类样本上 (图 2). J Exp Med (1989) ncbi
小鼠 单克隆(3G8)
  • 免疫沉淀; 人类; 图 4
赛默飞世尔 FCGR3B抗体(invitrogen, 3G8)被用于被用于免疫沉淀在人类样本上 (图 4). Proc Natl Acad Sci U S A (1989) ncbi
BioLegend
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 5e
BioLegend FCGR3B抗体(Biolegend, 302038)被用于被用于流式细胞仪在人类样本上 (图 5e). J Immunother Cancer (2022) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 1:100; 图 6b
BioLegend FCGR3B抗体(Biolegend, 302012)被用于被用于流式细胞仪在人类样本上浓度为1:100 (图 6b). Nat Nanotechnol (2022) ncbi
小鼠 单克隆(B73.1)
  • 流式细胞仪; 人类; 1:100; 图 6b
BioLegend FCGR3B抗体(Biolegend, 360709)被用于被用于流式细胞仪在人类样本上浓度为1:100 (图 6b). Nat Nanotechnol (2022) ncbi
小鼠 单克隆(3G8)
  • 抑制或激活实验; 人类; 5 ug/ml; 图 s4
BioLegend FCGR3B抗体(Biolegend, 3G8)被用于被用于抑制或激活实验在人类样本上浓度为5 ug/ml (图 s4). BMC Biol (2021) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(Biolegend, 302035)被用于被用于流式细胞仪在人类样本上. Cell (2021) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 7
BioLegend FCGR3B抗体(Biolegend, 302019)被用于被用于流式细胞仪在人类样本上 (图 7). PLoS Negl Trop Dis (2021) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 1:200; 图 s1a
BioLegend FCGR3B抗体(Biolegend, 302029)被用于被用于流式细胞仪在人类样本上浓度为1:200 (图 s1a). Arthritis Res Ther (2021) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(BioLegend, 302044)被用于被用于流式细胞仪在人类样本上. Immunity (2021) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(Biolegend, 302008)被用于被用于流式细胞仪在人类样本上. BMC Biol (2021) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 s9d
BioLegend FCGR3B抗体(BioLegend, 302040)被用于被用于流式细胞仪在人类样本上 (图 s9d). Nature (2021) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 s3a
BioLegend FCGR3B抗体(Biolegend, 302057)被用于被用于流式细胞仪在人类样本上 (图 s3a). Cell Rep (2020) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 3c
BioLegend FCGR3B抗体(Biolegend, 302042)被用于被用于流式细胞仪在人类样本上 (图 3c). Cell Rep (2019) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 4b
BioLegend FCGR3B抗体(Biolegend, clone 3G8)被用于被用于流式细胞仪在人类样本上 (图 4b). Sci Rep (2019) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 s1a
BioLegend FCGR3B抗体(BioLegend, 302051)被用于被用于流式细胞仪在人类样本上 (图 s1a). Cell (2019) ncbi
小鼠 单克隆(B73.1)
  • 流式细胞仪; 人类; 图 s2o
BioLegend FCGR3B抗体(Biolegend, 360716)被用于被用于流式细胞仪在人类样本上 (图 s2o). JCI Insight (2019) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 6
BioLegend FCGR3B抗体(BioLegend, 302011)被用于被用于流式细胞仪在人类样本上 (图 6). Gastroenterol Res Pract (2019) ncbi
小鼠 单克隆(3G8)
  • 其他; 人类; 图 4b
BioLegend FCGR3B抗体(BioLegend, 302061)被用于被用于其他在人类样本上 (图 4b). Cell (2019) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 3a
BioLegend FCGR3B抗体(BioLegend, 302039)被用于被用于流式细胞仪在人类样本上 (图 3a). J Exp Med (2019) ncbi
小鼠 单克隆(3G8)
  • mass cytometry; 人类; 图 2j
BioLegend FCGR3B抗体(Biolegend, 302002)被用于被用于mass cytometry在人类样本上 (图 2j). Cell (2019) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 6b
BioLegend FCGR3B抗体(BioLegend, 302044)被用于被用于流式细胞仪在人类样本上 (图 6b). Immunity (2019) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 s5a
BioLegend FCGR3B抗体(Biolegend, 302012)被用于被用于流式细胞仪在人类样本上 (图 s5a). Breast Cancer Res Treat (2019) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 2a
BioLegend FCGR3B抗体(Biolegend, 302035)被用于被用于流式细胞仪在人类样本上 (图 2a). elife (2019) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1c
BioLegend FCGR3B抗体(BioLegend, 302025)被用于被用于流式细胞仪在人类样本上 (图 1c). J Exp Med (2018) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1a
BioLegend FCGR3B抗体(Biolegend, 302002)被用于被用于流式细胞仪在人类样本上 (图 1a). Cell (2018) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 s2d
BioLegend FCGR3B抗体(BioLegend, 302016)被用于被用于流式细胞仪在人类样本上 (图 s2d). Nat Immunol (2018) ncbi
小鼠 单克隆(B73.1)
  • 流式细胞仪; 人类; 图 s1a
BioLegend FCGR3B抗体(Biolegend, B73.1)被用于被用于流式细胞仪在人类样本上 (图 s1a). Front Immunol (2017) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 7c
BioLegend FCGR3B抗体(BioLegend, 302040)被用于被用于流式细胞仪在人类样本上 (图 7c). Immunity (2017) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 猕猴; 图 7a
BioLegend FCGR3B抗体(Biolegend, 3G8)被用于被用于流式细胞仪在猕猴样本上 (图 7a). J Virol (2017) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1a
BioLegend FCGR3B抗体(Biolegend, 302012)被用于被用于流式细胞仪在人类样本上 (图 1a). Front Immunol (2016) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1c
BioLegend FCGR3B抗体(Biolegend, 302008)被用于被用于流式细胞仪在人类样本上 (图 1c). Genome Biol (2016) ncbi
小鼠 单克隆(3G8)
BioLegend FCGR3B抗体(BioLegend, 302006)被用于. Nat Commun (2016) ncbi
小鼠 单克隆(B73.1)
  • 流式细胞仪; 人类; 图 s1d
BioLegend FCGR3B抗体(BioLegend, B73.1)被用于被用于流式细胞仪在人类样本上 (图 s1d). Sci Rep (2016) ncbi
小鼠 单克隆(B73.1)
  • 流式细胞仪; 人类; 1:100; 图 1a
BioLegend FCGR3B抗体(Biolegend, B73.1)被用于被用于流式细胞仪在人类样本上浓度为1:100 (图 1a). Nat Immunol (2016) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(Biolegend, 3G8)被用于被用于流式细胞仪在人类样本上. PLoS Pathog (2016) ncbi
小鼠 单克隆(B73.1)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(Biolegend, B73.1)被用于被用于流式细胞仪在人类样本上. elife (2016) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 1:100; 图 5
BioLegend FCGR3B抗体(Biolegend, 302007)被用于被用于流式细胞仪在人类样本上浓度为1:100 (图 5). Nat Commun (2016) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 小鼠; 1:200
BioLegend FCGR3B抗体(BioLegend, 3G8)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
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 5
BioLegend FCGR3B抗体(BioLegend, 3G8)被用于被用于流式细胞仪在人类样本上 (图 5). PLoS Pathog (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 7
BioLegend FCGR3B抗体(Biolegend, 3G8)被用于被用于流式细胞仪在人类样本上 (图 7). Eur J Immunol (2016) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 s1b
BioLegend FCGR3B抗体(Biolegend, 3G8)被用于被用于流式细胞仪在人类样本上 (图 s1b). J Immunol (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(Biolegend, 302008)被用于被用于流式细胞仪在人类样本上. J Neuroimmunol (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 小鼠
BioLegend FCGR3B抗体(Biolegend, 3G8)被用于被用于流式细胞仪在小鼠样本上. J Virol (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 s3
BioLegend FCGR3B抗体(BioLegend, 3G8)被用于被用于流式细胞仪在人类样本上 (图 s3). J Exp Med (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1
BioLegend FCGR3B抗体(Biolegend, 3G8)被用于被用于流式细胞仪在人类样本上 (图 1). Sci Rep (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(BioLegend, 302026)被用于被用于流式细胞仪在人类样本上. PLoS ONE (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 猕猴; 图 3
