这是一篇来自已证抗体库的有关人类 MAPK10的综述,是根据909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MAPK10 抗体。
MAPK10 同义词: JNK3; JNK3A; PRKM10; SAPK1b; p493F12; p54bSAPK

圣克鲁斯生物技术
小鼠 单克隆(D-2)
  • 免疫印迹; 人类; 1:1000; 图 1a
  • 免疫印迹; 小鼠; 1:1000; 图 1n, s1h
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 1a) 和 被用于免疫印迹在小鼠样本上浓度为1:1000 (图 1n, s1h). Nat Commun (2022) ncbi
小鼠 单克隆(G-7)
  • 免疫组化-石蜡切片; 大鼠; 图 4b
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, SC-6254)被用于被用于免疫组化-石蜡切片在大鼠样本上 (图 4b). Oxid Med Cell Longev (2022) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 小鼠; 1:2000; 图 s1h
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 s1h). J Cell Sci (2022) ncbi
小鼠 单克隆(G-7)
  • 免疫组化; 大鼠; 1:4000
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc- 6254)被用于被用于免疫组化在大鼠样本上浓度为1:4000. J Inflamm Res (2020) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 1:200; 图 5a
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz biotechnology, sc-6254)被用于被用于免疫印迹在人类样本上浓度为1:200 (图 5a). Oncogenesis (2020) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 小鼠; 图 5f
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-7345)被用于被用于免疫印迹在小鼠样本上 (图 5f). Cell Rep (2019) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠; 图 5f
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫印迹在小鼠样本上 (图 5f). Cell Rep (2019) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠; 1:500; 图 5c
圣克鲁斯生物技术 MAPK10抗体(Santa, sc-6254)被用于被用于免疫印迹在小鼠样本上浓度为1:500 (图 5c). Front Mol Neurosci (2019) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 图 4j
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在人类样本上 (图 4j). Nat Cell Biol (2019) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 大鼠; 1:500; 图 7
圣克鲁斯生物技术 MAPK10抗体(Santa, sc-6254)被用于被用于免疫印迹在大鼠样本上浓度为1:500 (图 7). J Pain Res (2018) ncbi
小鼠 单克隆(9H8)
  • 免疫印迹; 人类; 图 1b
圣克鲁斯生物技术 MAPK10抗体(Santa, sc-81502)被用于被用于免疫印迹在人类样本上 (图 1b). Cell Mol Immunol (2018) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 大鼠; 1:1000; 图 4b
圣克鲁斯生物技术 MAPK10抗体(SantaCruz, sc-7345)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 4b). Phytomedicine (2018) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 大鼠; 1:1000; 图 4b
圣克鲁斯生物技术 MAPK10抗体(SantaCruz, sc-6254)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 4b). Phytomedicine (2018) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠; 图 2c
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, SC6254)被用于被用于免疫印迹在小鼠样本上 (图 2c). J Nutr Biochem (2017) ncbi
小鼠 单克隆(G-7)
  • 免疫组化; 小鼠; 1:100; 图 3
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫组化在小鼠样本上浓度为1:100 (图 3). Hum Mol Genet (2017) ncbi
小鼠 单克隆(G-7)
  • 免疫细胞化学; 人类; 1:50; 图 1a
圣克鲁斯生物技术 MAPK10抗体(SantaCruz, sc-6254)被用于被用于免疫细胞化学在人类样本上浓度为1:50 (图 1a). J Virol (2017) ncbi
小鼠 单克隆(G-7)
  • 免疫细胞化学; 小鼠; 1:100; 图 1a
圣克鲁斯生物技术 MAPK10抗体(SantaCruz, 6254)被用于被用于免疫细胞化学在小鼠样本上浓度为1:100 (图 1a). Neural Plast (2017) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 图 s2b
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在人类样本上 (图 s2b). Sci Rep (2017) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠; 图 6
圣克鲁斯生物技术 MAPK10抗体(SantaCruz, sc-6254)被用于被用于免疫印迹在小鼠样本上 (图 6). J Ethnopharmacol (2017) ncbi
小鼠 单克隆(14.Thr 183/Tyr 185)
  • 免疫印迹; 人类; 1:500; 图 4a
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-293136)被用于被用于免疫印迹在人类样本上浓度为1:500 (图 4a). Exp Ther Med (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫细胞化学; 人类; 图 7e
  • 免疫印迹; 人类; 图 7e
圣克鲁斯生物技术 MAPK10抗体(SantaCruz, sc-7345)被用于被用于免疫细胞化学在人类样本上 (图 7e) 和 被用于免疫印迹在人类样本上 (图 7e). Expert Opin Ther Targets (2017) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 小鼠; 1:1000; 图 9a
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 9a). PLoS ONE (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 小鼠; 图 2a
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, SC-7345)被用于被用于免疫印迹在小鼠样本上 (图 2a). JCI Insight (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 小鼠; 图 6e
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, Sc-7345)被用于被用于免疫印迹在小鼠样本上 (图 6e). Am J Pathol (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 人类; 1:1000; 图 4a
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4a). Oncol Lett (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 1:1000; 图 4a
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4a). Oncol Lett (2016) ncbi
小鼠 单克隆(9H8)
  • 免疫印迹; 人类; 图 3c
圣克鲁斯生物技术 MAPK10抗体(SantaCruz, sc-81502)被用于被用于免疫印迹在人类样本上 (图 3c). Sci Rep (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 小鼠; 图 7a
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在小鼠样本上 (图 7a). J Immunol (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠; 图 7a
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在小鼠样本上 (图 7a). J Immunol (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 人类; 图 3
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在人类样本上 (图 3). Mol Med Rep (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 图 3
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在人类样本上 (图 3). Mol Med Rep (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 1:1000; 图 3
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, SC-6254)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 3). Cell Div (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 图 4a
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在人类样本上 (图 4a). PLoS ONE (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 小鼠; 1:200; 图 3
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在小鼠样本上浓度为1:200 (图 3). Exp Ther Med (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠; 图 2
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在小鼠样本上 (图 2). Sci Rep (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 大鼠; 1:500; 图 5a
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, 6254)被用于被用于免疫印迹在大鼠样本上浓度为1:500 (图 5a). Int J Endocrinol (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 小鼠; 图 7c
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-7345)被用于被用于免疫印迹在小鼠样本上 (图 7c). J Biol Chem (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠; 图 7c
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫印迹在小鼠样本上 (图 7c). J Biol Chem (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 图 4
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc6254)被用于被用于免疫印迹在人类样本上 (图 4). BMC Complement Altern Med (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 人类; 图 1b
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在人类样本上 (图 1b). Nat Cell Biol (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠; 图 5
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, SC-6254)被用于被用于免疫印迹在小鼠样本上 (图 5). Oncotarget (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 大鼠; 1:1000; 图 3
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 3). Mol Med Rep (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 大鼠; 1:1000; 图 3
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 3). Mol Med Rep (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 大鼠; 1:200; 图 4
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, SC-6254)被用于被用于免疫印迹在大鼠样本上浓度为1:200 (图 4). J Am Heart Assoc (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 人类; 1:1000; 图 4
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4). PLoS ONE (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 1:1000; 图 4
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4). PLoS ONE (2016) ncbi
小鼠 单克隆(14.Thr 183/Tyr 185)
  • 免疫印迹; 人类; 图 5
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, SC-293136)被用于被用于免疫印迹在人类样本上 (图 5). PLoS ONE (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 人类; 图 5
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, SC-7345)被用于被用于免疫印迹在人类样本上 (图 5). PLoS ONE (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠; 图 6b
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在小鼠样本上 (图 6b). Neurosci Lett (2016) ncbi
小鼠 单克隆(D-2)
  • 其他; 人类; 图 st1
圣克鲁斯生物技术 MAPK10抗体(SCBT, D-2)被用于被用于其他在人类样本上 (图 st1). Mol Cell Proteomics (2016) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 人类; 1:1000; 图 5
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5). Oncotarget (2016) ncbi
小鼠 单克隆(89.Thr 183/Tyr 185)
  • 免疫印迹; 人类; 1:1000; 图 5
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-293138)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5). Oncotarget (2016) ncbi
小鼠 单克隆(9H8)
  • 免疫印迹; 小鼠; 图 5
圣克鲁斯生物技术 MAPK10抗体(Santa, sc-81502)被用于被用于免疫印迹在小鼠样本上 (图 5). Sci Rep (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 1:500; 图 12
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在人类样本上浓度为1:500 (图 12). J Neuroinflammation (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠; 图 4d
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在小鼠样本上 (图 4d). ScientificWorldJournal (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 图 5c
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc6254)被用于被用于免疫印迹在人类样本上 (图 5c). Apoptosis (2016) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 1:1000; 图 3
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, SC-6254)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 3). J Cell Mol Med (2016) ncbi
小鼠 单克隆(9H8)
  • 免疫印迹; 人类; 图 2
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-81502)被用于被用于免疫印迹在人类样本上 (图 2). PLoS ONE (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫印迹在人类样本上. PLoS ONE (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Laboratories, SC6254)被用于被用于免疫印迹在人类样本上. PLoS ONE (2015) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 小鼠; 图 1
  • 免疫印迹; 人类; 图 s1
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在小鼠样本上 (图 1) 和 被用于免疫印迹在人类样本上 (图 s1). Sci Rep (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫组化-自由浮动切片; 大鼠
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫组化-自由浮动切片在大鼠样本上. Free Radic Biol Med (2015) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 大鼠; 1:500; 图 4
圣克鲁斯生物技术 MAPK10抗体(SantaCruz, sc-7345)被用于被用于免疫印迹在大鼠样本上浓度为1:500 (图 4). Mol Med Rep (2015) ncbi
小鼠 单克隆(9H8)
  • 免疫印迹; 大鼠; 1:500; 图 4
圣克鲁斯生物技术 MAPK10抗体(SantaCruz, sc-81502)被用于被用于免疫印迹在大鼠样本上浓度为1:500 (图 4). Mol Med Rep (2015) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 小鼠
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, SC-7345)被用于被用于免疫印迹在小鼠样本上. J Nutr Biochem (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 1:200; 图 4
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在人类样本上浓度为1:200 (图 4). Sci Rep (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 图 5
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, SC-6254)被用于被用于免疫印迹在人类样本上 (图 5). Br J Nutr (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 1:300
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫印迹在人类样本上浓度为1:300. Cell Signal (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 1:200
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫印迹在人类样本上浓度为1:200. Cell Mol Life Sci (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在人类样本上. PLoS ONE (2015) ncbi
小鼠 单克隆(4G6)
  • 免疫细胞化学; 人类
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-81469)被用于被用于免疫细胞化学在人类样本上. PLoS ONE (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫印迹在小鼠样本上. Vasc Cell (2014) ncbi
小鼠 单克隆(14.Thr 183/Tyr 185)
  • 免疫印迹; 小鼠; 图 4a
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-293136)被用于被用于免疫印迹在小鼠样本上 (图 4a). PLoS ONE (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠; 1:200
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, SC6254)被用于被用于免疫印迹在小鼠样本上浓度为1:200. Mol Cell Biol (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠; 1:200
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在小鼠样本上浓度为1:200. Invest Ophthalmol Vis Sci (2015) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 人类; 图 5
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在人类样本上 (图 5). ACS Chem Neurosci (2015) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 大鼠; 1:500
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-7345)被用于被用于免疫印迹在大鼠样本上浓度为1:500. Life Sci (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 大鼠; 1:100
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫印迹在大鼠样本上浓度为1:100. Life Sci (2015) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 人类; 图 3a
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在人类样本上 (图 3a). Oncotarget (2015) ncbi
小鼠 单克隆(14.Thr 183/Tyr 185)
  • 免疫印迹; 人类; 图 2
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-293136)被用于被用于免疫印迹在人类样本上 (图 2). Mol Immunol (2015) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, Sc-6254)被用于被用于免疫印迹在人类样本上. Cancer Lett (2015) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 人类
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在人类样本上. BMC Cancer (2014) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类
圣克鲁斯生物技术 MAPK10抗体(Santa, sc-6254)被用于被用于免疫印迹在人类样本上. elife (2014) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 1:200
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫印迹在人类样本上浓度为1:200. Biomed Res Int (2014) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在小鼠样本上. Toxicol In Vitro (2014) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 大鼠; 1:200
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在大鼠样本上浓度为1:200. Brain Res (2014) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 大鼠; 1:200
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在大鼠样本上浓度为1:200. Brain Res (2014) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫印迹在人类样本上. Free Radic Biol Med (2014) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫印迹在小鼠样本上. Exp Mol Med (2014) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 番茄
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, SC-6254)被用于被用于免疫印迹在番茄样本上. J Agric Food Chem (2014) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类; 图 s1
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-6254)被用于被用于免疫印迹在人类样本上 (图 s1). Mol Cancer Res (2014) ncbi
小鼠 单克隆(D-2)
  • 免疫印迹; 人类; 图 4a, 4b
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc-7345)被用于被用于免疫印迹在人类样本上 (图 4a, 4b). Int J Oncol (2014) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 小鼠
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, sc6254)被用于被用于免疫印迹在小鼠样本上. J Hepatol (2014) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz, SC-6254)被用于被用于免疫印迹在人类样本上. Diabetes (2013) ncbi
小鼠 单克隆(G-7)
  • 免疫印迹; 人类
圣克鲁斯生物技术 MAPK10抗体(Santa Cruz Biotechnology, sc-6254)被用于被用于免疫印迹在人类样本上. PLoS ONE (2013) ncbi
艾博抗(上海)贸易有限公司
domestic rabbit 单克隆(EPR16797-211)
  • 免疫印迹; 小鼠; 1:1000; 图 s7a
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab179461)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 s7a). J Immunother Cancer (2022) ncbi
domestic rabbit 单克隆(EPR16797-211)
  • 免疫印迹; 人类; 1:1000; 图 3d
艾博抗(上海)贸易有限公司 MAPK10抗体(abcam, ab179461)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 3d). Front Oncol (2021) ncbi
domestic rabbit 单克隆(EPR16797-211)
  • 免疫印迹; 小鼠; 图 6c
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab179461)被用于被用于免疫印迹在小鼠样本上 (图 6c). Antioxidants (Basel) (2021) ncbi
domestic rabbit 单克隆(EPR16797-211)
  • 免疫印迹; 小鼠; 图 4d
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab179461)被用于被用于免疫印迹在小鼠样本上 (图 4d). Redox Biol (2021) ncbi
domestic rabbit 单克隆(EPR16797-211)
  • 免疫组化; 小鼠; 1:1000; 图 9d
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab179461)被用于被用于免疫组化在小鼠样本上浓度为1:1000 (图 9d). Aging (Albany NY) (2020) ncbi
domestic rabbit 单克隆(EPR18841-95)
  • 免疫印迹; 小鼠; 图 6e
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab208035)被用于被用于免疫印迹在小鼠样本上 (图 6e). Cell Death Dis (2020) ncbi
domestic rabbit 单克隆(EPR18841-95)
  • 免疫印迹; 人类; 图 4h
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab208035)被用于被用于免疫印迹在人类样本上 (图 4h). Aging (Albany NY) (2019) ncbi
domestic rabbit 单克隆(EPR5493(2))
  • 免疫印迹; 人类; 1:2000; 图 4a
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab126591)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 4a). Int J Mol Med (2019) ncbi
domestic rabbit 单克隆(EPR16797-211)
  • 免疫印迹; 小鼠; 1:500; 图 5a
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab-179461)被用于被用于免疫印迹在小鼠样本上浓度为1:500 (图 5a). Am J Transl Res (2019) ncbi
domestic rabbit 单克隆(EPR16797-211)
  • 免疫印迹; 大鼠; 1:2000; 图 5a
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab179461)被用于被用于免疫印迹在大鼠样本上浓度为1:2000 (图 5a). Biosci Rep (2019) ncbi
domestic rabbit 单克隆(EPR16797-211)
  • 免疫印迹; 人类; 1:3000; 图 6d
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab179461)被用于被用于免疫印迹在人类样本上浓度为1:3000 (图 6d). J Exp Clin Cancer Res (2019) ncbi
domestic rabbit 单克隆(EPR18841-95)
  • 免疫印迹; 人类; 图 4d
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab208035)被用于被用于免疫印迹在人类样本上 (图 4d). Cancers (Basel) (2018) ncbi
domestic rabbit 单克隆(EPR18841-95)
  • 免疫印迹; 人类; 1:2000; 图 5c
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab208035)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 5c). Int J Mol Sci (2018) ncbi
domestic rabbit 单克隆(EPR16797-211)
  • 免疫细胞化学; 小鼠; 1:300; 图 5b
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab179461)被用于被用于免疫细胞化学在小鼠样本上浓度为1:300 (图 5b). J Cell Mol Med (2019) ncbi
domestic rabbit 单克隆(EPR16797-211)
  • 免疫印迹; 大鼠; 1:2000; 图 5c
艾博抗(上海)贸易有限公司 MAPK10抗体(Abcam, ab179461)被用于被用于免疫印迹在大鼠样本上浓度为1:2000 (图 5c). Stroke (2018) ncbi
安迪生物R&D
小鼠 单克隆(252355)
  • 免疫印迹; 人类; 1:1000; 图 4a
安迪生物R&D MAPK10抗体(R&D Systems, MAB1387)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4a). Diabetologia (2021) ncbi
亚诺法生技股份有限公司
小鼠 单克隆(4E12-1F7)
  • 免疫组化-石蜡切片; 人类; 1:500; 图 10b
亚诺法生技股份有限公司 MAPK10抗体(Abnova, H00005602-M01)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:500 (图 10b). Nat Commun (2015) ncbi
赛信通(上海)生物试剂有限公司
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 2a, 2c
  • 免疫印迹; 小鼠; 1:1000; 图 7g
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 2a, 2c) 和 被用于免疫印迹在小鼠样本上浓度为1:1000 (图 7g). Cell Death Discov (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 8g, 8h
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 8g, 8h). PLoS Pathog (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5b). Front Immunol (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 4c). Cell Death Dis (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 6a). Front Cardiovasc Med (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5b). Sci Adv (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4a, 4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上 (图 4a, 4b). Molecules (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5g
  • 免疫印迹; 小鼠; 1:1000; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370T)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5g) 和 被用于免疫印迹在小鼠样本上浓度为1:1000 (图 5b). Nat Commun (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s6a
  • 免疫印迹; 人类; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s6a) 和 被用于免疫印迹在人类样本上 (图 5a). Cancer Commun (Lond) (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6a, 6b, 6c, 6d
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上 (图 6a, 6b, 6c, 6d). Cell Oncol (Dordr) (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 人类; 图 4c
  • 免疫印迹; 人类; 图 4e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell SignalingTechnology, 4370)被用于被用于免疫组化在人类样本上 (图 4c) 和 被用于免疫印迹在人类样本上 (图 4e). J Cell Mol Med (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 3e
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 3e). Nat Commun (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3c, s3d
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上 (图 3c, s3d). J Immunother Cancer (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:400; 图 2h
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:400 (图 2h). Theranostics (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4a). Adv Sci (Weinh) (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2g, s2f, s2g
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370T)被用于被用于免疫印迹在人类样本上 (图 2g, s2f, s2g). Sci Adv (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370T)被用于被用于免疫印迹在人类样本上 (图 3a). Thorac Cancer (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:400; 图 1e
  • 免疫印迹; 小鼠; 1:2000; 图 1h, 4h
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)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 1e) 和 被用于免疫印迹在小鼠样本上浓度为1:2000 (图 1h, 4h). Nat Commun (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 4c). Cell Rep Med (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 4a
  • 免疫印迹; 小鼠; 图 1b, 3b, s11a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 4a) 和 被用于免疫印迹在小鼠样本上 (图 1b, 3b, s11a). Oncogene (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 斑马鱼; 1:100; 图 e3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在斑马鱼样本上浓度为1:100 (图 e3). Nature (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:10,000; 图 1e, 4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:10,000 (图 1e, 4b). BMC Pulm Med (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 2c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 2c). Lab Invest (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 2m
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 2m). Nat Commun (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5a). Front Immunol (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 3b). J Exp Med (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5g
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 5g). Int J Biol Sci (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 斑马鱼; 1:100; 图 7b
  • 免疫印迹; 斑马鱼; 1:2000; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在斑马鱼样本上浓度为1:100 (图 7b) 和 被用于免疫印迹在斑马鱼样本上浓度为1:2000 (图 7a). Front Cell Dev Biol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:200; 图 s4a
  • 免疫组化; 小鼠; 1:200; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)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 s4a) 和 被用于免疫组化在小鼠样本上浓度为1:200 (图 4a). Life Sci Alliance (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 3d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 3d). Cancers (Basel) (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 3a). J Cell Mol Med (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5a). Cancer Cell Int (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-自由浮动切片; 小鼠; 1:200; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫组化-自由浮动切片在小鼠样本上浓度为1:200 (图 5a). Nat Neurosci (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 1d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 1d). Dis Model Mech (2022) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 5a). Front Oncol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5b). Cell Death Discov (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 6g
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 6g). Front Immunol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:200; 图 4c
  • 免疫印迹; 小鼠; 1:1000; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:200 (图 4c) 和 被用于免疫印迹在小鼠样本上浓度为1:1000 (图 4a). Front Neurosci (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 4c). Cancers (Basel) (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 9a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上 (图 9a). Sci Adv (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 6a). Front Neurosci (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370s)被用于被用于免疫印迹在小鼠样本上 (图 7a). Int J Mol Sci (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上 (图 6a). Front Pharmacol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 人类; 1:250; 图 7c
  • 免疫细胞化学; 小鼠; 1:200; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫组化在人类样本上浓度为1:250 (图 7c) 和 被用于免疫细胞化学在小鼠样本上浓度为1:200 (图 5b). Eur Respir J (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:100; 图 2e
  • 免疫印迹; 小鼠; 1:1000; 图 2b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:100 (图 2e) 和 被用于免疫印迹在小鼠样本上浓度为1:1000 (图 2b). Cancers (Basel) (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 1d
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 1d). elife (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5c
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5c). Nat Commun (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 5a). Ther Adv Urol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:500-1:1000; 图 1a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:500-1:1000 (图 1a). Nat Commun (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5a). J Am Heart Assoc (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 1f). Sci Adv (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 s2). Cell Death Dis (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 7c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technologies, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 7c). Nat Commun (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:150; 图 2b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:150 (图 2b). Front Mol Neurosci (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 7i
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 7i). Adv Sci (Weinh) (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-冰冻切片; 小鼠; 1:1250; 图 3f
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:1250 (图 3f). J Dev Biol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫组化在小鼠样本上 (图 4c). Sci Adv (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7g
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, D13.14.4E)被用于被用于免疫印迹在人类样本上 (图 7g). Commun Biol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 7a). Sci Rep (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:2000; 图 6c, 6h
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:2000 (图 6c, 6h). Front Neurosci (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上. J Biol Chem (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3c
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上 (图 3c). Am J Physiol Heart Circ Physiol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 s7). Adv Sci (Weinh) (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 3a). Oncogene (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 6a). J Exp Clin Cancer Res (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5e
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上 (图 5e). Cell Death Dis (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370T)被用于被用于免疫印迹在小鼠样本上 (图 4b). Front Cell Dev Biol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:500; 图 s1c
  • 免疫印迹; 人类; 1:500; 图 s1c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:500 (图 s1c) 和 被用于免疫印迹在人类样本上浓度为1:500 (图 s1c). Mol Cancer (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 2c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 2c). Front Immunol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 3a
  • 免疫印迹; 小鼠; 1:1000; 图 6c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 3a) 和 被用于免疫印迹在小鼠样本上浓度为1:1000 (图 6c). Front Pharmacol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s2a). Front Pharmacol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 3e
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 3e). J Biol Chem (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 8g
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在小鼠样本上 (图 8g). Sci Rep (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 7a, 7e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 7a, 7e). elife (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 图 5f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上 (图 5f). Front Mol Biosci (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 图 4e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫组化在小鼠样本上 (图 4e). Cancer Discov (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 4e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4e). Cancer Genomics Proteomics (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:2000; 图 9a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:2000 (图 9a). J Cardiothorac Surg (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:2000; 图 1g
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:2000 (图 1g). Cell Prolif (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 ev2c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 ev2c). EMBO J (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上 (图 6a). Front Immunol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 1:150; 图 1a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:150 (图 1a). Sci Rep (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling technology, 4370)被用于被用于免疫印迹在人类样本上 (图 6a). Cell Death Dis (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 2b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 2b). Nat Commun (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3f
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上 (图 3f). Front Cell Dev Biol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:800; 图 5e
  • 免疫印迹; 小鼠; 1:1000; 图 8d
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:800 (图 5e) 和 被用于免疫印迹在小鼠样本上浓度为1:1000 (图 8d). Nat Commun (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 s6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(ell Signaling, 4370T)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 s6a). Nat Commun (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:200
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:200. NPJ Regen Med (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:500; 图 s7-1e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:500 (图 s7-1e). elife (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:5000; 图 1f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:5000 (图 1f). Antioxidants (Basel) (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6c
  • 免疫组化; 小鼠; 1:50
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 6c) 和 被用于免疫组化在小鼠样本上浓度为1:50. J Cardiovasc Dev Dis (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在小鼠样本上 (图 3e). Aging (Albany NY) (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 图 3d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上 (图 3d). Front Endocrinol (Lausanne) (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4b). Ren Fail (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 4a, 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 4a, 5a). Blood (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3a, s3b, s8, 5f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 3a, s3b, s8, 5f). Adv Sci (Weinh) (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 s7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370S)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 s7a). PLoS Biol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 4b). Sci Rep (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫印迹在小鼠样本上 (图 3a). Arthritis Res Ther (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 6m
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 6m). Cell Death Differ (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 3c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 3c). Cell Mol Gastroenterol Hepatol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 6a). Nat Commun (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technologies, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5b). Int J Mol Sci (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 6d). Theranostics (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 6f
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 6f). Nat Commun (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 4c). Dis Model Mech (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 3f). Signal Transduct Target Ther (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:400; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:400 (图 5a). BMC Cancer (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 8a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370s)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 8a). Oxid Med Cell Longev (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 6a). Cell Death Dis (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 3b). Mol Oncol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上 (图 6a). Cell Death Dis (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:200; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫组化在小鼠样本上浓度为1:200 (图 6a). Front Pharmacol (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 4a). Int J Mol Sci (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:100
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:100. Cell Death Dis (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:400; 图 4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)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 4b). Mol Cell Biol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:800; 图 1e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:800 (图 1e). iScience (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 4a). Cancer Sci (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 斑马鱼; 图 1f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫组化在斑马鱼样本上 (图 1f). Front Mol Neurosci (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 1c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 1c). Cells (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:100; 图 s3q
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370L)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 s3q). Clin Cancer Res (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5d). Nat Commun (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s7). Theranostics (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 3a). Commun Biol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 5a). Cell Mol Gastroenterol Hepatol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-冰冻切片; 小鼠; 1:100; 图 s4c
  • 免疫印迹; 小鼠; 1:1000; 图 s4b, s5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)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 s4c) 和 被用于免疫印迹在小鼠样本上浓度为1:1000 (图 s4b, s5b). Sci Signal (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 4d, 4e
  • 免疫印迹; 人类; 1:1000; 图 2e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 4d, 4e) 和 被用于免疫印迹在人类样本上浓度为1:1000 (图 2e). Proc Natl Acad Sci U S A (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s4d
  • 免疫印迹; 小鼠; 图 s4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 s4d) 和 被用于免疫印迹在小鼠样本上 (图 s4c). Cancer Res (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类; 1:1000; 图 1f
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫细胞化学在人类样本上浓度为1:1000 (图 1f). Nat Commun (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s4a). Nat Commun (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上 (图 5b). Cancer Sci (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 s2-1k
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 s2-1k). elife (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 图 3a
  • 免疫印迹; 人类; 图 2h
  • 免疫组化-石蜡切片; 小鼠; 图 8d
  • 免疫印迹; 小鼠; 图 2i
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在人类样本上 (图 3a), 被用于免疫印迹在人类样本上 (图 2h), 被用于免疫组化-石蜡切片在小鼠样本上 (图 8d) 和 被用于免疫印迹在小鼠样本上 (图 2i). J Clin Invest (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:500; 图 8b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:500 (图 8b). Brain Pathol (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类; 图 1d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫细胞化学在人类样本上 (图 1d). Front Oncol (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 3a
  • 免疫印迹; 小鼠; 图 2d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 3a) 和 被用于免疫印迹在小鼠样本上 (图 2d). Cancer Sci (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2i
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 2i). Mol Oncol (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 7g
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 7g). elife (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s5-1a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s5-1a). elife (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 6e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 6e). Front Oncol (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, D13.14.4E)被用于被用于免疫印迹在小鼠样本上 (图 5a). Cell Commun Signal (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 图 6b
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在大鼠样本上 (图 6b). Aging (Albany NY) (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 1b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 1b). elife (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:100; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:100 (图 7a). Cell Rep (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 s6). BMC Nephrol (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 6e). Cell Death Dis (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 3c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 3c). Front Immunol (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s5c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s5c). Genome Biol (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 斑马鱼; 1:500; 图 2d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在斑马鱼样本上浓度为1:500 (图 2d). elife (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s10a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s10a). Science (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 s3b). Cell Death Dis (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:400; 图 3b
  • 免疫印迹; 人类; 1:2000; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:400 (图 3b) 和 被用于免疫印迹在人类样本上浓度为1:2000 (图 3a). PLoS ONE (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 s5c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 s5c). Nat Commun (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:200; 图 5d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:200 (图 5d). Nat Commun (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 5a). J Adv Res (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上 (图 6e). Theranostics (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 7b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 7b). J Cardiovasc Dev Dis (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 2a). Mol Cancer Ther (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 3f
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 3f). Nat Commun (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 3e). Cell Death Differ (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6d
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上 (图 6d). Hepatology (2021) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:500; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在大鼠样本上浓度为1:500 (图 6a). elife (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, D13.14.4E)被用于被用于免疫印迹在人类样本上 (图 2e). Theranostics (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 2e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 2e). J Clin Invest (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 6c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 6c). Oncogene (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 s1b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 s1b). Cell (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类; 1:200; 图 s8e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫细胞化学在人类样本上浓度为1:200 (图 s8e). Sci Adv (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:400; 图 1d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫组化在小鼠样本上浓度为1:400 (图 1d). Sci Rep (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 8a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 8a). Sci Rep (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 7a). Cell Death Dis (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 4g
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 4g). Sci Adv (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 s2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 s2a). Bone Res (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1f
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上 (图 1f). FASEB Bioadv (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 家羊; 1:1000; 图 s10d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在家羊样本上浓度为1:1000 (图 s10d). Int J Mol Sci (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, D13.14.4E)被用于被用于免疫印迹在小鼠样本上浓度为1:2000. Oncogenesis (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 3a
  • 免疫印迹; 小鼠; 1:1000; 图 3e
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 3a) 和 被用于免疫印迹在小鼠样本上浓度为1:1000 (图 3e). Nat Commun (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 4g
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, #4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 4g). Eneuro (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:200; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:200 (图 7). BMC Pregnancy Childbirth (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 7f). Mol Cancer (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:200; 图 4g, e9t
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370S)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, e9t). Nature (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 6b). Cell Commun Signal (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 犬; 1:2000; 图 3b
  • 免疫印迹; 人类; 1:2000; 图 6g
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370T)被用于被用于免疫印迹在犬样本上浓度为1:2000 (图 3b) 和 被用于免疫印迹在人类样本上浓度为1:2000 (图 6g). Sci Adv (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 3s2b
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 3s2b). elife (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 8c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signallin, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 8c). Oncogene (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s9h
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s9h). Nat Commun (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 3i
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 3i). J Neuroinflammation (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上. elife (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; fruit fly ; 1:3000; 图 1l
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signal Technology, 4370)被用于被用于免疫印迹在fruit fly 样本上浓度为1:3000 (图 1l). elife (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 1e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 1e). Cancer Cell (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 10a, 11g