BioLegend FCGR3B抗体(BioLegend, 3G8)被用于被用于流式细胞仪在猕猴样本上 (图 3). J Virol (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 4
BioLegend FCGR3B抗体(Biolegend, 3G8)被用于被用于流式细胞仪在人类样本上 (图 4). J Rheumatol (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 1
BioLegend FCGR3B抗体(BioLegend, 3G8)被用于被用于流式细胞仪在人类样本上 (图 1). J Immunol (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类; 图 7
BioLegend FCGR3B抗体(BioLegend, 3G8)被用于被用于流式细胞仪在人类样本上 (图 7). J Immunol (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(BioLegend, 3G8)被用于被用于流式细胞仪在人类样本上. Genes Immun (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(Biolegend, 3G8)被用于被用于流式细胞仪在人类样本上. PLoS ONE (2014) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(BioLegend, clone3G8)被用于被用于流式细胞仪在人类样本上. J Infect Dis (2015) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 猕猴
  • 免疫组化; 猕猴
BioLegend FCGR3B抗体(BioLegend, 3G8)被用于被用于流式细胞仪在猕猴样本上 和 被用于免疫组化在猕猴样本上. J Neuroimmune Pharmacol (2014) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(BioLegend, 3G8)被用于被用于流式细胞仪在人类样本上. Cell Immunol (2014) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(Biolegend, 3G8)被用于被用于流式细胞仪在人类样本上. Blood (2014) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(BioLegend, 3G8)被用于被用于流式细胞仪在人类样本上. J Infect Dis (2014) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(BioLegend, 3G8)被用于被用于流式细胞仪在人类样本上. PLoS Pathog (2014) ncbi
小鼠 单克隆(3G8)
  • 免疫组化-冰冻切片; 猕猴
BioLegend FCGR3B抗体(BioLegend, 302005)被用于被用于免疫组化-冰冻切片在猕猴样本上. Mol Ther (2014) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(BioLegend, 3G8)被用于被用于流式细胞仪在人类样本上. Clin Cancer Res (2013) ncbi
小鼠 单克隆(3G8)
  • 流式细胞仪; 人类
BioLegend FCGR3B抗体(BioLegend, 302021)被用于被用于流式细胞仪在人类样本上. Nat Protoc (2010) ncbi
圣克鲁斯生物技术
大鼠 单克隆(YFC 120.5)
  • 免疫组化; 大鼠; 1:50; 图 5a
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz Biotechnology, sc-58962)被用于被用于免疫组化在大鼠样本上浓度为1:50 (图 5a). J Neuroinflammation (2021) ncbi
小鼠 单克隆(DJ130c)
  • 免疫组化-石蜡切片; 猕猴; 1.3 ug/ml; 图 s8b
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz, sc-20052)被用于被用于免疫组化-石蜡切片在猕猴样本上浓度为1.3 ug/ml (图 s8b). Science (2020) ncbi
小鼠 单克隆(LNK16)
  • 流式细胞仪; 人类; 1:20; 图 1a
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz, sc-51524)被用于被用于流式细胞仪在人类样本上浓度为1:20 (图 1a). Sci Adv (2019) ncbi
小鼠 单克隆(GRM1)
  • 流式细胞仪; 人类; 图 4a
  • 免疫印迹; 人类; 图 4b
圣克鲁斯生物技术 FCGR3B抗体(Santa, GRM1)被用于被用于流式细胞仪在人类样本上 (图 4a) 和 被用于免疫印迹在人类样本上 (图 4b). Blood (2019) ncbi
小鼠 单克隆
  • 流式细胞仪; 人类; 图 5a
  • 免疫印迹; 人类; 图 5c
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz, DJ130c)被用于被用于流式细胞仪在人类样本上 (图 5a) 和 被用于免疫印迹在人类样本上 (图 5c). Proc Natl Acad Sci U S A (2017) ncbi
小鼠 单克隆(DJ130c)
  • 流式细胞仪; 人类; 图 5a
  • 免疫印迹; 人类; 图 5c
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz, DJ130c)被用于被用于流式细胞仪在人类样本上 (图 5a) 和 被用于免疫印迹在人类样本上 (图 5c). Proc Natl Acad Sci U S A (2017) ncbi
小鼠 单克隆(DJ130c)
  • 免疫组化; 人类; 1:400; 图 1h
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz, sc-20052)被用于被用于免疫组化在人类样本上浓度为1:400 (图 1h). Front Immunol (2017) ncbi
小鼠 单克隆(DJ130c)
  • 酶联免疫吸附测定; 人类; 图 7d
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz, sc-20052)被用于被用于酶联免疫吸附测定在人类样本上 (图 7d). J Cell Mol Med (2017) ncbi
小鼠 单克隆(DJ130c)
  • 免疫组化-石蜡切片; 人类; 1:100; 表 1
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz, sc-20052)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:100 (表 1). Glia (2017) ncbi
小鼠 单克隆(3G8)
  • 免疫细胞化学; 人类; 图 3
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz, sc-19620)被用于被用于免疫细胞化学在人类样本上 (图 3). J Immunol Methods (2016) ncbi
小鼠 单克隆(DJ130c)
  • 免疫组化-石蜡切片; 人类; 1:100; 图 s3
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz, sc-20052)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:100 (图 s3). Oncotarget (2016) ncbi
小鼠 单克隆(3G8)
  • 抑制或激活实验; 人类; 1 ug/ml; 图 3
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz Biotechnology, sc-19620)被用于被用于抑制或激活实验在人类样本上浓度为1 ug/ml (图 3). J Biol Chem (2016) ncbi
小鼠 单克隆(3G8)
  • 其他; 小鼠; 图 1
  • 免疫细胞化学; 小鼠; 图 2
  • 免疫印迹; 小鼠; 图 s1
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz Biotechnology, sc-19620)被用于被用于其他在小鼠样本上 (图 1), 被用于免疫细胞化学在小鼠样本上 (图 2) 和 被用于免疫印迹在小鼠样本上 (图 s1). Mol Biol Cell (2016) ncbi
小鼠 单克隆(DJ130c)
  • 免疫组化; 人类
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz, sc-20052)被用于被用于免疫组化在人类样本上. PLoS ONE (2015) ncbi
小鼠 单克隆(DJ130c)
  • 免疫印迹; 人类; 图 1
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz, Sc20052)被用于被用于免疫印迹在人类样本上 (图 1). J Matern Fetal Neonatal Med (2016) ncbi
小鼠 单克隆(2Q1240)
  • 免疫组化-石蜡切片; 人类; 图 6
圣克鲁斯生物技术 FCGR3B抗体(Santa Cruz, 2Q1240)被用于被用于免疫组化-石蜡切片在人类样本上 (图 6). Oncol Rep (2015) ncbi
艾博抗(上海)贸易有限公司
domestic rabbit 多克隆
  • 免疫印迹; 大鼠; 图 8a
艾博抗(上海)贸易有限公司 FCGR3B抗体(Abcam, ab203883)被用于被用于免疫印迹在大鼠样本上 (图 8a). J Inflamm Res (2021) ncbi
domestic rabbit 多克隆
  • 免疫印迹; 小鼠; 1:300; 图 6c
艾博抗(上海)贸易有限公司 FCGR3B抗体(Abcam, ab203883)被用于被用于免疫印迹在小鼠样本上浓度为1:300 (图 6c). Aging (Albany NY) (2021) ncbi
domestic rabbit 单克隆(EPR22409-124)
  • 免疫组化; 小鼠; 1:200; 图 2h
艾博抗(上海)贸易有限公司 FCGR3B抗体(Abcam, ab252908)被用于被用于免疫组化在小鼠样本上浓度为1:200 (图 2h). Aging (Albany NY) (2021) ncbi
小鼠 单克隆(MEM-154)
  • 免疫细胞化学; 人类; 图 2j
  • 免疫印迹; 人类; 图 4f
艾博抗(上海)贸易有限公司 FCGR3B抗体(Abcam, ab46679)被用于被用于免疫细胞化学在人类样本上 (图 2j) 和 被用于免疫印迹在人类样本上 (图 4f). Aging (Albany NY) (2020) ncbi
domestic rabbit 多克隆
  • 免疫组化; 小鼠; 1:500; 图 7a
艾博抗(上海)贸易有限公司 FCGR3B抗体(Abcam, ab203883)被用于被用于免疫组化在小鼠样本上浓度为1:500 (图 7a). J Comp Neurol (2020) ncbi
伯乐(Bio-Rad)公司
小鼠 单克隆(LNK16)
  • 流式细胞仪; 人类; 图 1b
伯乐(Bio-Rad)公司 FCGR3B抗体(Immunotools, LNK16)被用于被用于流式细胞仪在人类样本上 (图 1b). Cell Death Dis (2018) ncbi
小鼠 单克隆(DJ130c)
  • 抑制或激活实验; 人类; 图 3a
伯乐(Bio-Rad)公司 FCGR3B抗体(AbD Serotec, DJ130c)被用于被用于抑制或激活实验在人类样本上 (图 3a). Sci Rep (2016) ncbi
大鼠 单克隆(YFC120.5)
  • 流式细胞仪; 人类; 图 4b
伯乐(Bio-Rad)公司 FCGR3B抗体(Bio Rad Laboratories, MCA617G)被用于被用于流式细胞仪在人类样本上 (图 4b). Nanomedicine (Lond) (2016) ncbi
小鼠 单克隆(LNK16)
  • 流式细胞仪; 仓鼠
伯乐(Bio-Rad)公司 FCGR3B抗体(AbD Serotec, LNK16)被用于被用于流式细胞仪在仓鼠样本上. PLoS ONE (2014) ncbi
小鼠 单克隆(KD1)
  • 流式细胞仪; 牛; 图 4b
伯乐(Bio-Rad)公司 FCGR3B抗体(Serotec, MCA5665)被用于被用于流式细胞仪在牛样本上 (图 4b). Theriogenology (2014) ncbi
美天旎
人类 单克隆(REA423)
  • 流式细胞仪; 人类; 1:100; 图 2f