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 10a, 11g). Int J Mol Med (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 图 9a
  • 免疫印迹; 人类; 1:400; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫组化-石蜡切片在人类样本上 (图 9a) 和 被用于免疫印迹在人类样本上浓度为1:400 (图 4a). Int J Oncol (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 小鼠; 1:400; 图 4a
  • 免疫细胞化学; 人类; 1:400; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫细胞化学在小鼠样本上浓度为1:400 (图 4a) 和 被用于免疫细胞化学在人类样本上浓度为1:400 (图 4a). Nature (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 5b). J Cancer Res Clin Oncol (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4a). Cancer Lett (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上 (图 6a). Aging (Albany NY) (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 e7j
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 e7j). Nature (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 3b). Nat Immunol (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 6a). elife (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 3b). Cell (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6b
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上 (图 6b). Braz J Med Biol Res (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s3b
  • 免疫印迹; 人类; 图 s3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s3b) 和 被用于免疫印迹在人类样本上 (图 s3b). Nature (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; fruit fly ; 图 4h
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在fruit fly 样本上 (图 4h). Cell Rep (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 3b
  • 免疫组化-石蜡切片; 小鼠; 1:250; 图 1e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 3b) 和 被用于免疫组化-石蜡切片在小鼠样本上浓度为1:250 (图 1e). Breast Cancer Res Treat (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 2b
  • 免疫印迹; 人类; 1:1000; 图 2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 2b) 和 被用于免疫印迹在人类样本上浓度为1:1000 (图 2a). Science (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 小鼠
  • 免疫印迹; 小鼠; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫细胞化学在小鼠样本上 和 被用于免疫印迹在小鼠样本上浓度为1:1000. Nature (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 1:200; 图 2c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, D13.14.4E)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 2c). Breast Cancer Res Treat (2020) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s9e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s9e). Sci Adv (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:5000; 图 5c
  • 免疫印迹; 小鼠; 1:5000; 图 8a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:5000 (图 5c) 和 被用于免疫印迹在小鼠样本上浓度为1:5000 (图 8a). elife (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 e1a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在小鼠样本上 (图 e1a). Nature (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 10d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 10d). Biochem Pharmacol (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 3d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 3d). elife (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6a
  • 免疫印迹; 小鼠; 图 6b
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上 (图 6a) 和 被用于免疫印迹在小鼠样本上 (图 6b). Int J Chron Obstruct Pulmon Dis (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 6a). elife (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:3000; 图 2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:3000 (图 2a). Mol Med Rep (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 2f). Cell (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:500; 图 1c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:500 (图 1c). Stem Cells (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370s)被用于被用于免疫印迹在人类样本上 (图 7f). Cell Rep (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 7a). Cell Mol Gastroenterol Hepatol (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 6d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 6d). Cell Metab (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 1b). Mol Cell (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4d). Theranostics (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 4c). J Cell Biochem (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 4c). J Clin Invest (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 4a). J Immunol (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, D13.14.4E)被用于被用于免疫印迹在人类样本上 (图 5b). Kidney Int (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 2f
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 2f). Nat Commun (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; pigs ; 图 1h
  • 免疫印迹; 小鼠; 图 5f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在pigs 样本上 (图 1h) 和 被用于免疫印迹在小鼠样本上 (图 5f). MBio (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:20,000; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalin, 4370)被用于被用于免疫印迹在人类样本上浓度为1:20,000 (图 7a). elife (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 图 1d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, cs4370)被用于被用于免疫组化在小鼠样本上 (图 1d). Nature (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signaling, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4a). Front Pharmacol (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s5a). Science (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 4d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 4d). elife (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4f). Cancer Cell Int (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s2d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s2d). Immunity (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 3b
  • 免疫印迹; 小鼠; 图 2c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 3b) 和 被用于免疫印迹在小鼠样本上 (图 2c). Cancer Cell (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 5d). Breast Cancer Res (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 仓鼠; 1:1000; 图 6c
  • 免疫印迹; 人类; 1:1000; 图 6c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在仓鼠样本上浓度为1:1000 (图 6c) 和 被用于免疫印迹在人类样本上浓度为1:1000 (图 6c). Exp Cell Res (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:5000; 图 1e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signal, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:5000 (图 1e). Science (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5d
  • 免疫印迹; 人类; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在小鼠样本上 (图 5d) 和 被用于免疫印迹在人类样本上 (图 5b). J Exp Med (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 2b). Cancer Cell Int (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 8a
  • 免疫印迹; 小鼠; 1:2000; 图 8b
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 8a) 和 被用于免疫印迹在小鼠样本上浓度为1:2000 (图 8b). J Cell Sci (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 3a, 3c, s3d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 3a, 3c, s3d). Sci Adv (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 仓鼠; 1:2000; 图 8a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在仓鼠样本上浓度为1:2000 (图 8a). J Gen Virol (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 1b). BMC Med Genomics (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:1000; 图 2e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:1000 (图 2e). elife (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1a
  • 免疫印迹; 小鼠; 图 1h
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 1a) 和 被用于免疫印迹在小鼠样本上 (图 1h). J Clin Invest (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上 (图 4c). Cancer Sci (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4j
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 4j). Nat Cell Biol (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 6a). Lab Invest (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 3c
  • 免疫印迹; 人类; 1:2000; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 3c) 和 被用于免疫印迹在人类样本上浓度为1:2000 (图 3a). J Clin Invest (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:500; 图 4e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:500 (图 4e). Cancer Cell Int (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5b). J Clin Invest (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 6a). Hepatology (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 s9c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 s9c). Science (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上 (图 s2). Mol Oncol (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 4b). Cancer Res (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 3a). J Biol Chem (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 5a). Int J Mol Sci (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 7d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 7d). J Clin Invest (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 2a). Science (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 4c). Redox Biol (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5a). Cell (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类; 1:2000; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370T)被用于被用于免疫细胞化学在人类样本上浓度为1:2000 (图 4a). J Cell Biochem (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 其他; 小鼠; 图 s4e
  • 免疫印迹; 小鼠; 图 s4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于其他在小鼠样本上 (图 s4e) 和 被用于免疫印迹在小鼠样本上 (图 s4b). Science (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signaling technology, 4370s)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 7a). J Mol Cell Cardiol (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 5a). Oncotarget (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:400; 图 s1f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)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 s1f). J Clin Invest (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 6a). Exp Cell Res (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4a). Int J Cancer (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4a). J Infect Dis (2019) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 4a). EMBO J (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s6a). Science (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 s4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 s4a). Nat Commun (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370L)被用于被用于免疫印迹在人类样本上 (图 7e). Nat Commun (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 ex1m
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 ex1m). Nature (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s1n
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s1n). Nat Cell Biol (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 2d). Proc Natl Acad Sci U S A (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 4a). Oncoimmunology (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s3f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s3f). Proc Natl Acad Sci U S A (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 2a). Oncogene (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s5d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s5d). Mol Cancer Res (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 7a). Oncogene (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technologies, 4370)被用于被用于免疫印迹在小鼠样本上 (图 3b). Cell Death Dis (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5b). Oncogene (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s2f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 s2f). Science (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:500; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:500 (图 6a). Proc Natl Acad Sci U S A (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 1c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 1c). Glia (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 1e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 1e). Science (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 图 s6b
  • 免疫印迹; 人类; 图 3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在人类样本上 (图 s6b) 和 被用于免疫印迹在人类样本上 (图 3b). Cell (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s2d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s2d). Nature (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 1c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 1c). Cell (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370s)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5b). Mol Med Rep (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s3f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s3f). Nature (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在小鼠样本上 (图 3a). Cancer Cell (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 2a). Cancer Res (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s5o
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 s5o). Nature (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 2c). Oncotarget (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 4). Cell Biol Int (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s10c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在小鼠样本上 (图 s10c). Proc Natl Acad Sci U S A (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫印迹在人类样本上 (图 3e). Nat Commun (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s2a). Nat Med (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 5m
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 5m). Am J Physiol Gastrointest Liver Physiol (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 7b). Clin Cancer Res (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:200; 图 4e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)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 4e). PLoS Genet (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在小鼠样本上 (图 6b). Mol Biol Cell (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 6f). Oncogene (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 6b, 6c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 6b, 6c). Gut (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; fruit fly ; 图 5c
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在fruit fly 样本上 (图 5c). Dev Cell (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 图 6j
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上 (图 6j). Brain Behav Immun (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 1a). Mol Oncol (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 1:100; 图 6a
  • 免疫印迹; 人类; 1:2000; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)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 6a) 和 被用于免疫印迹在人类样本上浓度为1:2000 (图 3a). Nat Commun (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(New England Biolabs, 4370)被用于被用于免疫印迹在人类样本上 (图 2). J Cell Physiol (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 6a). Placenta (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 5). Exp Neurol (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s1c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signal, 4370s)被用于被用于免疫印迹在人类样本上 (图 s1c). Nature (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 斑马鱼; 图 1a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在斑马鱼样本上 (图 1a). J Comp Neurol (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 图 2b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在人类样本上 (图 2b). J Clin Invest (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 1b). Cancer Cell (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 6a). Cell Death Dis (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4a). Mol Vis (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 7a). Oncotarget (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 1:400; 图 6b
  • 免疫印迹; 人类; 1:500; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:400 (图 6b) 和 被用于免疫印迹在人类样本上浓度为1:500 (图 6a). PLoS ONE (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 1d). Oncotarget (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:4000; 图 3h
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:4000 (图 3h). Stem Cell Res Ther (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 3c). Mol Vis (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 1a
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 1a). Cell Death Dis (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 2). FEBS Lett (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 3a). Front Neurosci (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5a). Sci Rep (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 3b). Nature (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1b
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在人类样本上 (图 1b). Cell Death Dis (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5d
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在人类样本上 (图 5d). Cell Res (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 3f
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 3f). Genes Dev (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 9b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 9b). J Clin Invest (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s6). Metabolism (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 2b
  • 免疫印迹; 人类; 图 2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在小鼠样本上 (图 2b) 和 被用于免疫印迹在人类样本上 (图 2a). Mol Cell Biol (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signalling, 4370)被用于被用于免疫印迹在人类样本上 (图 1f). Cancer Lett (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 EV3d
  • 免疫印迹; 人类; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 EV3d) 和 被用于免疫印迹在人类样本上 (图 7a). EMBO J (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类; 图 3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫细胞化学在人类样本上 (图 3b). Proc Natl Acad Sci U S A (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:3000; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370P)被用于被用于免疫印迹在人类样本上浓度为1:3000 (图 3a). Oncotarget (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5a
  • 免疫印迹; 小鼠; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 5a) 和 被用于免疫印迹在小鼠样本上 (图 5b). EMBO Rep (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 6a). J Neuroinflammation (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5a). Sci Rep (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 7a). Sci Rep (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:2000; 图 4A
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:2000 (图 4A). Int J Mol Med (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-自由浮动切片; 小鼠; 1:500; 图 5d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-自由浮动切片在小鼠样本上浓度为1:500 (图 5d). Proc Natl Acad Sci U S A (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 6g
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technologies, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 6g). FASEB J (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 7b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 7b). Cell Signal (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 st13
  • 免疫组化-石蜡切片; 人类; 图 st13
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 st13) 和 被用于免疫组化-石蜡切片在人类样本上 (图 st13). J Toxicol Pathol (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 6a). Fundam Clin Pharmacol (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 6a,6b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 6a,6b). Oncotarget (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 s1i
  • 免疫组化; 小鼠; 图 1f
  • 免疫组化-石蜡切片; 人类; 图 1k
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 s1i), 被用于免疫组化在小鼠样本上 (图 1f) 和 被用于免疫组化-石蜡切片在人类样本上 (图 1k). Nature (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4d). Oncotarget (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 4a). Stem Cell Res Ther (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5d). Sci Rep (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370P)被用于被用于免疫印迹在小鼠样本上 (图 7a). Sci Rep (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 5b). Cell (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5c
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5c). Mol Pharmacol (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 3c). Cell Rep (2017) ncbi
domestic rabbit 单克隆(55A8)
  • 免疫印迹; 小鼠; 1:1000; 图 st2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 2305)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 st2). Nat Commun (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4a). Sci Rep (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 7a). Autophagy (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 7c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 7c). Autophagy (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 流式细胞仪; 人类; 1:200; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于流式细胞仪在人类样本上浓度为1:200 (图 3). Integr Biol (Camb) (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 s5
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 s5). Nat Commun (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 5a). J Biol Chem (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 3a). Nat Commun (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. FEBS Open Bio (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 2c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 2c). J Exp Med (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:300; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:300 (图 7a). J Clin Invest (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上 (图 5a). Sci Rep (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 4a). Sci Rep (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 1c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在小鼠样本上 (图 1c). Cell Mol Gastroenterol Hepatol (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; fruit fly ; 1:2000; 图 3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在fruit fly 样本上浓度为1:2000 (图 3b). Development (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 5a). PLoS ONE (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4a). Cardiovasc Res (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类; 1:800; 图 s2b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫细胞化学在人类样本上浓度为1:800 (图 s2b). Mol Syst Biol (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:500; 图 3c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, D13.14.4E)被用于被用于免疫印迹在小鼠样本上浓度为1:500 (图 3c). J Clin Invest (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-冰冻切片; 小鼠; 1:400; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:400 (图 4a). Physiol Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 1b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 1b). J Cell Physiol (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 5). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上 (图 7a). J Am Heart Assoc (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4a). Oncotarget (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类; 图 s1
  • 免疫印迹; 人类; 图 1c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫细胞化学在人类样本上 (图 s1) 和 被用于免疫印迹在人类样本上 (图 1c). Oncotarget (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在人类样本上 (图 5a). PLoS Med (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 8a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 8a). J Cell Mol Med (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5b). J Cell Biol (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s6). PLoS ONE (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上. Circ Res (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-冰冻切片; 小鼠; 图 3f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 3f). Cancer Sci (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; brewer's yeast; 1:2000; 图 3c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在brewer's yeast样本上浓度为1:2000 (图 3c). ACS Synth Biol (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 6b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 6b). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 9a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 9a). PLoS ONE (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 2). Nature (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 7). Mol Carcinog (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 7). Neuroendocrinology (2018) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; brewer's yeast; 图 2d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在brewer's yeast样本上 (图 2d). J Biol Chem (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s4a,s4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s4a,s4b). Gastroenterology (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫印迹在人类样本上 (图 4a). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 2d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 2d). Mol Neurobiol (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; brewer's yeast; 图 s4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在brewer's yeast样本上 (图 s4a). Proc Natl Acad Sci U S A (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 仓鼠; 图 1g
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在仓鼠样本上 (图 1g). Nature (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 1a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 1a). Int J Cancer (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 人类; 图 4b
  • 免疫组化; 小鼠; 图 4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫组化在人类样本上 (图 4b) 和 被用于免疫组化在小鼠样本上 (图 4b). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 表 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (表 1). Endocrinology (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 s5d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 s5d). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:100; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫组化在小鼠样本上浓度为1:100 (图 5a). J Clin Invest (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5a). Front Immunol (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 犬; 表 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在犬样本上 (表 1). Mol Reprod Dev (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上 (图 3a). PLoS ONE (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5a). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 图 5b
  • 免疫印迹; 小鼠; 图 s2c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫组化在小鼠样本上 (图 5b) 和 被用于免疫印迹在小鼠样本上 (图 s2c). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 9a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, D13.14.4E)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 9a). Drug Des Devel Ther (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 仓鼠; 1:1000; 图 9c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在仓鼠样本上浓度为1:1000 (图 9c). PLoS ONE (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 5c). Eur J Cancer (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 3d). Proc Natl Acad Sci U S A (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s4). Biol Sex Differ (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 1e). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5a). Nat Immunol (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫印迹在人类样本上 (图 4). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 6d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 6d). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 st1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 st1). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 3). Cell Commun Signal (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 7b). Cancer Res (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 1d
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 1d). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 中国人仓鼠; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在中国人仓鼠样本上 (图 2). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 斑马鱼; 1:250; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在斑马鱼样本上浓度为1:250 (图 4c). Development (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s5a, s6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s5a, s6a). J Clin Invest (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 7). elife (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 家羊; 1:1000; 图 5d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在家羊样本上浓度为1:1000 (图 5d). Physiol Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 s6). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, D13.14.4E)被用于被用于免疫印迹在小鼠样本上 (图 5b). PLoS ONE (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在大鼠样本上 (图 5). PLoS ONE (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 斑马鱼; 1:400; 图 6d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫组化-石蜡切片在斑马鱼样本上浓度为1:400 (图 6d). Development (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4a). Mol Med Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 4a). Stem Cell Reports (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 流式细胞仪; 小鼠; 图 5e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于流式细胞仪在小鼠样本上 (图 5e). J Immunol (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 图 s8
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在小鼠样本上 (图 s8). Neoplasia (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上 (图 s7a). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 流式细胞仪; 人类; 图 4d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于流式细胞仪在人类样本上 (图 4d). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 s15
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 s15). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 流式细胞仪; 人类; 图 5b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, D13.14.4E)被用于被用于流式细胞仪在人类样本上 (图 5b). Cell Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在人类样本上 (图 4b). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-冰冻切片; 小鼠; 1:500; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)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 7). elife (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 4e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4e). J Biol Chem (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; brewer's yeast; 1:2000; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在brewer's yeast样本上浓度为1:2000 (图 5). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:400; 图 8
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:400 (图 8). PLoS Pathog (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:100; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:100 (图 2). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 7). Tumour Biol (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:800; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:800 (图 6). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:500; 图 7b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在人类样本上浓度为1:500 (图 7b). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 2a). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4b). Nucleic Acids Res (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在小鼠样本上 (图 6). Mol Cancer Ther (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:100; 图 1d
  • 免疫印迹; 人类; 1:1000; 图 5e
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:100 (图 1d) 和 被用于免疫印迹在人类样本上浓度为1:1000 (图 5e). Gut (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4a). J Proteomics (2017) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370s)被用于被用于免疫印迹在人类样本上 (图 6a). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 3a). Nat Med (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 3c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 3c). Nat Med (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 3b). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 1). FASEB J (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4e). Cancer Sci (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 图 s3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫组化-石蜡切片在人类样本上 (图 s3a). Cell Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 1:200; 图 4
  • 免疫印迹; 人类; 1:1000; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E XP)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 4) 和 被用于免疫印迹在人类样本上浓度为1:1000 (图 4). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:800; 图 7A
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:800 (图 7A). PLoS ONE (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 3a). PLoS ONE (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s4). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 3). Proc Natl Acad Sci U S A (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signal, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 5). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 6). Proc Natl Acad Sci U S A (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4c). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 5). Cell Death Dis (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 2). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 1a). J Biol Chem (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 3). Mol Med Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 8
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 8). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上 (图 3). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 4). J Ovarian Res (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 4a). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 2b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370P)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 2b). Nat Cell Biol (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 流式细胞仪; 小鼠
  • 免疫印迹; 小鼠; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于流式细胞仪在小鼠样本上 和 被用于免疫印迹在小鼠样本上 (图 6a). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在人类样本上 (图 4a). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 大鼠; 图 3a
  • 免疫印迹; 大鼠; 图 1a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在大鼠样本上 (图 3a) 和 被用于免疫印迹在大鼠样本上 (图 1a). Cell Signal (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:30; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, CST4370)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:30 (图 1). Mol Endocrinol (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 s10b
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4,370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 s10b). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:3000; 图 2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:3000 (图 2a). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 1). J Clin Invest (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; pigs ; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370)被用于被用于免疫印迹在pigs 样本上 (图 6). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 5e). Am J Physiol Gastrointest Liver Physiol (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370)被用于被用于免疫印迹在小鼠样本上 (图 6). Cell Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫印迹在人类样本上 (图 6). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 6a). J Am Heart Assoc (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-自由浮动切片; 斑马鱼; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫组化-自由浮动切片在斑马鱼样本上 (图 3). Neuron (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 斑马鱼; 1:150; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在斑马鱼样本上浓度为1:150 (图 6). elife (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 1:1000; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:1000 (图 7). Cancer Lett (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 牛; 图 9f
  • 免疫印迹; 人类; 图 9e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在牛样本上 (图 9f) 和 被用于免疫印迹在人类样本上 (图 9e). J Biol Chem (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4g
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4g). Int J Mol Med (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1
  • 免疫印迹; 小鼠; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 1) 和 被用于免疫印迹在小鼠样本上 (图 3). Mol Metab (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, 4370)被用于被用于免疫印迹在人类样本上 (图 6a). Int J Mol Sci (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 图 2
  • 免疫印迹; 人类; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫组化-石蜡切片在人类样本上 (图 2) 和 被用于免疫印迹在人类样本上 (图 2). J Exp Clin Cancer Res (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 2a). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 3a). Stem Cells Int (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-冰冻切片; 小鼠; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 3). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 7a). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 3). Int J Mol Med (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 6). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 2). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上 (图 2a). J Immunol (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在人类样本上 (图 7). J Biol Chem (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 2). J Clin Invest (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 流式细胞仪; 人类; 1:100; 图 8
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于流式细胞仪在人类样本上浓度为1:100 (图 8). elife (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 7). Genes Cancer (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 人类; 1:400; 图 s1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫组化在人类样本上浓度为1:400 (图 s1). Int J Mol Sci (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370s)被用于被用于免疫印迹在人类样本上 (图 1). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:500; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:500 (图 5). elife (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 6). Mol Biol Cell (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:500; 表 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:500 (表 1). Brain Res Bull (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5). J Biol Chem (2016) ncbi
domestic rabbit 单克隆(55A8)
  • 免疫印迹; 大鼠; 1:1000; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 55A8)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 2). J Diabetes Res (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 5). Nat Commun (2016) ncbi
domestic rabbit 单克隆(55A8)
  • 免疫印迹; 大鼠; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 2305)被用于被用于免疫印迹在大鼠样本上 (图 3). J Neuroinflammation (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 s8
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 s8). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 小鼠; 1:200; 表 1
  • 免疫印迹; 小鼠; 表 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫细胞化学在小鼠样本上浓度为1:200 (表 1) 和 被用于免疫印迹在小鼠样本上 (表 1). PLoS ONE (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s1b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 s1b). Neoplasia (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 3b). Mol Cell Proteomics (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 1). BMC Cancer (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 2b). Cancer Res (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类; 1:200; 图 5
  • 免疫印迹; 人类; 1:2000; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫细胞化学在人类样本上浓度为1:200 (图 5) 和 被用于免疫印迹在人类样本上浓度为1:2000 (图 1). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 5). J Am Heart Assoc (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 人类; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫组化在人类样本上 (图 7). EMBO Mol Med (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 4a). Neural Plast (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 2). PLoS ONE (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5). Oncol Lett (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technologies, 4370P)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 5). Oncol Lett (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-冰冻切片; 小鼠; 1:100; 图 4
  • 免疫印迹; 小鼠; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)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 4) 和 被用于免疫印迹在小鼠样本上 (图 5). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 2f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 2f). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, cst-4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 1). Nat Cell Biol (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling technologies, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 4). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 6). J Biol Chem (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:200; 图 1e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:200 (图 1e). Nat Cell Biol (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; domestic rabbit; 1:2000; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在domestic rabbit样本上浓度为1:2000 (图 4). Int J Clin Exp Pathol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 小鼠; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫细胞化学在小鼠样本上 (图 5). Sci Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4). Int J Mol Med (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 图 4
  • 免疫印迹; 人类; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在人类样本上 (图 4) 和 被用于免疫印迹在人类样本上 (图 2). Oncogene (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4). Mol Cancer (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1
  • 免疫印迹; 小鼠; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370)被用于被用于免疫印迹在人类样本上 (图 1) 和 被用于免疫印迹在小鼠样本上 (图 5). Oncotarget (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:2000; 图 s2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:2000 (图 s2a). Metallomics (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s4
  • 免疫印迹; 犬; 1:4000; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 s4) 和 被用于免疫印迹在犬样本上浓度为1:4000 (图 4). Nat Commun (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5). Cell Death Dis (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 9
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 9). J Biol Chem (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 2f