美天旎 FCGR3B抗体(Miltenyi, 130-113-393)被用于被用于流式细胞仪在人类样本上浓度为1:100 (图 2f). Nat Med (2021) ncbi
人类 单克隆(REA423)
  • 流式细胞仪; 人类; 图 s2
美天旎 FCGR3B抗体(Miltenyi Biotech, 130-113-389)被用于被用于流式细胞仪在人类样本上 (图 s2). J Biol Chem (2019) ncbi
碧迪BD
小鼠 单克隆(CLB-gran11.5)
  • 流式细胞仪; 人类; 图 s1
碧迪BD FCGR3B抗体(BD Biosciences, CLB-gran11.5)被用于被用于流式细胞仪在人类样本上 (图 s1). Arthritis Res Ther (2021) ncbi
小鼠 单克隆(CLB-gran11.5)
  • 流式细胞仪; 人类; 图 2a
碧迪BD FCGR3B抗体(BD Bioscience, 550868)被用于被用于流式细胞仪在人类样本上 (图 2a). J Clin Invest (2017) ncbi
小鼠 单克隆(CLB-gran11.5)
  • 流式细胞仪; 人类; 图 st1
碧迪BD FCGR3B抗体(BD, 550868)被用于被用于流式细胞仪在人类样本上 (图 st1). Exp Cell Res (2016) ncbi
文章列表
  1. Kaminski M, Bendzick L, Hopps R, Kauffman M, Kodal B, Soignier Y, et al. TEM8 Tri-specific Killer Engager binds both tumor and tumor stroma to specifically engage natural killer cell anti-tumor activity. J Immunother Cancer. 2022;10: pubmed 出版商
  2. Liu Y, Wang L, Song Q, Ali M, Crowe W, Kucera G, et al. Intrapleural nano-immunotherapy promotes innate and adaptive immune responses to enhance anti-PD-L1 therapy for malignant pleural effusion. Nat Nanotechnol. 2022;17:206-216 pubmed 出版商
  3. Zhu Y, Xie J, Shi J. Rac1/ROCK-driven membrane dynamics promote natural killer cell cytotoxicity via granzyme-induced necroptosis. BMC Biol. 2021;19:140 pubmed 出版商
  4. Spiegel J, Patel S, Muffly L, Hossain N, Oak J, Baird J, et al. CAR T cells with dual targeting of CD19 and CD22 in adult patients with recurrent or refractory B cell malignancies: a phase 1 trial. Nat Med. 2021;27:1419-1431 pubmed 出版商
  5. Xiao J, Cai T, Fang Y, Liu R, Flores J, Wang W, et al. Activation of GPR40 attenuates neuroinflammation and improves neurological function via PAK4/CREB/KDM6B pathway in an experimental GMH rat model. J Neuroinflammation. 2021;18:160 pubmed 出版商
  6. Li D, Edwards R, Manne K, Martinez D, Schäfer A, Alam S, et al. In vitro and in vivo functions of SARS-CoV-2 infection-enhancing and neutralizing antibodies. Cell. 2021;184:4203-4219.e32 pubmed 出版商
  7. Jiang T, Xu S, Shen Y, Xu Y, Li Y. Genistein Attenuates Isoflurane-Induced Neuroinflammation by Inhibiting TLR4-Mediated Microglial-Polarization in vivo and in vitro. J Inflamm Res. 2021;14:2587-2600 pubmed 出版商
  8. Wang Z, Muecksch F, Schaefer Babajew D, Finkin S, Viant C, Gaebler C, et al. Naturally enhanced neutralizing breadth against SARS-CoV-2 one year after infection. Nature. 2021;595:426-431 pubmed 出版商
  9. Hibl B, Dailey Garnes N, Kneubehl A, Vogt M, Spencer Clinton J, Rico Hesse R. Mosquito-bite infection of humanized mice with chikungunya virus produces systemic disease with long-term effects. PLoS Negl Trop Dis. 2021;15:e0009427 pubmed 出版商
  10. Ukadike K, Ni K, Wang X, Taylor M, LaCava J, Pachman L, et al. IgG and IgA autoantibodies against L1 ORF1p expressed in granulocytes correlate with granulocyte consumption and disease activity in pediatric systemic lupus erythematosus. Arthritis Res Ther. 2021;23:153 pubmed 出版商
  11. Lu Q, Liu J, Zhao S, Gomez Castro M, Laurent Rolle M, Dong J, et al. SARS-CoV-2 exacerbates proinflammatory responses in myeloid cells through C-type lectin receptors and Tweety family member 2. Immunity. 2021;54:1304-1319.e9 pubmed 出版商
  12. Matsumoto K, Kurasawa T, Yoshimoto K, Suzuki K, Takeuchi T. Identification of neutrophil β2-integrin LFA-1 as a potential mechanistic biomarker in ANCA-associated vasculitis via microarray and validation analyses. Arthritis Res Ther. 2021;23:136 pubmed 出版商
  13. Zong D, Huang B, LI Y, Lu Y, Xiang N, Guo C, et al. Chromatin accessibility landscapes of immune cells in rheumatoid arthritis nominate monocytes in disease pathogenesis. BMC Biol. 2021;19:79 pubmed 出版商
  14. Wang Z, Schmidt F, Weisblum Y, Muecksch F, Barnes C, Finkin S, et al. mRNA vaccine-elicited antibodies to SARS-CoV-2 and circulating variants. Nature. 2021;592:616-622 pubmed 出版商
  15. Ni X, Zhang Y, Jia L, Lu W, Zhu Q, Ren J, et al. Inhibition of Notch1-mediated inflammation by intermedin protects against abdominal aortic aneurysm via PI3K/Akt signaling pathway. Aging (Albany NY). 2021;13:5164-5184 pubmed 出版商
  16. Combes A, Courau T, Kuhn N, Hu K, Ray A, Chen W, et al. Global absence and targeting of protective immune states in severe COVID-19. Nature. 2021;591:124-130 pubmed 出版商
  17. Zhang Z, Zou X, Zhang R, Xie Y, Feng Z, Li F, et al. Human umbilical cord mesenchymal stem cell-derived exosomal miR-146a-5p reduces microglial-mediated neuroinflammation via suppression of the IRAK1/TRAF6 signaling pathway after ischemic stroke. Aging (Albany NY). 2021;13:3060-3079 pubmed 出版商
  18. Gaebler C, Wang Z, Lorenzi J, Muecksch F, Finkin S, Tokuyama M, et al. Evolution of antibody immunity to SARS-CoV-2. Nature. 2021;591:639-644 pubmed 出版商
  19. Wu S, Xu R, Zhu X, He H, Zhang J, Zeng Q, et al. The long noncoding RNA LINC01140/miR-140-5p/FGF9 axis modulates bladder cancer cell aggressiveness and macrophage M2 polarization. Aging (Albany NY). 2020;12:25845-25864 pubmed 出版商
  20. Noz M, Bekkering S, Groh L, Nielen T, Lamfers E, Schlitzer A, et al. Reprogramming of bone marrow myeloid progenitor cells in patients with severe coronary artery disease. elife. 2020;9: pubmed 出版商
  21. Brouwer P, Caniels T, van der Straten K, Snitselaar J, Aldon Y, Bangaru S, et al. Potent neutralizing antibodies from COVID-19 patients define multiple targets of vulnerability. Science. 2020;369:643-650 pubmed 出版商
  22. Chandrashekar A, Liu J, Martinot A, McMahan K, Mercado N, Peter L, et al. SARS-CoV-2 infection protects against rechallenge in rhesus macaques. Science. 2020;: pubmed 出版商
  23. Thulin N, Brewer R, Sherwood R, Bournazos S, Edwards K, Ramadoss N, et al. Maternal Anti-Dengue IgG Fucosylation Predicts Susceptibility to Dengue Disease in Infants. Cell Rep. 2020;31:107642 pubmed 出版商
  24. Stebegg M, Bignon A, Hill D, Silva Cayetano A, Krueger C, Vanderleyden I, et al. Rejuvenating conventional dendritic cells and T follicular helper cell formation after vaccination. elife. 2020;9: pubmed 出版商