  • 免疫印迹; 小鼠; 图 8a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 2f) 和 被用于免疫印迹在小鼠样本上 (图 8a). Crit Care Med (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 1). Cancer Res (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫细胞化学在人类样本上. Proc Natl Acad Sci U S A (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫印迹在人类样本上 (图 3). Oncogene (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 1:400; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:400 (图 5). Dis Model Mech (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4). Mol Med Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 图 st1
  • 免疫印迹; 小鼠; 图 st1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在小鼠样本上 (图 st1) 和 被用于免疫印迹在小鼠样本上 (图 st1). Liver Int (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 6). Peerj (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:2000; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:2000 (图 7). Mol Brain (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s2a). Nat Commun (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在小鼠样本上 (图 5). Sci Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 仓鼠; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在仓鼠样本上 (图 5a). J Neurochem (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 6). Development (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 6). Int J Mol Med (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:800; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上浓度为1:800 (图 5). Acta Neuropathol Commun (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 鸡; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在鸡样本上 (图 7a). Sci Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 3). Mol Biol Cell (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:15,000; 图 s9i
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:15,000 (图 s9i). Development (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s2
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signalling, D13.14.E)被用于被用于免疫印迹在小鼠样本上 (图 s2). Science (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5c). Mol Med Rep (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 1). Sci Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4). PLoS ONE (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 4c). ScientificWorldJournal (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370)被用于被用于免疫印迹在小鼠样本上 (图 1). Oncogene (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在人类样本上 (图 4). J Biol Chem (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 3c). Nat Commun (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:400; 图 s6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:400 (图 s6a). Cancer Res (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370S)被用于被用于免疫印迹在人类样本上 (图 4). BMC Genomics (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 7e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 7e). J Natl Cancer Inst (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 5). Oncotarget (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 2). Sci Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 6). Cancer Sci (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:4000; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:4000 (图 7). PLoS ONE (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technologies, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000. Oncoscience (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4
  • 免疫组化; 小鼠; 图 4
  • 免疫印迹; 小鼠; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 4), 被用于免疫组化在小鼠样本上 (图 4) 和 被用于免疫印迹在小鼠样本上 (图 4). Oncogene (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 2a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 2a). Sci Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 4). BMC Cancer (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370p)被用于被用于免疫印迹在小鼠样本上 (图 4). Endocrinology (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 大鼠; 1:1500; 表 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在大鼠样本上浓度为1:1500 (表 1). Sci Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 s7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 s7a). J Biol Chem (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5). PLoS ONE (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 11
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 11). Anticancer Agents Med Chem (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在小鼠样本上 (图 2). PLoS ONE (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 43705)被用于被用于免疫印迹在人类样本上 (图 3). Oncotarget (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:400; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)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 6a). Oncogenesis (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4c). Oncogene (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 4a). Sci Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 大鼠; 1:200; 图 7c
  • 免疫印迹; 大鼠; 1:1000; 图 1b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫细胞化学在大鼠样本上浓度为1:200 (图 7c) 和 被用于免疫印迹在大鼠样本上浓度为1:1000 (图 1b). Mol Cell Biol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; fruit fly ; 1:200; 图 2b
  • 免疫印迹; fruit fly ; 1:2000; 图 3a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫组化-石蜡切片在fruit fly 样本上浓度为1:200 (图 2b) 和 被用于免疫印迹在fruit fly 样本上浓度为1:2000 (图 3a). Dis Model Mech (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:500; 图 s5e
  • 免疫印迹; 小鼠; 1:3000; 图 s5c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)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 s5e) 和 被用于免疫印迹在小鼠样本上浓度为1:3000 (图 s5c). Nat Med (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 6). Mol Cell Biochem (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 s5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 s5). Nat Commun (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000. Cancer Med (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上. Eur Neuropsychopharmacol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在小鼠样本上. Oncogene (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 4). Sci Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 人类; 图 s11
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, D13, 14.4E)被用于被用于免疫组化在人类样本上 (图 s11). Nat Genet (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:10,000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫印迹在大鼠样本上浓度为1:10,000. Exp Neurol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 4b). Neuroendocrinology (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 2c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 2c). FASEB J (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:3000; 图 s2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:3000 (图 s2). Nat Neurosci (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signaling, #4370)被用于被用于免疫印迹在小鼠样本上. Biochem Pharmacol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 s8
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 s8). Sci Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上. PLoS ONE (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 3). PLoS ONE (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上. Sci Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling technology, 4370)被用于被用于免疫印迹在人类样本上 (图 6). Am J Cancer Res (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 3). Sci Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. Breast Cancer Res (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370)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
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000. Development (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 图 S3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上 (图 S3). PLoS ONE (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 1:400
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:400. Clin Cancer Res (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. Sci Adv (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. J Neurochem (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在小鼠样本上浓度为1:2000. Neuroscience (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 1). Nucleic Acids Res (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000. Mol Oncol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:3000; 图 s3.a,b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:3000 (图 s3.a,b). Nat Commun (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370P)被用于被用于免疫印迹在人类样本上. Clin Transl Gastroenterol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 2). elife (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 图 6e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling.D13.14.4E, D13.14.4E)被用于被用于免疫印迹在大鼠样本上 (图 6e). J Immunol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370)被用于被用于免疫印迹在人类样本上 (图 s4). EMBO J (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上. Am J Physiol Lung Cell Mol Physiol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; purple urchin; 1:300; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在purple urchin样本上浓度为1:300 (图 3). Development (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类; 1:200; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(New England Biolabs, 4370S)被用于被用于免疫细胞化学在人类样本上浓度为1:200 (图 4). Mol Pain (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 5). Mol Cell Biol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 6). J Biol Chem (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 3c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 3c). Dis Model Mech (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 6). PLoS ONE (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; pigs ; 1:3000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在pigs 样本上浓度为1:3000. Mol Biol Cell (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 5). Br J Pharmacol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 7). J Biol Chem (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 6c). J Leukoc Biol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 染色质免疫沉淀 ; 人类; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling technology, 4370)被用于被用于染色质免疫沉淀 在人类样本上 (图 6). PLoS ONE (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:200; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:200 (图 2). PLoS ONE (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上. Oncotarget (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 5c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 5c). Nat Med (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370s)被用于被用于免疫印迹在人类样本上 (图 1). Int J Mol Med (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-冰冻切片; 人类; 1:200; 图 5
  • 免疫组化-冰冻切片; 小鼠; 1:200; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370s)被用于被用于免疫组化-冰冻切片在人类样本上浓度为1:200 (图 5) 和 被用于免疫组化-冰冻切片在小鼠样本上浓度为1:200 (图 5). PLoS Genet (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 大鼠; 1:250
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在大鼠样本上浓度为1:250. Neurogastroenterol Motil (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000. Exp Neurol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1500
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1500. J Mol Cell Cardiol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370P)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 6). Cancer Sci (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 大鼠; 1:200
  • 免疫印迹; 大鼠; 1:3000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫细胞化学在大鼠样本上浓度为1:200 和 被用于免疫印迹在大鼠样本上浓度为1:3000. Int J Mol Med (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 1). J Immunol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 3). Oncotarget (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000. Int J Mol Sci (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 3). Nat Commun (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370S)被用于被用于免疫印迹在小鼠样本上浓度为1:2000 (图 3). Nature (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 f4
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signaling technology, 4370S)被用于被用于免疫印迹在人类样本上 (图 f4). Oncotarget (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, D13.14.4E)被用于被用于免疫印迹在人类样本上浓度为1:1000. PLoS ONE (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 6c). Int J Mol Med (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上. Basic Res Cardiol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-冰冻切片; 人类; 1:150; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫组化-冰冻切片在人类样本上浓度为1:150 (图 4). Nat Commun (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 7a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling TECHNOLOGY, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 7a). Sci Signal (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 9
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 9). Mol Med Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上. Basic Res Cardiol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:1000. Eur Neuropsychopharmacol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 2). Nat Commun (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 2). Oncotarget (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:100
  • 免疫印迹; 小鼠; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)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 和 被用于免疫印迹在小鼠样本上浓度为1:1000. Genes Cancer (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 7f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 7f). EMBO Mol Med (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • reverse phase protein lysate microarray; 人类; 表 s2
  • 免疫细胞化学; 人类; 1:800
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于reverse phase protein lysate microarray在人类样本上 (表 s2) 和 被用于免疫细胞化学在人类样本上浓度为1:800. Mol Syst Biol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上. Cancer Res (2015) ncbi
domestic rabbit 单克隆(55A8)
  • 免疫印迹; 人类; 1:1000; 图 7e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 2305)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 7e). Nat Commun (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 5e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 5e). Nat Commun (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 8
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 8). Development (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1a
  • 免疫印迹; 小鼠; 图 2b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上 (图 1a) 和 被用于免疫印迹在小鼠样本上 (图 2b). Nature (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000. Arch Biochem Biophys (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. J Biol Chem (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 s5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 s5). J Biol Chem (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫细胞化学在人类样本上 和 被用于免疫印迹在人类样本上. Int J Oncol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, D13.14.4E)被用于被用于免疫印迹在小鼠样本上. Infect Immun (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:500
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:500. J Bioenerg Biomembr (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 流式细胞仪; 小鼠; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于流式细胞仪在小鼠样本上 (图 2). Am J Physiol Lung Cell Mol Physiol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 5). Sci Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 10B
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 10B). J Immunol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 5a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 5a). Mol Med Rep (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 酵母菌目
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在酵母菌目样本上. Cold Spring Harb Protoc (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 6f
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 6f). J Exp Med (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图  3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图  3). Cell Signal (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; brewer's yeast; 1:4000; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在brewer's yeast样本上浓度为1:4000 (图 1). Eukaryot Cell (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-冰冻切片; 小鼠
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-冰冻切片在小鼠样本上 和 被用于免疫印迹在小鼠样本上. Invest Ophthalmol Vis Sci (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, D13.14.4E)被用于被用于免疫印迹在人类样本上. PLoS ONE (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 斑马鱼; 图 4a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在斑马鱼样本上 (图 4a). FASEB J (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; brewer's yeast; 1:3000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在brewer's yeast样本上浓度为1:3000. Mol Cell Biol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 斑马鱼; 1:200
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在斑马鱼样本上浓度为1:200. Mol Cancer (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上 (图 4). Am J Hum Genet (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 3). Chem Biol Interact (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370P)被用于被用于免疫印迹在人类样本上 和 被用于免疫印迹在小鼠样本上. J Biol Chem (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. J Diabetes (2016) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-冰冻切片; 小鼠; 1:500
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)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. J Neurosci (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 1). Breast Cancer Res (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 2). Cell (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:1000; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)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 5). Genes Dev (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫印迹在大鼠样本上. Apoptosis (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 11
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 11). J Appl Toxicol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. Int J Mol Sci (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 拟南芥; 1:3000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Tech, 4370)被用于被用于免疫印迹在拟南芥样本上浓度为1:3000. PLoS Pathog (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 流式细胞仪; African green monkey; 图 s7e
  • 流式细胞仪; 人类; 图 s7e
  • 免疫细胞化学; 人类; 图 s7d
  • 免疫印迹; 人类; 图 s7c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于流式细胞仪在African green monkey样本上 (图 s7e), 被用于流式细胞仪在人类样本上 (图 s7e), 被用于免疫细胞化学在人类样本上 (图 s7d) 和 被用于免疫印迹在人类样本上 (图 s7c). Nature (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上. Cancer Cell (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:400; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:400 (图 4). PLoS ONE (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2g
  • 免疫印迹; 小鼠; 图 3d
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 2g) 和 被用于免疫印迹在小鼠样本上 (图 3d). Nat Med (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 5). Int J Mol Med (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 流式细胞仪; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于流式细胞仪在人类样本上. Eur J Immunol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上. Am J Pathol (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(细胞, 4370)被用于被用于免疫印迹在大鼠样本上. Physiol Behav (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; fruit fly ; 1:200; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在fruit fly 样本上浓度为1:200 (图 1). elife (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上. In Vitro Cell Dev Biol Anim (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在人类样本上. Mol Cell Biol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上. Mol Cell Biol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000 (图 7). PLoS ONE (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; brewer's yeast; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling, 4370)被用于被用于免疫印迹在brewer's yeast样本上 (图 2). PLoS Genet (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000; 图 9e
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000 (图 9e). Int J Mol Med (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technologies, 4370)被用于被用于免疫印迹在人类样本上. PLoS ONE (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在人类样本上 (图 4). Proc Natl Acad Sci U S A (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000. Physiol Rep (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. J Cancer Res Clin Oncol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫印迹在大鼠样本上. Br J Pharmacol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 s4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 s4). Mol Cancer Res (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:800
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:800. J Neurol Sci (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫印迹在小鼠样本上 (图 2). Neurosci Bull (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上. J Biol Chem (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:500