  25. Libner C, Salapa H, Hutchinson C, Lee S, Levin M. Antibodies to the RNA binding protein heterogeneous nuclear ribonucleoprotein A1 contribute to neuronal cell loss in an animal model of multiple sclerosis. J Comp Neurol. 2020;528:1704-1724 pubmed 出版商
  26. 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
  27. Muhammad F, Wang D, Montieth A, Lee S, Preble J, Foster C, et al. PD-1+ melanocortin receptor dependent-Treg cells prevent autoimmune disease. Sci Rep. 2019;9:16941 pubmed 出版商
  28. 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
  29. Choi J, Lee E, Kim S, Park S, Oh S, Kang J, et al. Cytotoxic effects of ex vivo-expanded natural killer cell-enriched lymphocytes (MYJ1633) against liver cancer. BMC Cancer. 2019;19:817 pubmed 出版商
  30. 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
  31. Xia Y, Gao Y, Wang B, Zhang H, Zhang Q. Optimizing the Method of Cell Separation from Bile of Patients with Cholangiocarcinoma for Flow Cytometry. Gastroenterol Res Pract. 2019;2019:5436961 pubmed 出版商
  32. Stuart T, Butler A, Hoffman P, Hafemeister C, Papalexi E, Mauck W, et al. Comprehensive Integration of Single-Cell Data. Cell. 2019;: pubmed 出版商
  33. 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
  34. Ling C, Nishimoto K, Rolfs Z, Smith L, Frey B, Welham N. Differentiated fibrocytes assume a functional mesenchymal phenotype with regenerative potential. Sci Adv. 2019;5:eaav7384 pubmed 出版商
  35. Fernandez I, Baxter R, Garcia Perez J, Vendrame E, Ranganath T, Kong D, et al. A novel human IL2RB mutation results in T and NK cell-driven immune dysregulation. J Exp Med. 2019;216:1255-1267 pubmed 出版商
  36. Wagner J, Rapsomaniki M, Chevrier S, Anzeneder T, Langwieder C, Dykgers A, et al. A Single-Cell Atlas of the Tumor and Immune Ecosystem of Human Breast Cancer. Cell. 2019;177:1330-1345.e18 pubmed 出版商
  37. Cassetta L, Fragkogianni S, Sims A, Swierczak A, Forrester L, Zhang H, et al. Human Tumor-Associated Macrophage and Monocyte Transcriptional Landscapes Reveal Cancer-Specific Reprogramming, Biomarkers, and Therapeutic Targets. Cancer Cell. 2019;35:588-602.e10 pubmed 出版商
  38. Bottermann M, Foss S, Caddy S, Clift D, van Tienen L, Vaysburd M, et al. Complement C4 Prevents Viral Infection through Capsid Inactivation. Cell Host Microbe. 2019;25:617-629.e7 pubmed 出版商
  39. 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
  40. Chakarov S, Lim H, Tan L, Lim S, See P, Lum J, et al. Two distinct interstitial macrophage populations coexist across tissues in specific subtissular niches. Science. 2019;363: pubmed 出版商
  41. Sachdeva M, Duchateau P, Depil S, Poirot L, Valton J. Granulocyte-macrophage colony-stimulating factor inactivation in CAR T-cells prevents monocyte-dependent release of key cytokine release syndrome mediators. J Biol Chem. 2019;294:5430-5437 pubmed 出版商
  42. Guo L, Chen G, Zhang W, Zhou L, Xiao T, Di X, et al. A high-risk luminal A dominant breast cancer subtype with increased mobility. Breast Cancer Res Treat. 2019;175:459-472 pubmed 出版商
  43. 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
  44. Golay J, Valgardsdottir R, Musaraj G, Giupponi D, Spinelli O, Introna M. Human neutrophils express low levels of FcγRIIIA, which plays a role in PMN activation. Blood. 2019;: pubmed 出版商
  45. 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
  46. Buchrieser J, Oliva Martin M, Moore M, Long J, Cowley S, Perez Simon J, et al. RIPK1 is a critical modulator of both tonic and TLR-responsive inflammatory and cell death pathways in human macrophage differentiation. Cell Death Dis. 2018;9:973 pubmed 出版商
  47. Olin A, Henckel E, Chen Y, Lakshmikanth T, Pou C, Mikes J, et al. Stereotypic Immune System Development in Newborn Children. Cell. 2018;174:1277-1292.e14 pubmed 出版商
  48. Kong X, Martinez Barricarte R, Kennedy J, Mele F, Lazarov T, Deenick E, et al. Disruption of an antimycobacterial circuit between dendritic and helper T cells in human SPPL2a deficiency. Nat Immunol. 2018;19:973-985 pubmed 出版商
  49. Chennupati V, Veiga D, Maslowski K, Andina N, Tardivel A, Yu E, et al. Ribonuclease inhibitor 1 regulates erythropoiesis by controlling GATA1 translation. J Clin Invest. 2018;128:1597-1614 pubmed 出版商
  50. Pugh J, Nemat Gorgani N, Norman P, Guethlein L, Parham P. Human NK Cells Downregulate Zap70 and Syk in Response to Prolonged Activation or DNA Damage. J Immunol. 2018;200:1146-1158 pubmed 出版商
  51. Vitallé J, Zenarruzabeitia O, Terrén I, Plana M, Guardo A, Leal L, et al. Monocytes Phenotype and Cytokine Production in Human Immunodeficiency Virus-1 Infected Patients Receiving a Modified Vaccinia Ankara-Based HIV-1 Vaccine: Relationship to CD300 Molecules Expression. Front Immunol. 2017;8:836 pubmed 出版商
  52. Blázquez Moreno A, Park S, Im W, Call M, Call M, Reyburn H. Transmembrane features governing Fc receptor CD16A assembly with CD16A signaling adaptor molecules. Proc Natl Acad Sci U S A. 2017;114:E5645-E5654 pubmed 出版商
  53. Dulberger C, McMurtrey C, Hölzemer A, Neu K, Liu V, Steinbach A, et al. Human Leukocyte Antigen F Presents Peptides and Regulates Immunity through Interactions with NK Cell Receptors. Immunity. 2017;46:1018-1029.e7 pubmed 出版商
  54. van den Bosch T, Caliskan K, Kraaij M, Constantinescu A, Manintveld O, Leenen P, et al. CD16+ Monocytes and Skewed Macrophage Polarization toward M2 Type Hallmark Heart Transplant Acute Cellular Rejection. Front Immunol. 2017;8:346 pubmed 出版商
  55. Chimen M, Yates C, McGettrick H, Ward L, Harrison M, Apta B, et al. Monocyte Subsets Coregulate Inflammatory Responses by Integrated Signaling through TNF and IL-6 at the Endothelial Cell Interface. J Immunol. 2017;198:2834-2843 pubmed 出版商
  56. Esnault S, Johansson M, Kelly E, Koenderman L, Mosher D, Jarjour N. IL-3 up-regulates and activates human eosinophil CD32 and αMβ2 integrin causing degranulation. Clin Exp Allergy. 2017;47:488-498 pubmed 出版商
  57. Su J, Zhou H, Liu X, Nilsson J, Fredrikson G, Zhao M. oxLDL antibody inhibits MCP-1 release in monocytes/macrophages by regulating Ca2+ /K+ channel flow. J Cell Mol Med. 2017;21:929-940 pubmed 出版商
  58. Kasturi S, Kozlowski P, Nakaya H, Burger M, Russo P, Pham M, et al. Adjuvanting a Simian Immunodeficiency Virus Vaccine with Toll-Like Receptor Ligands Encapsulated in Nanoparticles Induces Persistent Antibody Responses and Enhanced Protection in TRIM5α Restrictive Macaques. J Virol. 2017;91: pubmed 出版商
  59. Zhu H, Hu F, Sun X, Zhang X, Zhu L, Liu X, et al. CD16+ Monocyte Subset Was Enriched and Functionally Exacerbated in Driving T-Cell Activation and B-Cell Response in Systemic Lupus Erythematosus. Front Immunol. 2016;7:512 pubmed
  60. Rathod K, Kapil V, Velmurugan S, Khambata R, Siddique U, Khan S, et al. Accelerated resolution of inflammation underlies sex differences in inflammatory responses in humans. J Clin Invest. 2017;127:169-182 pubmed 出版商
  61. Mildner A, Huang H, Radke J, Stenzel W, Priller J. P2Y12 receptor is expressed on human microglia under physiological conditions throughout development and is sensitive to neuroinflammatory diseases. Glia. 2017;65:375-387 pubmed 出版商
  62. Senbabaoglu Y, Gejman R, Winer A, Liu M, Van Allen E, de Velasco G, et al. Tumor immune microenvironment characterization in clear cell renal cell carcinoma identifies prognostic and immunotherapeutically relevant messenger RNA signatures. Genome Biol. 2016;17:231 pubmed
  63. 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
  64. Yeap W, Wong K, Shimasaki N, Teo E, Quek J, Yong H, et al. CD16 is indispensable for antibody-dependent cellular cytotoxicity by human monocytes. Sci Rep. 2016;6:34310 pubmed 出版商
  65. Foerster F, Bamberger D, Schupp J, Weilbächer M, Kaps L, Strobl S, et al. Dextran-based therapeutic nanoparticles for hepatic drug delivery. Nanomedicine (Lond). 2016;11:2663-2677 pubmed
  66. 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
  67. Zenarruzabeitia O, Vitallé J, Garcia Obregon S, Astigarraga I, Eguizabal C, Santos S, et al. The expression and function of human CD300 receptors on blood circulating mononuclear cells are distinct in neonates and adults. Sci Rep. 2016;6:32693 pubmed 出版商
  68. Beatson R, Tajadura Ortega V, Achkova D, Picco G, Tsourouktsoglou T, Klausing S, et al. The mucin MUC1 modulates the tumor immunological microenvironment through engagement of the lectin Siglec-9. Nat Immunol. 2016;17:1273-1281 pubmed 出版商
  69. Demers K, Makedonas G, Buggert M, Eller M, Ratcliffe S, Goonetilleke N, et al. Temporal Dynamics of CD8+ T Cell Effector Responses during Primary HIV Infection. PLoS Pathog. 2016;12:e1005805 pubmed 出版商
  70. Sullivan K, Lewis H, Hill A, Pandey A, Jackson L, Cabral J, et al. Trisomy 21 consistently activates the interferon response. elife. 2016;5: pubmed 出版商
  71. Williams D, Engle E, Shirk E, Queen S, Gama L, Mankowski J, et al. Splenic Damage during SIV Infection: Role of T-Cell Depletion and Macrophage Polarization and Infection. Am J Pathol. 2016;186:2068-2087 pubmed 出版商
  72. Wonner R, Wallner S, Orso E, Schmitz G. Effects of acute exercise on monocyte subpopulations in metabolic syndrome patients. Cytometry B Clin Cytom. 2018;94:596-605 pubmed 出版商
  73. Yin W, Tong S, Zhang Q, Shao J, Liu Q, Peng H, et al. Functional dichotomy of Vδ2 γδ T cells in chronic hepatitis C virus infections: role in cytotoxicity but not for IFN-γ production. Sci Rep. 2016;6:26296 pubmed 出版商
  74. 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
  75. Hohos N, Lee K, Ji L, Yu M, Kandasamy M, Phillips B, et al. DNA cytosine hydroxymethylation levels are distinct among non-overlapping classes of peripheral blood leukocytes. J Immunol Methods. 2016;436:1-15 pubmed 出版商
  76. Liao R, Jiang N, Tang Z, Li D, Huang P, Luo S, et al. Systemic and intratumoral balances between monocytes/macrophages and lymphocytes predict prognosis in hepatocellular carcinoma patients after surgery. Oncotarget. 2016;7:30951-61 pubmed 出版商
  77. Coughlin J, Masci A, Gronke R, Bergelson S, Co C. A simple enzyme-substrate localized conjugation method to generate immobilized, functional glutathione S-transferase fusion protein columns for affinity enrichment. Anal Biochem. 2016;505:51-8 pubmed 出版商
  78. Dimitrova M, Zenarruzabeitia O, Borrego F, Simhadri V. CD300c is uniquely expressed on CD56 bright Natural Killer Cells and differs from CD300a upon ligand recognition. Sci Rep. 2016;6:23942 pubmed 出版商
  79. Parameswaran R, Ramakrishnan P, Moreton S, Xia Z, Hou Y, Lee D, et al. Repression of GSK3 restores NK cell cytotoxicity in AML patients. Nat Commun. 2016;7:11154 pubmed 出版商
  80. Keyvani Chahi A, Martin C, Jones N. Nephrin Suppresses Hippo Signaling through the Adaptor Proteins Nck and WTIP. J Biol Chem. 2016;291:12799-808 pubmed 出版商
  81. Leone D, Kozakowski N, Kornauth C, Waidacher T, Neudert B, Loeffler A, et al. The Phenotypic Characterization of the Human Renal Mononuclear Phagocytes Reveal a Co-Ordinated Response to Injury. PLoS ONE. 2016;11:e0151674 pubmed 出版商
  82. Lakschevitz F, Hassanpour S, Rubin A, Fine N, Sun C, Glogauer M. Identification of neutrophil surface marker changes in health and inflammation using high-throughput screening flow cytometry. Exp Cell Res. 2016;342:200-9 pubmed 出版商
  83. Bartlett D, Fox O, McNulty C, Greenwood H, Murphy L, Sapey E, et al. Habitual physical activity is associated with the maintenance of neutrophil migratory dynamics in healthy older adults. Brain Behav Immun. 2016;56:12-20 pubmed 出版商
  84. Ludigs K, Jandus C, Utzschneider D, Staehli F, Bessoles S, Dang A, et al. NLRC5 shields T lymphocytes from NK-cell-mediated elimination under inflammatory conditions. Nat Commun. 2016;7:10554 pubmed 出版商
  85. Mewhort H, Lipon B, Svystonyuk D, Teng G, Guzzardi D, Silva C, et al. Monocytes increase human cardiac myofibroblast-mediated extracellular matrix remodeling through TGF-β1. Am J Physiol Heart Circ Physiol. 2016;310:H716-24 pubmed 出版商
  86. Westman J, Papareddy P, Dahlgren M, Chakrakodi B, Norrby Teglund A, Smeds E, et al. Extracellular Histones Induce Chemokine Production in Whole Blood Ex Vivo and Leukocyte Recruitment In Vivo. PLoS Pathog. 2015;11:e1005319 pubmed 出版商