  • 免疫印迹; 小鼠; 1:1500
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technologies, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:500 和 被用于免疫印迹在小鼠样本上浓度为1:1500. J Neurosci (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 4). Oncogene (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 1b
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在小鼠样本上 (图 1b). Mucosal Immunol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 表 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (表 4). Methods Mol Biol (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 4). Endocrinology (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-石蜡切片在小鼠样本上. PLoS ONE (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 斑马鱼; 1:400
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫组化在斑马鱼样本上浓度为1:400. Oncogene (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上. Amino Acids (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 2
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 2). Nat Commun (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:2000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:2000. Arch Biochem Biophys (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在小鼠样本上. Bone (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370s)被用于被用于免疫细胞化学在小鼠样本上. Cancer Res (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000. Hum Mol Genet (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 2c
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 2c). Oncotarget (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; African green monkey
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫印迹在African green monkey样本上. J Cell Physiol (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(cell signaling, 4370S)被用于被用于免疫印迹在人类样本上. Oncogene (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:500
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫印迹在小鼠样本上浓度为1:500. PLoS ONE (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, D13.14.4E)被用于被用于免疫印迹在人类样本上. Breast Cancer Res (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫组化-石蜡切片在人类样本上. Diabetes (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上. PLoS Genet (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上. Int J Mol Med (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 小鼠; 1:50
  • 免疫印迹; 小鼠; 1:100
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫细胞化学在小鼠样本上浓度为1:50 和 被用于免疫印迹在小鼠样本上浓度为1:100. PLoS ONE (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:10,000; 图 4
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:10,000 (图 4). PLoS ONE (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000. Oncol Rep (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫印迹在人类样本上. Cell Microbiol (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:2000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:2000. Exp Gerontol (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. Eur J Immunol (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:1000. Nat Med (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:400
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:400. PLoS ONE (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上. Oncogene (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. Oncotarget (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:200
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)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. Oncogene (2015) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:500
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:500. J Neurochem (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在大鼠样本上. World J Gastroenterol (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在小鼠样本上 和 被用于免疫印迹在小鼠样本上. PLoS ONE (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:100
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化在小鼠样本上浓度为1:100. J Pathol (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上. FEBS Lett (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 6a
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在小鼠样本上 (图 6a). PLoS ONE (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000 (图 7). Nat Commun (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, D13.14.4E)被用于被用于免疫印迹在人类样本上. J Invest Dermatol (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. Cell Death Dis (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. Exp Cell Res (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫印迹在人类样本上. Neuropsychopharmacology (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上. PLoS ONE (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:500
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:500. Ophthalmic Res (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 人类; 1:1000
  • 免疫印迹; 人类; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, #4370P)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:1000 和 被用于免疫印迹在人类样本上浓度为1:1000. J Mol Histol (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 1A; 1C
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 (图 1A; 1C). Prostate (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠; 1:500; 图 3
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在大鼠样本上浓度为1:500 (图 3). J Bioenerg Biomembr (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signaling Technology, 4370)被用于被用于免疫印迹在人类样本上. J Invest Dermatol (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000. Biochim Biophys Acta (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类; 1:200
  • 免疫印迹; 人类; 1:2000
  • 免疫组化-冰冻切片; 小鼠; 1:200
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫细胞化学在人类样本上浓度为1:200, 被用于免疫印迹在人类样本上浓度为1:2000 和 被用于免疫组化-冰冻切片在小鼠样本上浓度为1:200. J Neurosci Res (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technologies, 4370)被用于被用于免疫印迹在人类样本上. J Cell Physiol (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上. J Neurosci (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上. J Biol Chem (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 犬
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在犬样本上. Exp Cell Res (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000. Breast Cancer Res (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上. J Neurosci (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫沉淀; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, CST-4370)被用于被用于免疫沉淀在小鼠样本上. Oncogene (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:100
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)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. Gastroenterology (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 7
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling Technology, 4370)被用于被用于免疫印迹在小鼠样本上 (图 7). PLoS Genet (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上. Evid Based Complement Alternat Med (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化; 小鼠; 1:200
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370S)被用于被用于免疫组化在小鼠样本上浓度为1:200. Cancer Res (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 图 10
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上 (图 10). PLoS ONE (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫细胞化学在人类样本上 和 被用于免疫印迹在人类样本上. Glia (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 图 5
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling Technology, 4370)被用于被用于免疫印迹在人类样本上 (图 5). Oncogene (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signalling, 4370)被用于被用于免疫印迹在小鼠样本上. PLoS ONE (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:1000. PLoS ONE (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上 和 被用于免疫印迹在小鼠样本上. J Lipid Res (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 大鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在大鼠样本上. Diabetes (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000. Oncogene (2014) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:2000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上浓度为1:2000. Brain Res (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-冰冻切片; 大鼠; 1:2000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370S)被用于被用于免疫组化-冰冻切片在大鼠样本上浓度为1:2000. Eur J Neurosci (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-石蜡切片; 小鼠; 1:500
  • 免疫印迹; 小鼠; 1:500
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)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 和 被用于免疫印迹在小鼠样本上浓度为1:500. J Huntingtons Dis (2012) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling Technology, 4370)被用于被用于免疫印迹在小鼠样本上. PLoS ONE (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上. PLoS ONE (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:2000; 图 1
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell signal, 4370)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 1). Cell Tissue Res (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫细胞化学; 人类
  • 免疫印迹; 人类
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫细胞化学在人类样本上 和 被用于免疫印迹在人类样本上. J Biol Chem (2012) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠
赛信通(上海)生物试剂有限公司 MAPK10抗体(CST, 4370)被用于被用于免疫印迹在小鼠样本上. Cell Res (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 人类; 1:1000
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫印迹在人类样本上浓度为1:1000. Oncogene (2013) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫印迹; 小鼠; 1:1000; 图 6
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)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 (2012) ncbi
domestic rabbit 单克隆(D13.14.4E)
  • 免疫组化-自由浮动切片; song sparrow
赛信通(上海)生物试剂有限公司 MAPK10抗体(Cell Signaling, 4370)被用于被用于免疫组化-自由浮动切片在song sparrow样本上. Endocrinology (2012) ncbi
文章列表
  1. Mukherjee B, Tiwari A, Palo A, Pattnaik N, Samantara S, Dixit M. Reduced expression of FRG1 facilitates breast cancer progression via GM-CSF/MEK-ERK axis by abating FRG1 mediated transcriptional repression of GM-CSF. Cell Death Discov. 2022;8:442 pubmed 出版商
  2. Liu J, Lai X, Yu R, Ding H, Bai H, Yang Z, et al. Progranulin aggravates lethal Candida albicans sepsis by regulating inflammatory response and antifungal immunity. PLoS Pathog. 2022;18:e1010873 pubmed 出版商
  3. 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
  4. Sun Q, Wang Y, Ji H, Sun X, Xie S, Chen L, et al. Lenvatinib for effectively treating antiangiogenic drug-resistant nasopharyngeal carcinoma. Cell Death Dis. 2022;13:724 pubmed 出版商
  5. Chakrabarti M, Bhattacharya A, Gebere M, Johnson J, Ayub Z, Chatzistamou I, et al. Increased TGFβ1 and SMAD3 Contribute to Age-Related Aortic Valve Calcification. Front Cardiovasc Med. 2022;9:770065 pubmed 出版商
  6. Que W, Ma K, Hu X, Guo W, Li X. Combinations of anti-GITR antibody and CD28 superagonist induce permanent allograft acceptance by generating type 1 regulatory T cells. Sci Adv. 2022;8:eabo4413 pubmed 出版商
  7. Ye G, Xu M, Shu Y, Sun X, Mai Y, Hong Y, et al. A Quassinoid Diterpenoid Eurycomanone from Eurycoma longifolia Jack Exerts Anti-Cancer Effect through Autophagy Inhibition. Molecules. 2022;27: pubmed 出版商
  8. 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
  9. Liu C, Zheng S, Wang Z, Wang S, Wang X, Yang L, et al. KRAS-G12D mutation drives immune suppression and the primary resistance of anti-PD-1/PD-L1 immunotherapy in non-small cell lung cancer. Cancer Commun (Lond). 2022;42:828-847 pubmed 出版商
  10. Shu W, Zhu X, Wang K, Cherepanoff S, Conway R, Madigan M, et al. The multi-kinase inhibitor afatinib serves as a novel candidate for the treatment of human uveal melanoma. Cell Oncol (Dordr). 2022;45:601-619 pubmed 出版商
  11. Song M, Meng Q, Jiang X, Liu J, Xiao M, Zhang Z, et al. Phospholipase D1 promotes cervical cancer progression by activating the RAS pathway. J Cell Mol Med. 2022;26:4244-4253 pubmed 出版商
  12. Liu H, He J, Bagheri Yarmand R, Li Z, Liu R, Wang Z, et al. Osteocyte CIITA aggravates osteolytic bone lesions in myeloma. Nat Commun. 2022;13:3684 pubmed 出版商
  13. Huang J, Wang X, Li B, Shen S, Wang R, Tao H, et al. L-5-hydroxytryptophan promotes antitumor immunity by inhibiting PD-L1 inducible expression. J Immunother Cancer. 2022;10: pubmed 出版商
  14. Mao L, Xin F, Ren J, Xu S, Huang H, Zha X, et al. 5-HT2B-mediated serotonin activation in enterocytes suppresses colitis-associated cancer initiation and promotes cancer progression. Theranostics. 2022;12:3928-3945 pubmed 出版商
  15. Kumar D, Das M, Oberg A, Sahoo D, Wu P, Sauceda C, et al. Hepatocyte Deletion of IGF2 Prevents DNA Damage and Tumor Formation in Hepatocellular Carcinoma. Adv Sci (Weinh). 2022;9:e2105120 pubmed 出版商
  16. Qin L, Wang L, Zhang J, Zhou H, Yang Z, Wang Y, et al. Therapeutic strategies targeting uPAR potentiate anti-PD-1 efficacy in diffuse-type gastric cancer. Sci Adv. 2022;8:eabn3774 pubmed 出版商
  17. Chen Y, Xu J, Pan W, Xu X, Ma X, Chu Y, et al. Galectin-3 enhances trastuzumab resistance by regulating cancer malignancy and stemness in HER2-positive breast cancer cells. Thorac Cancer. 2022;13:1961-1973 pubmed 出版商
  18. 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
  19. Shiwaku H, Katayama S, Kondo K, Nakano Y, Tanaka H, Yoshioka Y, et al. Autoantibodies against NCAM1 from patients with schizophrenia cause schizophrenia-related behavior and changes in synapses in mice. Cell Rep Med. 2022;3:100597 pubmed 出版商
  20. Kidger A, Saville M, Rushworth L, Davidson J, Stellzig J, Ono M, et al. Suppression of mutant Kirsten-RAS (KRASG12D)-driven pancreatic carcinogenesis by dual-specificity MAP kinase phosphatases 5 and 6. Oncogene. 2022;41:2811-2823 pubmed 出版商
  21. Xiong W, Gao X, Zhang T, Jiang B, Hu M, Bu X, et al. USP8 inhibition reshapes an inflamed tumor microenvironment that potentiates the immunotherapy. Nat Commun. 2022;13:1700 pubmed 出版商
  22. 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
  23. Weiss J, Hunter M, CRUZ N, Baggiolini A, Tagore M, Ma Y, et al. Anatomic position determines oncogenic specificity in melanoma. Nature. 2022;604:354-361 pubmed 出版商
  24. Ye C, Lian G, Wang T, Chen A, Chen W, Gong J, et al. The zinc transporter ZIP12 regulates monocrotaline-induced proliferation and migration of pulmonary arterial smooth muscle cells via the AKT/ERK signaling pathways. BMC Pulm Med. 2022;22:111 pubmed 出版商
  25. Jin R, Gao Q, Yin C, Zou M, Lu K, Liu W, et al. The CD146-HIF-1α axis regulates epithelial cell migration and alveolar maturation in a mouse model of bronchopulmonary dysplasia. Lab Invest. 2022;102:794-804 pubmed 出版商
  26. Muhammad A, Hao L, Al Kury L, Rehman N, Alvi A, Badshah H, et al. Carveol Promotes Nrf2 Contribution in Depressive Disorders through an Anti-inflammatory Mechanism. Oxid Med Cell Longev. 2022;2022:4509204 pubmed 出版商
  27. Pantasis S, Friemel J, Brütsch S, Hu Z, Krautbauer S, Liebisch G, et al. Vertebrate lonesome kinase modulates the hepatocyte secretome to prevent perivascular liver fibrosis and inflammation. J Cell Sci. 2022;135: pubmed 出版商
  28. Günes Günsel G, Conlon T, Jeridi A, Kim R, Ertuz Z, Lang N, et al. The arginine methyltransferase PRMT7 promotes extravasation of monocytes resulting in tissue injury in COPD. Nat Commun. 2022;13:1303 pubmed 出版商
  29. Peng Y, Zhu X, Gao L, Wang J, Liu H, Zhu T, et al. Mycobacterium tuberculosis Rv0309 Dampens the Inflammatory Response and Enhances Mycobacterial Survival. Front Immunol. 2022;13:829410 pubmed 出版商
  30. Cornille M, Moriceau S, Khonsari R, Heuz xe9 Y, Loisay L, Boitez V, et al. FGFR3 overactivation in the brain is responsible for memory impairments in Crouzon syndrome mouse model. J Exp Med. 2022;219: pubmed 出版商
  31. Wang M, Zhang C, Zheng Q, Ma Z, Qi M, Di G, et al. RhoJ facilitates angiogenesis in glioblastoma via JNK/VEGFR2 mediated activation of PAK and ERK signaling pathways. Int J Biol Sci. 2022;18:942-955 pubmed 出版商
  32. Song Y, Chen W, Zhu B, Ge W. Disruption of Epidermal Growth Factor Receptor but Not EGF Blocks Follicle Activation in Zebrafish Ovary. Front Cell Dev Biol. 2021;9:750888 pubmed 出版商
  33. Grinat J, Kosel F, Goveas N, Kranz A, Alexopoulou D, Rajewsky K, et al. Epigenetic modifier balances Mapk and Wnt signalling in differentiation of goblet and Paneth cells. Life Sci Alliance. 2022;5: pubmed 出版商
  34. Zerfaoui M, Toraih E, Ruiz E, Errami Y, Attia A, Krzysztof M, et al. Nuclear Localization of BRAFV600E Is Associated with HMOX-1 Upregulation and Aggressive Behavior of Melanoma Cells. Cancers (Basel). 2022;14: pubmed 出版商
  35. Pulkka O, Viisanen L, Tynninen O, Laaksonen M, Reichardt P, Reichardt A, et al. Fibrinogen-like protein 2 in gastrointestinal stromal tumour. J Cell Mol Med. 2022;26:1083-1094 pubmed 出版商
  36. Li P, Li L, Li Z, Wang S, Li R, Zhao W, et al. Annexin A1 promotes the progression of bladder cancer via regulating EGFR signaling pathway. Cancer Cell Int. 2022;22:7 pubmed 出版商
  37. Yang N, Isensee J, Neel D, Quadros A, Zhang H, Lauzadis J, et al. Anthrax toxins regulate pain signaling and can deliver molecular cargoes into ANTXR2+ DRG sensory neurons. Nat Neurosci. 2022;25:168-179 pubmed 出版商
  38. Inubushi T, Fujiwara A, Hirose T, Aoyama G, Uchihashi T, Yoshida N, et al. Ras signaling and RREB1 are required for the dissociation of medial edge epithelial cells in murine palatogenesis. Dis Model Mech. 2022;15: pubmed 出版商
  39. Lu Y, Xin D, Guan L, Xu M, Yang Y, Chen Y, et al. Metformin Downregulates PD-L1 Expression in Esophageal Squamous Cell Catrcinoma by Inhibiting IL-6 Signaling Pathway. Front Oncol. 2021;11:762523 pubmed 出版商
  40. Xu Y, Chen X, Pan S, Wang Z, Zhu X. TM7SF2 regulates cell proliferation and apoptosis by activation of C-Raf/ERK pathway in cervical cancer. Cell Death Discov. 2021;7:299 pubmed 出版商
  41. Hua X, Ge S, Zhang M, Mo F, Zhang L, Zhang J, et al. Pathogenic Roles of CXCL10 in Experimental Autoimmune Prostatitis by Modulating Macrophage Chemotaxis and Cytokine Secretion. Front Immunol. 2021;12:706027 pubmed 出版商
  42. Wang Y, Han J, Zhu J, Zhang M, Ju M, Du Y, et al. GluN2A/ERK/CREB Signaling Pathway Involved in Electroacupuncture Regulating Hypothalamic-Pituitary-Adrenal Axis Hyperactivity. Front Neurosci. 2021;15:703044 pubmed 出版商
  43. Passman A, Strauss R, McSpadden S, Finch Edmondson M, Andrewartha N, Woo K, et al. Maraviroc Prevents HCC Development by Suppressing Macrophages and the Liver Progenitor Cell Response in a Murine Chronic Liver Disease Model. Cancers (Basel). 2021;13: pubmed 出版商
  44. Li K, Wu R, Zhou M, Tong H, Luo K. Desmosomal proteins of DSC2 and PKP1 promote cancer cells survival and metastasis by increasing cluster formation in circulatory system. Sci Adv. 2021;7:eabg7265 pubmed 出版商
  45. Wang Q, Qin F, Wang H, Yang H, Liu Q, Li Z, et al. Effect of Electro-Acupuncture at ST36 and SP6 on the cAMP -CREB Pathway and mRNA Expression Profile in the Brainstem of Morphine Tolerant Mice. Front Neurosci. 2021;15:698967 pubmed 出版商
  46. Rajendran R, Rajendran V, Giraldo Velasquez M, Megalofonou F, Gurski F, Stadelmann C, et al. Oligodendrocyte-Specific Deletion of FGFR1 Reduces Cerebellar Inflammation and Neurodegeneration in MOG35-55-Induced EAE. Int J Mol Sci. 2021;22: pubmed 出版商
  47. Shi Y, Hu Y, Wang Y, Ma X, Tang L, Tao M, et al. Blockade of Autophagy Prevents the Development and Progression of Peritoneal Fibrosis. Front Pharmacol. 2021;12:724141 pubmed 出版商
  48. Gredic M, Wu C, Hadžić S, Pak O, Savai R, Kojonazarov B, et al. Myeloid cell-specific deletion of inducible nitric oxide synthase protects against smoke-induced pulmonary hypertension in mice. Eur Respir J. 2021;: pubmed 出版商
  49. De Velasco M, Kura Y, Ando N, Sako N, Banno E, Fujita K, et al. Context-Specific Efficacy of Apalutamide Therapy in Preclinical Models of Pten-Deficient Prostate Cancer. Cancers (Basel). 2021;13: pubmed 出版商
  50. Dong J, Viswanathan S, Adami E, Schafer S, Kuthubudeen F, Widjaja A, et al. The pro-regenerative effects of hyperIL6 in drug-induced liver injury are unexpectedly due to competitive inhibition of IL11 signaling. elife. 2021;10: pubmed 出版商
  51. Tang X, Li G, Shi L, Su F, Qian M, Liu Z, et al. Combined intermittent fasting and ERK inhibition enhance the anti-tumor effects of chemotherapy via the GSK3β-SIRT7 axis. Nat Commun. 2021;12:5058 pubmed 出版商
  52. Kareddula A, Medina D, Petrosky W, Dolfi S, Tereshchenko I, Walton K, et al. The role of chromodomain helicase DNA binding protein 1 (CHD1) in promoting an invasive prostate cancer phenotype. Ther Adv Urol. 2021;13:17562872211022462 pubmed 出版商
  53. Vichas A, Riley A, Nkinsi N, Kamlapurkar S, Parrish P, Lo A, et al. Integrative oncogene-dependency mapping identifies RIT1 vulnerabilities and synergies in lung cancer. Nat Commun. 2021;12:4789 pubmed 出版商
  54. Guo Y, Lu Y, Lu X, He S, Li S, Shao S, et al. Krüppel-Like Factor 15/Interleukin 11 Axis-Mediated Adventitial Remodeling Depends on Extracellular Signal-Regulated Kinases 1 and 2 Activation in Angiotensin II-Induced Hypertension. J Am Heart Assoc. 2021;10:e020554 pubmed 出版商