  87. Borinskaya S, Velle K, Campellone K, Talman A, Alvarez D, Agaisse H, et al. Integration of linear and dendritic actin nucleation in Nck-induced actin comets. Mol Biol Cell. 2016;27:247-59 pubmed 出版商
  88. He Y, Wang C, Yu Y, Qian J, Song K, Sun Q, et al. Tie2-Expressing Monocytes Are Associated with Identification and Prognoses of Hepatitis B Virus Related Hepatocellular Carcinoma after Resection. PLoS ONE. 2015;10:e0143657 pubmed 出版商
  89. EskicioÄŸlu F, Özdemir A, Özdemir R, Turan G, Akan Z, Hasdemir S. The association of HLA-G and immune markers in recurrent miscarriages. J Matern Fetal Neonatal Med. 2016;29:3056-60 pubmed 出版商
  90. Venkatasubramanian S, Tripathi D, Tucker T, Paidipally P, Cheekatla S, Welch E, et al. Tissue factor expression by myeloid cells contributes to protective immune response against Mycobacterium tuberculosis infection. Eur J Immunol. 2016;46:464-79 pubmed 出版商
  91. Schulz A, Mälzer J, Domingo C, Jürchott K, Grützkau A, Babel N, et al. Low Thymic Activity and Dendritic Cell Numbers Are Associated with the Immune Response to Primary Viral Infection in Elderly Humans. J Immunol. 2015;195:4699-711 pubmed 出版商
  92. Sakthivel P, Grunewald J, Eklund A, Bruder D, Wahlström J. Pulmonary sarcoidosis is associated with high-level inducible co-stimulator (ICOS) expression on lung regulatory T cells--possible implications for the ICOS/ICOS-ligand axis in disease course and resolution. Clin Exp Immunol. 2016;183:294-306 pubmed 出版商
  93. WILLIAMS K, KILLEBREW D, Clary G, Seawell J, Meeker R. Differential regulation of macrophage phenotype by mature and pro-nerve growth factor. J Neuroimmunol. 2015;285:76-93 pubmed 出版商
  94. Amos J, Himes J, Armand L, Gurley T, Martinez D, Colvin L, et al. Rapid Development of gp120-Focused Neutralizing B Cell Responses during Acute Simian Immunodeficiency Virus Infection of African Green Monkeys. J Virol. 2015;89:9485-98 pubmed 出版商
  95. Mende N, Kuchen E, Lesche M, Grinenko T, Kokkaliaris K, Hanenberg H, et al. CCND1-CDK4-mediated cell cycle progression provides a competitive advantage for human hematopoietic stem cells in vivo. J Exp Med. 2015;212:1171-83 pubmed 出版商
  96. O Brien E, Abdulahad W, Rutgers A, Huitema M, O Reilly V, Coughlan A, et al. Intermediate monocytes in ANCA vasculitis: increased surface expression of ANCA autoantigens and IL-1β secretion in response to anti-MPO antibodies. Sci Rep. 2015;5:11888 pubmed 出版商
  97. Chalan P, Bijzet J, Huitema M, Kroesen B, Brouwer E, Boots A. Expression of Lectin-Like Transcript 1, the Ligand for CD161, in Rheumatoid Arthritis. PLoS ONE. 2015;10:e0132436 pubmed 出版商
  98. Chowdhury A, Hayes T, Bosinger S, Lawson B, Vanderford T, Schmitz J, et al. Differential Impact of In Vivo CD8+ T Lymphocyte Depletion in Controller versus Progressor Simian Immunodeficiency Virus-Infected Macaques. J Virol. 2015;89:8677-86 pubmed 出版商
  99. Fromm J, Tagliente D, Shaver A, Neppalli V, Craig F. Case study interpretation: Report from the ICCS Annual Meeting, Seattle, 2014. Cytometry B Clin Cytom. 2015;88:413-24 pubmed 出版商
  100. Weldon A, Moldovan I, Cabling M, Hernandez E, Hsu S, Gonzalez J, et al. Surface APRIL Is Elevated on Myeloid Cells and Is Associated with Disease Activity in Patients with Rheumatoid Arthritis. J Rheumatol. 2015;42:749-59 pubmed 出版商
  101. Rönn R, Guibentif C, Moraghebi R, Chaves P, Saxena S, Garcia B, et al. Retinoic acid regulates hematopoietic development from human pluripotent stem cells. Stem Cell Reports. 2015;4:269-81 pubmed 出版商
  102. Chauhan A, Chen C, Moore T, DiPaolo R. Induced expression of FcγRIIIa (CD16a) on CD4+ T cells triggers generation of IFN-γhigh subset. J Biol Chem. 2015;290:5127-40 pubmed 出版商
  103. Hünniger K, Bieber K, Martin R, Lehnert T, Figge M, Löffler J, et al. A second stimulus required for enhanced antifungal activity of human neutrophils in blood is provided by anaphylatoxin C5a. J Immunol. 2015;194:1199-210 pubmed 出版商
  104. Hartung E, Becker M, Bachem A, Reeg N, Jäkel A, Hutloff A, et al. Induction of potent CD8 T cell cytotoxicity by specific targeting of antigen to cross-presenting dendritic cells in vivo via murine or human XCR1. J Immunol. 2015;194:1069-79 pubmed 出版商
  105. Stacchini A, Pacchioni D, Demurtas A, Aliberti S, Cassenti A, Isolato G, et al. Utilility of flow cytometry as ancillary study to improve the cytologic diagnosis of thyroid lymphomas. Cytometry B Clin Cytom. 2015;88:320-9 pubmed 出版商
  106. Presnell S, Al Attar A, Cichocki F, Miller J, Lutz C. Human natural killer cell microRNA: differential expression of MIR181A1B1 and MIR181A2B2 genes encoding identical mature microRNAs. Genes Immun. 2015;16:89-98 pubmed 出版商
  107. Mandl M, Schmitz S, Weber C, Hristov M. Characterization of the CD14++CD16+ monocyte population in human bone marrow. PLoS ONE. 2014;9:e112140 pubmed 出版商
  108. Mohanty S, Joshi S, Ueda I, Wilson J, Blevins T, Siconolfi B, et al. Prolonged proinflammatory cytokine production in monocytes modulated by interleukin 10 after influenza vaccination in older adults. J Infect Dis. 2015;211:1174-84 pubmed 出版商
  109. Boltjes A, van Montfoort N, Biesta P, Op den Brouw M, Kwekkeboom J, van der Laan L, et al. Kupffer cells interact with hepatitis B surface antigen in vivo and in vitro, leading to proinflammatory cytokine production and natural killer cell function. J Infect Dis. 2015;211:1268-78 pubmed 出版商
  110. Liu H, Yang B, Sun T, Lin L, Hu Y, Deng M, et al. Specific growth inhibition of ErbB2‑expressing human breast cancer cells by genetically modified NK‑92 cells. Oncol Rep. 2015;33:95-102 pubmed 出版商
  111. Armour K, Smith C, Ip N, Ellison C, Kirton C, Wilkes A, et al. Clearance of human IgG1-sensitised red blood cells in vivo in humans relates to the in vitro properties of antibodies from alternative cell lines. PLoS ONE. 2014;9:e109463 pubmed 出版商
  112. Chao Y, Kaliaperumal N, Chretien A, Tang S, Lee B, Poidinger M, et al. Human plasmacytoid dendritic cells regulate IFN-α production through activation-induced splicing of IL-18Rα. J Leukoc Biol. 2014;96:1037-46 pubmed 出版商
  113. Holder G, McGary C, Johnson E, Zheng R, John V, Sugimoto C, et al. Expression of the mannose receptor CD206 in HIV and SIV encephalitis: a phenotypic switch of brain perivascular macrophages with virus infection. J Neuroimmune Pharmacol. 2014;9:716-26 pubmed 出版商
  114. Kobie J, Treanor J, Ritchlin C. Transient decrease in human peripheral blood myeloid dendritic cells following influenza vaccination correlates with induction of serum antibody. Immunol Invest. 2014;43:606-15 pubmed 出版商
  115. Jiang B, Wu X, Li X, Yang X, Zhou Y, Yan H, et al. Expansion of NK cells by engineered K562 cells co-expressing 4-1BBL and mMICA, combined with soluble IL-21. Cell Immunol. 2014;290:10-20 pubmed 出版商
  116. Jitschin R, Braun M, Büttner M, Dettmer Wilde K, Bricks J, Berger J, et al. CLL-cells induce IDOhi CD14+HLA-DRlo myeloid-derived suppressor cells that inhibit T-cell responses and promote TRegs. Blood. 2014;124:750-60 pubmed 出版商
  117. Wilson E, Singh A, Hullsiek K, Gibson D, Henry W, Lichtenstein K, et al. Monocyte-activation phenotypes are associated with biomarkers of inflammation and coagulation in chronic HIV infection. J Infect Dis. 2014;210:1396-406 pubmed 出版商
  118. Barbosa R, Silva S, Silva S, Melo A, Pereira Santos M, Barata J, et al. Reduced BAFF-R and increased TACI expression in common variable immunodeficiency. J Clin Immunol. 2014;34:573-83 pubmed 出版商
  119. Reusch U, Burkhardt C, Fucek I, Le Gall F, Le Gall M, Hoffmann K, et al. A novel tetravalent bispecific TandAb (CD30/CD16A) efficiently recruits NK cells for the lysis of CD30+ tumor cells. MAbs. 2014;6:728-39 pubmed 出版商
  120. Düvel A, Maaß J, Heppelmann M, Hussen J, Koy M, Piechotta M, et al. Peripheral blood leukocytes of cows with subclinical endometritis show an altered cellular composition and gene expression. Theriogenology. 2014;81:906-17 pubmed 出版商
  121. Duggal N, Beswetherick A, Upton J, Hampson P, Phillips A, Lord J. Depressive symptoms in hip fracture patients are associated with reduced monocyte superoxide production. Exp Gerontol. 2014;54:27-34 pubmed 出版商
  122. Sereti I, Estes J, Thompson W, Morcock D, Fischl M, Croughs T, et al. Decreases in colonic and systemic inflammation in chronic HIV infection after IL-7 administration. PLoS Pathog. 2014;10:e1003890 pubmed 出版商
  123. Kragstrup T, Jalilian B, Hvid M, Kjærgaard A, Østgård R, Schiøttz Christensen B, et al. Decreased plasma levels of soluble CD18 link leukocyte infiltration with disease activity in spondyloarthritis. Arthritis Res Ther. 2014;16:R42 pubmed 出版商
  124. Cepeda M, Salas M, Folwarczny J, Leandro A, Hodara V, De La Garza M, et al. Establishment of a neonatal rhesus macaque model to study Mycobacterium tuberculosis infection. Tuberculosis (Edinb). 2013;93 Suppl:S51-9 pubmed 出版商
  125. Babu R, Brown A. A consensus surface activation marker signature is partially dependent on human immunodeficiency virus type 1 Nef expression within productively infected macrophages. Retrovirology. 2013;10:155 pubmed 出版商
  126. Kumpel B, Hazell M, Guest A, Dixey J, Mushens R, Bishop D, et al. Accurate quantitation of D+ fetomaternal hemorrhage by flow cytometry using a novel reagent to eliminate granulocytes from analysis. Transfusion. 2014;54:1305-16 pubmed 出版商
  127. Chicoine L, Rodino Klapac L, Shao G, Xu R, Bremer W, Camboni M, et al. Vascular delivery of rAAVrh74.MCK.GALGT2 to the gastrocnemius muscle of the rhesus macaque stimulates the expression of dystrophin and laminin ?2 surrogates. Mol Ther. 2014;22:713-24 pubmed 出版商
  128. Stacchini A, Aliberti S, Pacchioni D, Demurtas A, Isolato G, Gazzera C, et al. Flow cytometry significantly improves the diagnostic value of fine needle aspiration cytology of lymphoproliferative lesions of salivary glands. Cytopathology. 2014;25:231-40 pubmed 出版商
  129. Wiernik A, Foley B, Zhang B, Verneris M, Warlick E, Gleason M, et al. Targeting natural killer cells to acute myeloid leukemia in vitro with a CD16 x 33 bispecific killer cell engager and ADAM17 inhibition. Clin Cancer Res. 2013;19:3844-55 pubmed 出版商
  130. Algra S, Groeneveld K, Schadenberg A, Haas F, Evens F, Meerding J, et al. Cerebral ischemia initiates an immediate innate immune response in neonates during cardiac surgery. J Neuroinflammation. 2013;10:24 pubmed 出版商
  131. He Y, He X, Guo P, Du M, Shao J, Li M, et al. The decidual stromal cells-secreted CCL2 induces and maintains decidual leukocytes into Th2 bias in human early pregnancy. Clin Immunol. 2012;145:161-73 pubmed 出版商
  132. Daigneault M, de Silva T, Bewley M, Preston J, Marriott H, Mitchell A, et al. Monocytes regulate the mechanism of T-cell death by inducing Fas-mediated apoptosis during bacterial infection. PLoS Pathog. 2012;8:e1002814 pubmed 出版商
  133. Kvistborg P, Shu C, Heemskerk B, Fankhauser M, Thrue C, Toebes M, et al. TIL therapy broadens the tumor-reactive CD8(+) T cell compartment in melanoma patients. Oncoimmunology. 2012;1:409-418 pubmed
  134. Seu L, Burt T, Witte J, Martin J, Deeks S, McCune J. Variations in the heme oxygenase-1 microsatellite polymorphism are associated with plasma CD14 and viral load in HIV-infected African-Americans. Genes Immun. 2012;13:258-67 pubmed 出版商
  135. Luiza Silva M, Campi Azevedo A, Batista M, Martins M, Avelar R, da Silveira Lemos D, et al. Cytokine signatures of innate and adaptive immunity in 17DD yellow fever vaccinated children and its association with the level of neutralizing antibody. J Infect Dis. 2011;204:873-83 pubmed 出版商
  136. 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
  137. Bratke K, Klein C, Kuepper M, Lommatzsch M, Virchow J. Differential development of plasmacytoid dendritic cells in Th1- and Th2-like cytokine milieus. Allergy. 2011;66:386-95 pubmed 出版商
  138. Rout N, Else J, Yue S, Connole M, Exley M, Kaur A. Heterogeneity in phenotype and function of CD8+ and CD4/CD8 double-negative Natural Killer T cell subsets in sooty mangabeys. J Med Primatol. 2010;39:224-34 pubmed 出版商