  55. Ye Z, Xu S, Shi Y, Bacolla A, Syed A, Moiani D, et al. GRB2 enforces homology-directed repair initiation by MRE11. Sci Adv. 2021;7: pubmed 出版商
  56. Chen X, Miao M, Zhou M, Chen J, Li D, Zhang L, et al. Poly-L-arginine promotes asthma angiogenesis through induction of FGFBP1 in airway epithelial cells via activation of the mTORC1-STAT3 pathway. Cell Death Dis. 2021;12:761 pubmed 出版商
  57. Laliotis G, Chavdoula E, Paraskevopoulou M, Kaba A, La Ferlita A, Singh S, et al. AKT3-mediated IWS1 phosphorylation promotes the proliferation of EGFR-mutant lung adenocarcinomas through cell cycle-regulated U2AF2 RNA splicing. Nat Commun. 2021;12:4624 pubmed 出版商
  58. Beecher K, Wang J, Jacques A, Chaaya N, Chehrehasa F, Belmer A, et al. Sucrose Consumption Alters Serotonin/Glutamate Co-localisation Within the Prefrontal Cortex and Hippocampus of Mice. Front Mol Neurosci. 2021;14:678267 pubmed 出版商
  59. Ding B, Bao C, Jin L, Xu L, Fan W, Lou W. CASK Silence Overcomes Sorafenib Resistance of Hepatocellular Carcinoma Through Activating Apoptosis and Autophagic Cell Death. Front Oncol. 2021;11:681683 pubmed 出版商
  60. Wang W, Lu G, Liu H, Xiong Z, Leung H, Cao R, et al. Pten Regulates Cardiomyocyte Differentiation by Modulating Non-CG Methylation via Dnmt3. Adv Sci (Weinh). 2021;:e2100849 pubmed 出版商
  61. Fan H, Wang S, Wang H, Sun M, Wu S, Bao W. Melatonin Ameliorates the Toxicity Induced by Deoxynivalenol in Murine Ovary Granulosa Cells by Antioxidative and Anti-Inflammatory Effects. Antioxidants (Basel). 2021;10: pubmed 出版商
  62. Ibarra B, Machen C, ATIT R. Wnt-Dependent Activation of ERK Mediates Repression of Chondrocyte Fate during Calvarial Development. J Dev Biol. 2021;9: pubmed 出版商
  63. Wang Q, Tao C, Hannan A, Yoon S, Min X, Peregrin J, et al. Lacrimal gland budding requires PI3K-dependent suppression of EGF signaling. Sci Adv. 2021;7: pubmed 出版商
  64. Jiang Y, Guo Y, Hao J, Guenter R, Lathia J, Beck A, et al. Development of an arteriolar niche and self-renewal of breast cancer stem cells by lysophosphatidic acid/protein kinase D signaling. Commun Biol. 2021;4:780 pubmed 出版商
  65. Shelton W, Thomas S, Alexander H, Thomes C, Conway D, Dubash A. Desmoglein-2 harnesses a PDZ-GEF2/Rap1 signaling axis to control cell spreading and focal adhesions independent of cell-cell adhesion. Sci Rep. 2021;11:13295 pubmed 出版商
  66. Liu L, Xu X, Qu Z, Zhao L, Zhang C, Li Z, et al. Determining 5HT7R's Involvement in Modifying the Antihyperalgesic Effects of Electroacupuncture on Rats With Recurrent Migraine. Front Neurosci. 2021;15:668616 pubmed 出版商
  67. Zhang B, Lapenta K, Wang Q, Nam J, Chung D, Robert M, et al. Trefoil factor 2 secreted from damaged hepatocytes activates hepatic stellate cells to induce fibrogenesis. J Biol Chem. 2021;297:100887 pubmed 出版商
  68. Ferguson B, Wennersten S, Demos Davies K, Rubino M, Robinson E, Cavasin M, et al. DUSP5-mediated inhibition of smooth muscle cell proliferation suppresses pulmonary hypertension and right ventricular hypertrophy. Am J Physiol Heart Circ Physiol. 2021;321:H382-H389 pubmed 出版商
  69. Bayoumi A, Elsayed A, Han S, Petta S, Adams L, Aller R, et al. Mistranslation Drives Alterations in Protein Levels and the Effects of a Synonymous Variant at the Fibroblast Growth Factor 21 Locus. Adv Sci (Weinh). 2021;8:2004168 pubmed 出版商
  70. Kimura H, Sada R, Takada N, Harada A, Doki Y, Eguchi H, et al. The Dickkopf1 and FOXM1 positive feedback loop promotes tumor growth in pancreatic and esophageal cancers. Oncogene. 2021;40:4486-4502 pubmed 出版商
  71. Zhu J, Cai T, Zhou J, Du W, Zeng Y, Liu T, et al. CD151 drives cancer progression depending on integrin α3β1 through EGFR signaling in non-small cell lung cancer. J Exp Clin Cancer Res. 2021;40:192 pubmed 出版商
  72. Lai W, Zhu W, Xiao C, Li X, Wang Y, Han Y, et al. HJURP promotes proliferation in prostate cancer cells through increasing CDKN1A degradation via the GSK3β/JNK signaling pathway. Cell Death Dis. 2021;12:583 pubmed 出版商
  73. Jiang D, Zhang J, Lin S, Wang Y, Chen Y, Fan J. Prolyl Endopeptidase Gene Disruption Improves Gut Dysbiosis and Non-alcoholic Fatty Liver Disease in Mice Induced by a High-Fat Diet. Front Cell Dev Biol. 2021;9:628143 pubmed 出版商
  74. 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
  75. Parodi B, Sanna A, Cedola A, Uccelli A, Kerlero de Rosbo N. Hydroxycarboxylic Acid Receptor 2, a Pleiotropically Linked Receptor for the Multiple Sclerosis Drug, Monomethyl Fumarate. Possible Implications for the Inflammatory Response. Front Immunol. 2021;12:655212 pubmed 出版商
  76. Wu Y, Xie L, Hua Y, Xu H, Chen G, Han X, et al. Tanshinone I Inhibits Oxidative Stress-Induced Cardiomyocyte Injury by Modulating Nrf2 Signaling. Front Pharmacol. 2021;12:644116 pubmed 出版商
  77. Mou S, Zhou Z, Feng H, Zhang N, Lin Z, Aiyasiding X, et al. Liquiritin Attenuates Lipopolysaccharides-Induced Cardiomyocyte Injury via an AMP-Activated Protein Kinase-Dependent Signaling Pathway. Front Pharmacol. 2021;12:648688 pubmed 出版商
  78. 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
  79. Homer Bouthiette C, Xiao L, Hurley M. Gait disturbances and muscle dysfunction in fibroblast growth factor 2 knockout mice. Sci Rep. 2021;11:11005 pubmed 出版商
  80. Li D, Chen J, Guo J, Li L, Cai G, Chen S, et al. A phosphorylation of RIPK3 kinase initiates an intracellular apoptotic pathway that promotes prostaglandin2α-induced corpus luteum regression. elife. 2021;10: pubmed 出版商
  81. Chang B, Guan H, Wang X, Chen Z, Zhu W, Wei X, et al. Cox4i2 Triggers an Increase in Reactive Oxygen Species, Leading to Ferroptosis and Apoptosis in HHV7 Infected Schwann Cells. Front Mol Biosci. 2021;8:660072 pubmed 出版商
  82. Flowers B, Xu H, Mulligan A, Hanson K, Seoane J, Vogel H, et al. Cell of Origin Influences Pancreatic Cancer Subtype. Cancer Discov. 2021;11:660-677 pubmed 出版商
  83. Cao C, Zhang Y, Cheng J, Wu F, Niu X, Hu X, et al. β-Arrestin2 Inhibits the Apoptosis and Facilitates the Proliferation of Fibroblast-like Synoviocytes in Diffuse-type Tenosynovial Giant Cell Tumor. Cancer Genomics Proteomics. 2021;18:461-470 pubmed 出版商
  84. Lindfors S, Polianskyte Prause Z, Bouslama R, Lehtonen E, Mannerla M, Nisen H, et al. Adiponectin receptor agonist AdipoRon ameliorates renal inflammation in diet-induced obese mice and endotoxin-treated human glomeruli ex vivo. Diabetologia. 2021;64:1866-1879 pubmed 出版商
  85. Huang W, Liu H, Pan Y, Yang H, Lin J, Zhang H. Mechanical stretching of the pulmonary vein mediates pulmonary hypertension due to left heart disease by regulating SAC/MAPK pathway and the expression of IL-6 and TNF-α. J Cardiothorac Surg. 2021;16:127 pubmed 出版商
  86. Feng W, Wang J, Yan X, Zhang Q, Chai L, Wang Q, et al. ERK/Drp1-dependent mitochondrial fission contributes to HMGB1-induced autophagy in pulmonary arterial hypertension. Cell Prolif. 2021;54:e13048 pubmed 出版商
  87. Pei G, Zyla J, He L, Moura Alves P, Steinle H, Saikali P, et al. Cellular stress promotes NOD1/2-dependent inflammation via the endogenous metabolite sphingosine-1-phosphate. EMBO J. 2021;40:e106272 pubmed 出版商
  88. Zheng H, Zhang Y, He J, Yang Z, Zhang R, Li L, et al. Hydroxychloroquine Inhibits Macrophage Activation and Attenuates Renal Fibrosis After Ischemia-Reperfusion Injury. Front Immunol. 2021;12:645100 pubmed 出版商
  89. Wagner M, Lyons Y, Siedel J, Dood R, Nagaraja A, Haemmerle M, et al. Combined VEGFR and MAPK pathway inhibition in angiosarcoma. Sci Rep. 2021;11:9362 pubmed 出版商
  90. Chen X, Ma W, Yao Y, Zhang Q, Li J, Wu X, et al. Serum deprivation-response protein induces apoptosis in hepatocellular carcinoma through ASK1-JNK/p38 MAPK pathways. Cell Death Dis. 2021;12:425 pubmed 出版商
  91. Wang Z, Goto Y, Allevato M, Wu V, Saddawi Konefka R, Gilardi M, et al. Disruption of the HER3-PI3K-mTOR oncogenic signaling axis and PD-1 blockade as a multimodal precision immunotherapy in head and neck cancer. Nat Commun. 2021;12:2383 pubmed 出版商
  92. He S, Lu Y, Guo Y, Li S, Lu X, Shao S, et al. Krüppel-Like Factor 15 Modulates CXCL1/CXCR2 Signaling-Mediated Inflammatory Response Contributing to Angiotensin II-Induced Cardiac Remodeling. Front Cell Dev Biol. 2021;9:644954 pubmed 出版商
  93. 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
  94. Wang X, Zhang H, Sapio R, Yang J, Wong J, Zhang X, et al. SOD1 regulates ribosome biogenesis in KRAS mutant non-small cell lung cancer. Nat Commun. 2021;12:2259 pubmed 出版商
  95. 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
  96. Zewdu R, Mehrabad E, Ingram K, Fang P, Gillis K, Camolotto S, et al. An NKX2-1/ERK/WNT feedback loop modulates gastric identity and response to targeted therapy in lung adenocarcinoma. elife. 2021;10: pubmed 出版商
  97. Chang N, Yeh C, Lin Y, Kuo K, Fong I, Kounis N, et al. Garcinol Attenuates Lipoprotein(a)-Induced Oxidative Stress and Inflammatory Cytokine Production in Ventricular Cardiomyocyte through α7-Nicotinic Acetylcholine Receptor-Mediated Inhibition of the p38 MAPK and NF-κB Signaling Pathways. Antioxidants (Basel). 2021;10: pubmed 出版商
  98. Moore K, Fulmer D, Guo L, Koren N, Glover J, Moore R, et al. PDGFRα: Expression and Function during Mitral Valve Morphogenesis. J Cardiovasc Dev Dis. 2021;8: pubmed 出版商
  99. Brea R, Valdecantos P, Rada P, Alen R, García Monzón C, Bosca L, et al. Chronic treatment with acetaminophen protects against liver aging by targeting inflammation and oxidative stress. Aging (Albany NY). 2021;13:7800-7827 pubmed 出版商
  100. Matlac D, Hadrava Vanova K, Bechmann N, Richter S, Folberth J, Ghayee H, et al. Succinate Mediates Tumorigenic Effects via Succinate Receptor 1: Potential for New Targeted Treatment Strategies in Succinate Dehydrogenase Deficient Paragangliomas. Front Endocrinol (Lausanne). 2021;12:589451 pubmed 出版商
  101. Ruan L, Yao X, Li W, Zhang L, Yang H, Sun J, et al. Effect of galectin-3 in the pathogenesis of arteriovenous fistula stenosis formation. Ren Fail. 2021;43:566-576 pubmed 出版商
  102. Sewastianik T, Straubhaar J, Zhao J, Samur M, Adler K, Tanton H, et al. miR-15a/16-1 deletion in activated B cells promotes plasma cell and mature B-cell neoplasms. Blood. 2021;137:1905-1919 pubmed 出版商
  103. Xue T, Liu X, Zhang M, E Q, Liu S, Zou M, et al. PADI2-Catalyzed MEK1 Citrullination Activates ERK1/2 and Promotes IGF2BP1-Mediated SOX2 mRNA Stability in Endometrial Cancer. Adv Sci (Weinh). 2021;8:2002831 pubmed 出版商
  104. Yi M, Liu Y, Umpierre A, Chen T, Ying Y, Zheng J, et al. Optogenetic activation of spinal microglia triggers chronic pain in mice. PLoS Biol. 2021;19:e3001154 pubmed 出版商
  105. Egli Spichtig D, Zhang M, Li A, Pastor Arroyo E, Hernando N, Wagner C, et al. Renal Dnase1 expression is regulated by FGF23 but loss of Dnase1 does not alter renal phosphate handling. Sci Rep. 2021;11:6175 pubmed 出版商
  106. Wang W, Zhu Y, Sun Z, Jin C, Wang X. Positive feedback regulation between USP15 and ERK2 inhibits osteoarthritis progression through TGF-β/SMAD2 signaling. Arthritis Res Ther. 2021;23:84 pubmed 出版商
  107. Fang Y, Jiang Q, Li S, Zhu H, Xu R, Song N, et al. Opposing functions of β-arrestin 1 and 2 in Parkinson's disease via microglia inflammation and Nprl3. Cell Death Differ. 2021;28:1822-1836 pubmed 出版商
  108. 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
  109. Ischenko I, D Amico S, Rao M, Li J, Hayman M, Powers S, et al. KRAS drives immune evasion in a genetic model of pancreatic cancer. Nat Commun. 2021;12:1482 pubmed 出版商
  110. Varshney R, Ranjit R, Chiao Y, Kinter M, Ahn B. Myocardial Hypertrophy and Compensatory Increase in Systolic Function in a Mouse Model of Oxidative Stress. Int J Mol Sci. 2021;22: pubmed 出版商
  111. Chu C, Lee Y, Hsieh C, Yeh C, Chao T, Chen P, et al. Genome-wide CRISPR/Cas9 knockout screening uncovers a novel inflammatory pathway critical for resistance to arginine-deprivation therapy. Theranostics. 2021;11:3624-3641 pubmed 出版商
  112. Yin H, Zhang X, Yang P, Zhang X, Peng Y, Li D, et al. RNA m6A methylation orchestrates cancer growth and metastasis via macrophage reprogramming. Nat Commun. 2021;12:1394 pubmed 出版商
  113. Wu M, Ma Y, Chen X, Liang N, Qu S, Chen H. Hyperuricemia causes kidney damage by promoting autophagy and NLRP3-mediated inflammation in rats with urate oxidase deficiency. Dis Model Mech. 2021;14: pubmed 出版商
  114. Yu Z, Li X, Yang M, Huang J, Fang Q, Jia J, et al. TRIM41 is required to innate antiviral response by polyubiquitinating BCL10 and recruiting NEMO. Signal Transduct Target Ther. 2021;6:90 pubmed 出版商
  115. Matsuzawa F, Kamachi H, Mizukami T, Einama T, Kawamata F, Fujii Y, et al. Mesothelin blockage by Amatuximab suppresses cell invasiveness, enhances gemcitabine sensitivity and regulates cancer cell stemness in mesothelin-positive pancreatic cancer cells. BMC Cancer. 2021;21:200 pubmed 出版商
  116. Cao Y, Li L, Liu Y, Chen G, Tao Z, Wang R, et al. I-κB Kinase-ε Deficiency Attenuates the Development of Angiotensin II-Induced Myocardial Hypertrophy in Mice. Oxid Med Cell Longev. 2021;2021:6429197 pubmed 出版商
  117. Guo M, Cui C, Song X, Jia L, Li D, Wang X, et al. Deletion of FGF9 in GABAergic neurons causes epilepsy. Cell Death Dis. 2021;12:196 pubmed 出版商
  118. Fu C, Zhang Q, Wang A, Yang S, Jiang Y, Bai L, et al. EWI-2 controls nucleocytoplasmic shuttling of EGFR signaling molecules and miRNA sorting in exosomes to inhibit prostate cancer cell metastasis. Mol Oncol. 2021;15:1543-1565 pubmed 出版商
  119. Shen X, Wang H, Weng C, Jiang H, Chen J. Caspase 3/GSDME-dependent pyroptosis contributes to chemotherapy drug-induced nephrotoxicity. Cell Death Dis. 2021;12:186 pubmed 出版商
  120. González Cano R, Montilla Garc xed a x, Perazzoli G, Torres J, Ca xf1 izares F, Fern xe1 ndez Segura E, et al. Intracolonic Mustard Oil Induces Visceral Pain in Mice by TRPA1-Dependent and -Independent Mechanisms: Role of Tissue Injury and P2X Receptors. Front Pharmacol. 2020;11:613068 pubmed 出版商
  121. Seoane Collazo P, Romero Pic xf3 A, Rial Pensado E, Li xf1 ares Pose L, Est xe9 vez Salguero x, Fern xf8 J, et al. κ-Opioid Signaling in the Lateral Hypothalamic Area Modulates Nicotine-Induced Negative Energy Balance. Int J Mol Sci. 2021;22: pubmed 出版商
  122. Klemke L, De Oliveira T, Witt D, Winkler N, Bohnenberger H, Bucala R, et al. Hsp90-stabilized MIF supports tumor progression via macrophage recruitment and angiogenesis in colorectal cancer. Cell Death Dis. 2021;12:155 pubmed 出版商
  123. Delgado E, Erickson H, Tao J, Monga S, Duncan A, Anakk S. Scaffolding Protein IQGAP1 is Dispensable But Its Overexpression Promotes Hepatocellular Carcinoma via YAP1 Signaling. Mol Cell Biol. 2021;: pubmed 出版商
  124. Fleming Martinez A, D xf6 ppler H, Bastea L, Edenfield B, Patel T, Leitges M, et al. Dysfunctional EGFR and oxidative stress-induced PKD1 signaling drive formation of DCLK1+ pancreatic stem cells. iScience. 2021;24:102019 pubmed 出版商
  125. Isomura H, Taguchi A, Kajino T, Asai N, Nakatochi M, Kato S, et al. Conditional Ror1 knockout reveals crucial involvement in lung adenocarcinoma development and identifies novel HIF-1α regulator. Cancer Sci. 2021;: pubmed 出版商
  126. Brunal A, Clark K, Ma M, Woods I, Pan Y. Effects of Constitutive and Acute Connexin 36 Deficiency on Brain-Wide Susceptibility to PTZ-Induced Neuronal Hyperactivity. Front Mol Neurosci. 2020;13:587978 pubmed 出版商
  127. Zhang S, Sousa A, Lin M, Iwano A, Jain R, Ma B, et al. Role of Chitinase 3-Like 1 Protein in the Pathogenesis of Hepatic Insulin Resistance in Nonalcoholic Fatty Liver Disease. Cells. 2021;10: pubmed 出版商
  128. 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
  129. 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
  130. Jing C, Duan Y, Zhou M, Yue K, Zhuo S, Li X, et al. Blockade of deubiquitinating enzyme PSMD14 overcomes chemoresistance in head and neck squamous cell carcinoma by antagonizing E2F1/Akt/SOX2-mediated stemness. Theranostics. 2021;11:2655-2669 pubmed 出版商
  131. Hu X, Villodre E, Larson R, Rahal O, Wang X, Gong Y, et al. Decorin-mediated suppression of tumorigenesis, invasion, and metastasis in inflammatory breast cancer. Commun Biol. 2021;4:72 pubmed 出版商
  132. Li S, Zhu Z, Xue M, Pan X, Tong G, Yi X, et al. The protective effects of fibroblast growth factor 10 against hepatic ischemia-reperfusion injury in mice. Redox Biol. 2021;40:101859 pubmed 出版商
  133. Kusakabe J, Hata K, Miyauchi H, Tajima T, Wang Y, Tamaki I, et al. Complement-5 Inhibition Deters Progression of Fulminant Hepatitis to Acute Liver Failure in Murine Models. Cell Mol Gastroenterol Hepatol. 2021;11:1351-1367 pubmed 出版商
  134. Yang J, Kitami M, Pan H, Nakamura M, Zhang H, Liu F, et al. Augmented BMP signaling commits cranial neural crest cells to a chondrogenic fate by suppressing autophagic β-catenin degradation. Sci Signal. 2021;14: pubmed 出版商
  135. Hou P, Jia P, Yang K, Li Z, Tian T, Lin Y, et al. An unconventional role of an ASB family protein in NF-κB activation and inflammatory response during microbial infection and colitis. Proc Natl Acad Sci U S A. 2021;118: pubmed 出版商
  136. Miller K, Pniewski K, Perry C, Papp S, Shaffer J, Velasco Silva J, et al. Targeting ACSS2 with a Transition-State Mimetic Inhibits Triple-Negative Breast Cancer Growth. Cancer Res. 2021;81:1252-1264 pubmed 出版商
  137. Dong J, Viswanathan S, Adami E, Singh B, Chothani S, Ng B, et al. Hepatocyte-specific IL11 cis-signaling drives lipotoxicity and underlies the transition from NAFLD to NASH. Nat Commun. 2021;12:66 pubmed 出版商
  138. Zulfiqar Z, Shah F, Shafique S, Alattar A, Ali T, Alvi A, et al. Repurposing FDA Approved Drugs as JNK3 Inhibitor for Prevention of Neuroinflammation Induced by MCAO in Rats. J Inflamm Res. 2020;13:1185-1205 pubmed 出版商
  139. 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
  140. Zhang G, Jiao Q, Shen C, Song H, Zhang H, Qiu Z, et al. Interleukin 6 regulates the expression of programmed cell death ligand 1 in thyroid cancer. Cancer Sci. 2021;112:997-1010 pubmed 出版商
  141. Song L, Chen X, Swanson T, LaViolette B, Pang J, Cunio T, et al. Lymphangiogenic therapy prevents cardiac dysfunction by ameliorating inflammation and hypertension. elife. 2020;9: pubmed 出版商
  142. Xiao L, Zhong M, Huang Y, Zhu J, Tang W, Li D, et al. Puerarin alleviates osteoporosis in the ovariectomy-induced mice by suppressing osteoclastogenesis via inhibition of TRAF6/ROS-dependent MAPK/NF-κB signaling pathways. Aging (Albany NY). 2020;12:21706-21729 pubmed 出版商
  143. Mo J, Anastasaki C, Chen Z, Shipman T, Papke J, Yin K, et al. Humanized neurofibroma model from induced pluripotent stem cells delineates tumor pathogenesis and developmental origins. J Clin Invest. 2020;: pubmed 出版商
  144. Kamali S, Rajendran R, Stadelmann C, Karnati S, Rajendran V, Giraldo Velasquez M, et al. Oligodendrocyte-specific deletion of FGFR2 ameliorates MOG35-55 -induced EAE through ERK and Akt signalling. Brain Pathol. 2021;31:297-311 pubmed 出版商
  145. Sünderhauf A, Raschdorf A, Hicken M, Schlichting H, Fetzer F, Brethack A, et al. GC1qR Cleavage by Caspase-1 Drives Aerobic Glycolysis in Tumor Cells. Front Oncol. 2020;10:575854 pubmed 出版商
  146. 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
  147. Cai J, Lin K, Cai W, Lin Y, Liu X, Guo L, et al. Tumors driven by RAS signaling harbor a natural vulnerability to oncolytic virus M1. Mol Oncol. 2020;14:3153-3168 pubmed 出版商
  148. Huang Y, Liang C, Ritz D, Coelho R, Septiadi D, Estermann M, et al. Collagen-rich omentum is a premetastatic niche for integrin α2-mediated peritoneal metastasis. elife. 2020;9: pubmed 出版商
  149. Li M, Xie Z, Li J, Lin J, Zheng G, Liu W, et al. GAS5 protects against osteoporosis by targeting UPF1/SMAD7 axis in osteoblast differentiation. elife. 2020;9: pubmed 出版商
  150. Zhu W, Liu C, Lu T, Zhang Y, Zhang S, Chen Q, et al. Knockout of EGFL6 by CRISPR/Cas9 Mediated Inhibition of Tumor Angiogenesis in Ovarian Cancer. Front Oncol. 2020;10:1451 pubmed 出版商
  151. Wang B, Li Q, Wang J, Zhao S, Nashun B, Qin L, et al. Plasmodium infection inhibits tumor angiogenesis through effects on tumor-associated macrophages in a murine implanted hepatoma model. Cell Commun Signal. 2020;18:157 pubmed 出版商
  152. Chen Y, Li J, Ma B, Li N, Wang S, Sun Z, et al. MSC-derived exosomes promote recovery from traumatic brain injury via microglia/macrophages in rat. Aging (Albany NY). 2020;12:18274-18296 pubmed 出版商
  153. Benavente F, Piltti K, Hooshmand M, Nava A, Lakatos A, Feld B, et al. Novel C1q receptor-mediated signaling controls neural stem cell behavior and neurorepair. elife. 2020;9: pubmed 出版商
  154. Dai C, Li Q, May H, Li C, Zhang G, Sharma G, et al. Lactate Dehydrogenase A Governs Cardiac Hypertrophic Growth in Response to Hemodynamic Stress. Cell Rep. 2020;32:108087 pubmed 出版商
  155. Wakashin H, Heymann J, Roshanravan H, Daneshpajouhnejad P, Rosenberg A, Shin M, et al. APOL1 renal risk variants exacerbate podocyte injury by increasing inflammatory stress. BMC Nephrol. 2020;21:371 pubmed 出版商