  139. Fung E, Esposito L, Todd J, Wicker L. Multiplexed immunophenotyping of human antigen-presenting cells in whole blood by polychromatic flow cytometry. Nat Protoc. 2010;5:357-70 pubmed 出版商
  140. Schrauf C, Kirchberger S, Majdic O, Seyerl M, Zlabinger G, Stuhlmeier K, et al. The ssRNA genome of human rhinovirus induces a type I IFN response but fails to induce maturation in human monocyte-derived dendritic cells. J Immunol. 2009;183:4440-8 pubmed 出版商
  141. Tanaka M, Krutzik S, Sieling P, Lee D, Rea T, Modlin R. Activation of Fc gamma RI on monocytes triggers differentiation into immature dendritic cells that induce autoreactive T cell responses. J Immunol. 2009;183:2349-55 pubmed 出版商
  142. Hokey D, Yan J, Hirao L, Dai A, Boyer J, Jure Kunkel M, et al. CLTA-4 blockade in vivo promotes the generation of short-lived effector CD8 T cells and a more persistent central memory CD4 T cell response. J Med Primatol. 2008;37 Suppl 2:62-8 pubmed 出版商
  143. Giannelli S, Taddeo A, Presicce P, Villa M, Della Bella S. A six-color flow cytometric assay for the analysis of peripheral blood dendritic cells. Cytometry B Clin Cytom. 2008;74:349-55 pubmed 出版商
  144. Sathler Avelar R, Vitelli Avelar D, Massara R, de Lana M, Pinto Dias J, Teixeira Carvalho A, et al. Etiological treatment during early chronic indeterminate Chagas disease incites an activated status on innate and adaptive immunity associated with a type 1-modulated cytokine pattern. Microbes Infect. 2008;10:103-13 pubmed 出版商
  145. Lee D, Sieling P, Ochoa M, Krutzik S, Guo B, Hernandez M, et al. LILRA2 activation inhibits dendritic cell differentiation and antigen presentation to T cells. J Immunol. 2007;179:8128-36 pubmed
  146. Summers K, Marleau A, Mahon J, McManus R, Hramiak I, Singh B. Reduced IFN-alpha secretion by blood dendritic cells in human diabetes. Clin Immunol. 2006;121:81-9 pubmed
  147. Hirano N, Butler M, Xia Z, Ansén S, von Bergwelt Baildon M, Neuberg D, et al. Engagement of CD83 ligand induces prolonged expansion of CD8+ T cells and preferential enrichment for antigen specificity. Blood. 2006;107:1528-36 pubmed
  148. Siliciano J, Siliciano R. Enhanced culture assay for detection and quantitation of latently infected, resting CD4+ T-cells carrying replication-competent virus in HIV-1-infected individuals. Methods Mol Biol. 2005;304:3-15 pubmed
  149. Kirchberger S, Majdic O, Steinberger P, Bluml S, Pfistershammer K, Zlabinger G, et al. Human rhinoviruses inhibit the accessory function of dendritic cells by inducing sialoadhesin and B7-H1 expression. J Immunol. 2005;175:1145-52 pubmed
  150. Mittag A, Lenz D, Gerstner A, Sack U, Steinbrecher M, Koksch M, et al. Polychromatic (eight-color) slide-based cytometry for the phenotyping of leukocyte, NK, and NKT subsets. Cytometry A. 2005;65:103-15 pubmed
  151. Canonico B, Zamai L, Burattini S, Granger V, Mannello F, Gobbi P, et al. Evaluation of leukocyte stabilisation in TransFix-treated blood samples by flow cytometry and transmission electron microscopy. J Immunol Methods. 2004;295:67-78 pubmed
  152. Pfistershammer K, Majdic O, Stockl J, Zlabinger G, Kirchberger S, Steinberger P, et al. CD63 as an activation-linked T cell costimulatory element. J Immunol. 2004;173:6000-8 pubmed
  153. Eriksson M, Meadows S, Wira C, Sentman C. Unique phenotype of human uterine NK cells and their regulation by endogenous TGF-beta. J Leukoc Biol. 2004;76:667-75 pubmed
  154. Steinberger P, Majdic O, Derdak S, Pfistershammer K, Kirchberger S, Klauser C, et al. Molecular characterization of human 4Ig-B7-H3, a member of the B7 family with four Ig-like domains. J Immunol. 2004;172:2352-9 pubmed
  155. Suskind D, Muench M. Searching for common stem cells of the hepatic and hematopoietic systems in the human fetal liver: CD34+ cytokeratin 7/8+ cells express markers for stellate cells. J Hepatol. 2004;40:261-8 pubmed
  156. Rahimi K, Maerz H, Zotz R, Tarnok A. Pre-procedural expression of Mac-1 and LFA-1 on leukocytes for prediction of late restenosis and their possible correlation with advanced coronary artery disease. Cytometry B Clin Cytom. 2003;53:63-9 pubmed
  157. Selenko Gebauer N, Majdic O, Szekeres A, Höfler G, Guthann E, Korthauer U, et al. B7-H1 (programmed death-1 ligand) on dendritic cells is involved in the induction and maintenance of T cell anergy. J Immunol. 2003;170:3637-44 pubmed
  158. Manz M, Miyamoto T, Akashi K, Weissman I. Prospective isolation of human clonogenic common myeloid progenitors. Proc Natl Acad Sci U S A. 2002;99:11872-7 pubmed
  159. Di Bona E, Sartori R, Zambello R, Guercini N, Madeo D, Rodeghiero F. Prognostic significance of CD56 antigen expression in acute myeloid leukemia. Haematologica. 2002;87:250-6 pubmed
  160. McIlroy D, Troadec C, Grassi F, Samri A, Barrou B, Autran B, et al. Investigation of human spleen dendritic cell phenotype and distribution reveals evidence of in vivo activation in a subset of organ donors. Blood. 2001;97:3470-7 pubmed
  161. Sharron M, Pohlmann S, Price K, Lolis E, Tsang M, Kirchhoff F, et al. Expression and coreceptor activity of STRL33/Bonzo on primary peripheral blood lymphocytes. Blood. 2000;96:41-9 pubmed
  162. Gopinath R, Hanna L, Kumaraswami V, Perumal V, Kavitha V, Vijayasekaran V, et al. Perturbations in eosinophil homeostasis following treatment of lymphatic filariasis. Infect Immun. 2000;68:93-9 pubmed
  163. Lee B, Sharron M, Montaner L, Weissman D, Doms R. Quantification of CD4, CCR5, and CXCR4 levels on lymphocyte subsets, dendritic cells, and differentially conditioned monocyte-derived macrophages. Proc Natl Acad Sci U S A. 1999;96:5215-20 pubmed
  164. Ravetch J, Perussia B. Alternative membrane forms of Fc gamma RIII(CD16) on human natural killer cells and neutrophils. Cell type-specific expression of two genes that differ in single nucleotide substitutions. J Exp Med. 1989;170:481-97 pubmed
  165. Peltz G, Grundy H, Lebo R, Yssel H, Barsh G, Moore K. Human Fc gamma RIII: cloning, expression, and identification of the chromosomal locus of two Fc receptors for IgG. Proc Natl Acad Sci U S A. 1989;86:1013-7 pubmed