  156. Jing J, Ding N, Wang D, Ge X, Ma J, Ma R, et al. Oxidized-LDL inhibits testosterone biosynthesis by affecting mitochondrial function and the p38 MAPK/COX-2 signaling pathway in Leydig cells. Cell Death Dis. 2020;11:626 pubmed 出版商
  157. Sun Z, Ji N, Ma Q, Zhu R, Chen Z, Wang Z, et al. Epithelial-Mesenchymal Transition in Asthma Airway Remodeling Is Regulated by the IL-33/CD146 Axis. Front Immunol. 2020;11:1598 pubmed 出版商
  158. Eyler C, Matsunaga H, Hovestadt V, Vantine S, van Galen P, Bernstein B. Single-cell lineage analysis reveals genetic and epigenetic interplay in glioblastoma drug resistance. Genome Biol. 2020;21:174 pubmed 出版商
  159. Ozcan G, Lim S, Leighton P, Allison W, Rihel J. Sleep is bi-directionally modified by amyloid beta oligomers. elife. 2020;9: pubmed 出版商
  160. Cook S, Comrie W, Poli M, Similuk M, Oler A, Faruqi A, et al. HEM1 deficiency disrupts mTORC2 and F-actin control in inherited immunodysregulatory disease. Science. 2020;369:202-207 pubmed 出版商
  161. Yu W, Hua Y, Qiu H, Hao J, Zou K, Li Z, et al. PD-L1 promotes tumor growth and progression by activating WIP and β-catenin signaling pathways and predicts poor prognosis in lung cancer. Cell Death Dis. 2020;11:506 pubmed 出版商
  162. Sato K, Hikita H, Myojin Y, Fukumoto K, Murai K, Sakane S, et al. Hyperglycemia enhances pancreatic cancer progression accompanied by elevations in phosphorylated STAT3 and MYC levels. PLoS ONE. 2020;15:e0235573 pubmed 出版商
  163. Perkail S, Andricovich J, Kai Y, Tzatsos A. BAP1 is a haploinsufficient tumor suppressor linking chronic pancreatitis to pancreatic cancer in mice. Nat Commun. 2020;11:3018 pubmed 出版商
  164. Pattwell S, Arora S, Cimino P, Ozawa T, Szulzewsky F, Hoellerbauer P, et al. A kinase-deficient NTRK2 splice variant predominates in glioma and amplifies several oncogenic signaling pathways. Nat Commun. 2020;11:2977 pubmed 出版商
  165. Saoud R, Jaffa M, Habib A, Zhao J, Al Hariri M, Zhu R, et al. Modulation of proteomic and inflammatory signals by Bradykinin in podocytes. J Adv Res. 2020;24:409-422 pubmed 出版商
  166. Liao T, Lin C, Jiang J, Yang S, Teng H, Yang M. Harnessing stemness and PD-L1 expression by AT-rich interaction domain-containing protein 3B in colorectal cancer. Theranostics. 2020;10:6095-6112 pubmed 出版商
  167. Chakrabarti M, Al Sammarraie N, Gebere M, Bhattacharya A, Chopra S, Johnson J, et al. Transforming Growth Factor Beta3 is Required for Cardiovascular Development. J Cardiovasc Dev Dis. 2020;7: pubmed 出版商
  168. Izumi H, Wang Z, Goto Y, Ando T, Wu X, Zhang X, et al. Pathway-Specific Genome Editing of PI3K/mTOR Tumor Suppressor Genes Reveals that PTEN Loss Contributes to Cetuximab Resistance in Head and Neck Cancer. Mol Cancer Ther. 2020;19:1562-1571 pubmed 出版商
  169. 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
  170. Simula L, Corrado M, Accordi B, Di Rita A, Nazio F, Antonucci Y, et al. JNK1 and ERK1/2 modulate lymphocyte homeostasis via BIM and DRP1 upon AICD induction. Cell Death Differ. 2020;: pubmed 出版商
  171. Chen S, Zhang H, Li J, Shi J, Tang H, Zhang Y, et al. Tripartite Motif-Containing 27 Attenuates Liver Ischemia/Reperfusion Injury by Suppressing Transforming Growth Factor β-Activated Kinase 1 (TAK1) by TAK1 Binding Protein 2/3 Degradation. Hepatology. 2021;73:738-758 pubmed 出版商
  172. Dasgupta A, Lim Y, Kumar K, Baby N, Pang K, Benoy A, et al. Group III metabotropic glutamate receptors gate long-term potentiation and synaptic tagging/capture in rat hippocampal area CA2. elife. 2020;9: pubmed 出版商
  173. Gao Q, Ouyang W, Kang B, Han X, Xiong Y, Ding R, et al. Selective targeting of the oncogenic KRAS G12S mutant allele by CRISPR/Cas9 induces efficient tumor regression. Theranostics. 2020;10:5137-5153 pubmed 出版商
  174. Alajati A, D Ambrosio M, Troiani M, Mosole S, Pellegrini L, Chen J, et al. CDCP1 overexpression drives prostate cancer progression and can be targeted in vivo. J Clin Invest. 2020;130:2435-2450 pubmed 出版商
  175. Tian Q, Yuan P, Quan C, Li M, Xiao J, Zhang L, et al. Phosphorylation of BCKDK of BCAA catabolism at Y246 by Src promotes metastasis of colorectal cancer. Oncogene. 2020;39:3980-3996 pubmed 出版商
  176. Ruscetti M, Morris J, Mezzadra R, Russell J, Leibold J, Romesser P, et al. Senescence-Induced Vascular Remodeling Creates Therapeutic Vulnerabilities in Pancreas Cancer. Cell. 2020;181:424-441.e21 pubmed 出版商
  177. Barney L, Hall C, Schwartz A, Parks A, Sparages C, Galarza S, et al. Tumor cell-organized fibronectin maintenance of a dormant breast cancer population. Sci Adv. 2020;6:eaaz4157 pubmed 出版商
  178. Su J, Li Z, Yamashita A, Kusumoto Yoshida I, Isomichi T, Hao L, et al. Involvement of the Nucleus Accumbens in Chocolate-induced Cataplexy. Sci Rep. 2020;10:4958 pubmed 出版商
  179. Alshehri B, Pagnin M, Lee J, Petratos S, Richardson S. The Role of Transthyretin in Oligodendrocyte Development. Sci Rep. 2020;10:4189 pubmed 出版商
  180. Chen Q, Zhou Y, Zhou L, Fu Z, Yang C, Zhao L, et al. TRPC6-dependent Ca2+ signaling mediates airway inflammation in response to oxidative stress via ERK pathway. Cell Death Dis. 2020;11:170 pubmed 出版商
  181. Fu Y, Ding Y, Wang Q, Zhu F, Tan Y, Lu X, et al. Blood-stage malaria parasites manipulate host innate immune responses through the induction of sFGL2. Sci Adv. 2020;6:eaay9269 pubmed 出版商
  182. Chen F, Jiang G, Liu H, Li Z, Pei Y, Wang H, et al. Melatonin alleviates intervertebral disc degeneration by disrupting the IL-1β/NF-κB-NLRP3 inflammasome positive feedback loop. Bone Res. 2020;8:10 pubmed 出版商
  183. Howell M, Green R, Khalil R, Foran E, Quarni W, Nair R, et al. Lung cancer cells survive epidermal growth factor receptor tyrosine kinase inhibitor exposure through upregulation of cholesterol synthesis. FASEB Bioadv. 2020;2:90-105 pubmed 出版商
  184. Schiffner R, Bischoff S, Lehmann T, Irintchev A, Nistor M, Lemke C, et al. Altered Cerebral Blood Flow and Potential Neuroprotective Effect of Human Relaxin-2 (Serelaxin) During Hypoxia or Severe Hypovolemia in a Sheep Model. Int J Mol Sci. 2020;21: pubmed 出版商
  185. Ailiken G, Kitamura K, Hoshino T, Satoh M, Tanaka N, Minamoto T, et al. Post-transcriptional regulation of BRG1 by FIRΔexon2 in gastric cancer. Oncogenesis. 2020;9:26 pubmed 出版商
  186. Siu M, Jiang Y, Wang J, Leung T, Ngu S, Cheung A, et al. PDK1 promotes ovarian cancer metastasis by modulating tumor-mesothelial adhesion, invasion, and angiogenesis via α5β1 integrin and JNK/IL-8 signaling. Oncogenesis. 2020;9:24 pubmed 出版商
  187. Liao Y, Zhao J, Bulek K, Tang F, Chen X, Cai G, et al. Inflammation mobilizes copper metabolism to promote colon tumorigenesis via an IL-17-STEAP4-XIAP axis. Nat Commun. 2020;11:900 pubmed 出版商
  188. Shibahara T, Ago T, Nakamura K, Tachibana M, Yoshikawa Y, Komori M, et al. Pericyte-Mediated Tissue Repair through PDGFRβ Promotes Peri-Infarct Astrogliosis, Oligodendrogenesis, and Functional Recovery after Acute Ischemic Stroke. Eneuro. 2020;7: pubmed 出版商
  189. Zheng J, Qu D, Wang C, Ding L, Zhou W. Involvement of CXCL12/CXCR4 in the motility of human first-trimester endometrial epithelial cells through an autocrine mechanism by activating PI3K/AKT signaling. BMC Pregnancy Childbirth. 2020;20:87 pubmed 出版商
  190. Lu C, Wei Y, Wang X, Zhang Z, Yin J, Li W, et al. DNA-methylation-mediated activating of lncRNA SNHG12 promotes temozolomide resistance in glioblastoma. Mol Cancer. 2020;19:28 pubmed 出版商
  191. Tan S, Swathi Y, Tan S, Goh J, Seishima R, Murakami K, et al. AQP5 enriches for stem cells and cancer origins in the distal stomach. Nature. 2020;578:437-443 pubmed 出版商
  192. Xu F, Liu Z, Liu R, Lu C, Wang L, Mao W, et al. Epigenetic induction of tumor stemness via the lipopolysaccharide-TET3-HOXB2 signaling axis in esophageal squamous cell carcinoma. Cell Commun Signal. 2020;18:17 pubmed 出版商
  193. Wu Q, Li G, Wen C, Zeng T, Fan Y, Liu C, et al. Monoubiquitination of p120-catenin is essential for TGFβ-induced epithelial-mesenchymal transition and tumor metastasis. Sci Adv. 2020;6:eaay9819 pubmed 出版商
  194. Laboute T, Gandia J, Pellissier L, Corde Y, Rebeillard F, Gallo M, et al. The orphan receptor GPR88 blunts the signaling of opioid receptors and multiple striatal GPCRs. elife. 2020;9: pubmed 出版商
  195. Ricci B, Millner T, Pomella N, Zhang X, Guglielmi L, Badodi S, et al. Polycomb-mediated repression of EphrinA5 promotes growth and invasion of glioblastoma. Oncogene. 2020;39:2523-2538 pubmed 出版商
  196. Yang Y, Luo M, Zhang K, Zhang J, Gao T, Connell D, et al. Nedd4 ubiquitylates VDAC2/3 to suppress erastin-induced ferroptosis in melanoma. Nat Commun. 2020;11:433 pubmed 出版商
  197. Yue D, Zhao J, Chen H, Guo M, Chen C, Zhou Y, et al. MicroRNA-7, synergizes with RORα, negatively controls the pathology of brain tissue inflammation. J Neuroinflammation. 2020;17:28 pubmed 出版商
  198. Goswami D, Chen D, Yang Y, Gudla P, Columbus J, Worthy K, et al. Membrane interactions of the globular domain and the hypervariable region of KRAS4b define its unique diffusion behavior. elife. 2020;9: pubmed 出版商
  199. Kierdorf K, Hersperger F, Sharrock J, Vincent C, Ustaoğlu P, Dou J, et al. Muscle function and homeostasis require cytokine inhibition of AKT activity in Drosophila. elife. 2020;9: pubmed 出版商
  200. Orgaz J, Crosas Molist E, Sadok A, Perdrix Rosell A, Maiques O, Rodriguez Hernandez I, et al. Myosin II Reactivation and Cytoskeletal Remodeling as a Hallmark and a Vulnerability in Melanoma Therapy Resistance. Cancer Cell. 2020;37:85-103.e9 pubmed 出版商
  201. Cai H, Han B, Hu Y, Zhao X, He Z, Chen X, et al. Metformin attenuates the D‑galactose‑induced aging process via the UPR through the AMPK/ERK1/2 signaling pathways. Int J Mol Med. 2020;45:715-730 pubmed 出版商
  202. Hong Z, Wang Z, Zhou B, Wang J, Tong H, Liao Y, et al. Effects of evodiamine on PI3K/Akt and MAPK/ERK signaling pathways in pancreatic cancer cells. Int J Oncol. 2020;56:783-793 pubmed 出版商
  203. Diaz Cuadros M, Wagner D, Budjan C, Hubaud A, Tarazona O, Donelly S, et al. In vitro characterization of the human segmentation clock. Nature. 2020;580:113-118 pubmed 出版商
  204. Zhang C, Lin X, Zhao Q, Wang Y, Jiang F, Ji C, et al. YARS as an oncogenic protein that promotes gastric cancer progression through activating PI3K-Akt signaling. J Cancer Res Clin Oncol. 2020;146:329-342 pubmed 出版商
  205. Zhou Z, Zhou Q, Wu X, Xu S, Hu X, Tao X, et al. VCAM-1 secreted from cancer-associated fibroblasts enhances the growth and invasion of lung cancer cells through AKT and MAPK signaling. Cancer Lett. 2020;473:62-73 pubmed 出版商
  206. Tang L, Li J, Fu W, Wu W, Xu J. Suppression of FADS1 induces ROS generation, cell cycle arrest, and apoptosis in melanocytes: implications for vitiligo. Aging (Albany NY). 2019;11:11829-11843 pubmed 出版商
  207. Huang X, Ni B, Xi Y, Chu X, Zhang R, You H. Protease-activated receptor 2 (PAR-2) antagonist AZ3451 as a novel therapeutic agent for osteoarthritis. Aging (Albany NY). 2019;11:12532-12545 pubmed 出版商
  208. Ramírez C, Hauser A, Vucic E, Bar Sagi D. Plasma membrane V-ATPase controls oncogenic RAS-induced macropinocytosis. Nature. 2019;576:477-481 pubmed 出版商
  209. Zewinger S, Reiser J, Jankowski V, Alansary D, Hahm E, Triem S, et al. Apolipoprotein C3 induces inflammation and organ damage by alternative inflammasome activation. Nat Immunol. 2020;21:30-41 pubmed 出版商
  210. Luxan G, Stewen J, Díaz N, Kato K, Maney S, Aravamudhan A, et al. Endothelial EphB4 maintains vascular integrity and transport function in adult heart. elife. 2019;8: pubmed 出版商
  211. Yu H, Rimbert A, Palmer A, Toyohara T, Xia Y, Xia F, et al. GPR146 Deficiency Protects against Hypercholesterolemia and Atherosclerosis. Cell. 2019;179:1276-1288.e14 pubmed 出版商
  212. Yang X, Jiang J, Zhang C, Li Y. Baicalein restrains proliferation, migration, and invasion of human malignant melanoma cells by down-regulating colon cancer associated transcript-1. Braz J Med Biol Res. 2019;52:e8934 pubmed 出版商
  213. Wu X, Chen S, Lu C. Amyloid precursor protein promotes the migration and invasion of breast cancer cells by regulating the MAPK signaling pathway. Int J Mol Med. 2019;: pubmed 出版商
  214. Sarek G, Kotsantis P, Ruis P, Van Ly D, Margalef P, Borel V, et al. CDK phosphorylation of TRF2 controls t-loop dynamics during the cell cycle. Nature. 2019;: pubmed 出版商
  215. Ahlers L, Trammell C, Carrell G, Mackinnon S, Torrevillas B, Chow C, et al. Insulin Potentiates JAK/STAT Signaling to Broadly Inhibit Flavivirus Replication in Insect Vectors. Cell Rep. 2019;29:1946-1960.e5 pubmed 出版商
  216. Tracey N, Creedon H, Kemp A, Culley J, Muir M, Klinowska T, et al. HO-1 drives autophagy as a mechanism of resistance against HER2-targeted therapies. Breast Cancer Res Treat. 2020;179:543-555 pubmed 出版商
  217. VASAN N, Razavi P, Johnson J, Shao H, Shah H, Antoine A, et al. Double PIK3CA mutations in cis increase oncogenicity and sensitivity to PI3Kα inhibitors. Science. 2019;366:714-723 pubmed 出版商
  218. Hamilton W, Mosesson Y, Monteiro R, Emdal K, Knudsen T, Francavilla C, et al. Dynamic lineage priming is driven via direct enhancer regulation by ERK. Nature. 2019;: pubmed 出版商
  219. Mitra D, Bhattacharyya S, Alam N, Sen S, Mitra S, Mandal S, et al. Phosphorylation of EphA2 receptor and vasculogenic mimicry is an indicator of poor prognosis in invasive carcinoma of the breast. Breast Cancer Res Treat. 2020;179:359-370 pubmed 出版商
  220. Lin F, Meng X, Guo Y, Cao W, Liu W, Xia Q, et al. Epigenetic initiation of the TH17 differentiation program is promoted by Cxxc finger protein 1. Sci Adv. 2019;5:eaax1608 pubmed 出版商
  221. Wu W, Piao H, Wu F, Han Y, An D, Wu Y, et al. Yu Jin Pulvis inhibits carbon tetrachloride-induced liver fibrosis by blocking the MAPK and PI3K/Akt signaling pathways. Am J Transl Res. 2019;11:5998-6006 pubmed
  222. Kon E, Calvo Jiménez E, Cossard A, Na Y, Cooper J, Jossin Y. N-cadherin-regulated FGFR ubiquitination and degradation control mammalian neocortical projection neuron migration. elife. 2019;8: pubmed 出版商
  223. Wang Q, Yang Q, Zhang A, Kang Z, Wang Y, Zhang Z. Silencing of SPARC represses heterotopic ossification via inhibition of the MAPK signaling pathway. Biosci Rep. 2019;39: pubmed 出版商
  224. 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
  225. Zhu B, Ren C, Du K, Zhu H, Ai Y, Kang F, et al. Olean-28,13b-olide 2 plays a role in cisplatin-mediated apoptosis and reverses cisplatin resistance in human lung cancer through multiple signaling pathways. Biochem Pharmacol. 2019;170:113642 pubmed 出版商
  226. Li J, Shang G, Chen Y, Brautigam C, Liou J, Zhang X, et al. Cryo-EM analyses reveal the common mechanism and diversification in the activation of RET by different ligands. elife. 2019;8: pubmed 出版商
  227. Lai T, Wen X, Wu D, Su G, Gao Y, Chen C, et al. SIRT1 protects against urban particulate matter-induced airway inflammation. Int J Chron Obstruct Pulmon Dis. 2019;14:1741-1752 pubmed 出版商
  228. Ng A, Li Z, Jones M, Yang S, Li C, Fu C, et al. Regulator of G protein signaling 12 enhances osteoclastogenesis by suppressing Nrf2-dependent antioxidant proteins to promote the generation of reactive oxygen species. elife. 2019;8: pubmed 出版商
  229. Wang K, Zhu T, Zhao R. Filamin A regulates EGFR/ERK/Akt signaling and affects colorectal cancer cell growth and migration. Mol Med Rep. 2019;20:3671-3678 pubmed 出版商
  230. Sanghvi V, Leibold J, Mina M, Mohan P, Berishaj M, Li Z, et al. The Oncogenic Action of NRF2 Depends on De-glycation by Fructosamine-3-Kinase. Cell. 2019;178:807-819.e21 pubmed 出版商
  231. Menon V, Thomas R, Elgueta C, Horl M, Osborn T, Hallett P, et al. Comprehensive Cell Surface Antigen Analysis Identifies Transferrin Receptor Protein-1 (CD71) as a Negative Selection Marker for Human Neuronal Cells. Stem Cells. 2019;37:1293-1306 pubmed 出版商
  232. Jiang C, Trudeau S, Cheong T, Guo R, Teng M, Wang L, et al. CRISPR/Cas9 Screens Reveal Multiple Layers of B cell CD40 Regulation. Cell Rep. 2019;28:1307-1322.e8 pubmed 出版商
  233. Gao C, Chen G, Zhang D, Zhang J, Kuan S, Hu W, et al. PYK2 Is Involved in Premalignant Acinar Cell Reprogramming and Pancreatic Ductal Adenocarcinoma Maintenance by Phosphorylating β-CateninY654. Cell Mol Gastroenterol Hepatol. 2019;8:561-578 pubmed 出版商
  234. Bi J, Ichu T, Zanca C, Yang H, Zhang W, Gu Y, et al. Oncogene Amplification in Growth Factor Signaling Pathways Renders Cancers Dependent on Membrane Lipid Remodeling. Cell Metab. 2019;30:525-538.e8 pubmed 出版商
  235. Colomer C, Margalef P, Villanueva A, Vert A, Pecharroman I, Sole L, et al. IKKα Kinase Regulates the DNA Damage Response and Drives Chemo-resistance in Cancer. Mol Cell. 2019;75:669-682.e5 pubmed 出版商
  236. Du F, Qiao C, Li X, Chen Z, Liu H, Wu S, et al. Forkhead box K2 promotes human colorectal cancer metastasis by upregulating ZEB1 and EGFR. Theranostics. 2019;9:3879-3902 pubmed 出版商
  237. Ji G, Song X, Wang L, Li Z, Wu H, Dong H. Golgi apparatus fragmentation participates in oxidized low-density lipoprotein-induced endothelial cell injury. J Cell Biochem. 2019;: pubmed 出版商
  238. 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
  239. Gu C, Wang L, Zurawski S, Oh S. Signaling Cascade through DC-ASGPR Induces Transcriptionally Active CREB for IL-10 Induction and Immune Regulation. J Immunol. 2019;: pubmed 出版商
  240. Zhu B, Cao A, Li J, Young J, Wong J, Ashraf S, et al. Disruption of MAGI2-RapGEF2-Rap1 signaling contributes to podocyte dysfunction in congenital nephrotic syndrome caused by mutations in MAGI2. Kidney Int. 2019;: pubmed 出版商
  241. Pietila M, Sahgal P, Peuhu E, Jäntti N, Paatero I, Närvä E, et al. SORLA regulates endosomal trafficking and oncogenic fitness of HER2. Nat Commun. 2019;10:2340 pubmed 出版商
  242. Shami Shah A, Batrouni A, Kim D, Punyala A, Cao W, Han C, et al. PLEKHA4/kramer Attenuates Dishevelled Ubiquitination to Modulate Wnt and Planar Cell Polarity Signaling. Cell Rep. 2019;27:2157-2170.e8 pubmed 出版商
  243. Liu Y, Li R, Chen X, Zhi Y, Deng R, Zhou E, et al. Nonmuscle Myosin Heavy Chain IIA Recognizes Sialic Acids on Sialylated RNA Viruses To Suppress Proinflammatory Responses via the DAP12-Syk Pathway. MBio. 2019;10: pubmed 出版商
  244. Liu X, Zhao P, Wang X, Wang L, Zhu Y, Song Y, et al. Celastrol mediates autophagy and apoptosis via the ROS/JNK and Akt/mTOR signaling pathways in glioma cells. J Exp Clin Cancer Res. 2019;38:184 pubmed 出版商
  245. Carretero Ortega J, Chhangawala Z, Hunt S, Narvaez C, Menéndez González J, Gay C, et al. GIPC proteins negatively modulate Plexind1 signaling during vascular development. elife. 2019;8: pubmed 出版商
  246. Walter D, Yates T, Ruiz Torres M, Kim Kiselak C, Gudiel A, Deshpande C, et al. RB constrains lineage fidelity and multiple stages of tumour progression and metastasis. Nature. 2019;569:423-427 pubmed 出版商
  247. Li Y, Liang R, Zhang X, Wang J, Shan C, Liu S, et al. Copper Chaperone for Superoxide Dismutase Promotes Breast Cancer Cell Proliferation and Migration via ROS-Mediated MAPK/ERK Signaling. Front Pharmacol. 2019;10:356 pubmed 出版商
  248. He M, Chaurushiya M, Webster J, Kummerfeld S, Reja R, Chaudhuri S, et al. Intrinsic apoptosis shapes the tumor spectrum linked to inactivation of the deubiquitinase BAP1. Science. 2019;364:283-285 pubmed 出版商
  249. Udden S, Kwak Y, Godfrey V, Khan M, Khan S, Loof N, et al. NLRP12 suppresses hepatocellular carcinoma via downregulation of cJun N-terminal kinase activation in the hepatocyte. elife. 2019;8: pubmed 出版商
  250. Stock K, Borrink R, Mikesch J, Hansmeier A, Rehkämper J, Trautmann M, et al. Overexpression and Tyr421-phosphorylation of cortactin is induced by three-dimensional spheroid culturing and contributes to migration and invasion of pancreatic ductal adenocarcinoma (PDAC) cells. Cancer Cell Int. 2019;19:77 pubmed 出版商
  251. Wu J, Ma S, Sandhoff R, Ming Y, Hotz Wagenblatt A, Timmerman V, et al. Loss of Neurological Disease HSAN-I-Associated Gene SPTLC2 Impairs CD8+ T Cell Responses to Infection by Inhibiting T Cell Metabolic Fitness. Immunity. 2019;50:1218-1231.e5 pubmed 出版商
  252. 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
  253. Kennedy S, Han J, Portman N, Nobis M, Hastings J, Murphy K, et al. Targeting promiscuous heterodimerization overcomes innate resistance to ERBB2 dimerization inhibitors in breast cancer. Breast Cancer Res. 2019;21:43 pubmed 出版商
  254. Wu Y, Tan X, Liu P, Yang Y, Huang Y, Liu X, et al. ITGA6 and RPSA synergistically promote pancreatic cancer invasion and metastasis via PI3K and MAPK signaling pathways. Exp Cell Res. 2019;379:30-47 pubmed 出版商
  255. Castel P, Cheng A, Cuevas Navarro A, Everman D, Papageorge A, Simanshu D, et al. RIT1 oncoproteins escape LZTR1-mediated proteolysis. Science. 2019;363:1226-1230 pubmed 出版商
  256. Upadhyay A, Hosseinibarkooie S, Schneider S, Kaczmarek A, Torres Benito L, Mendoza Ferreira N, et al. Neurocalcin Delta Knockout Impairs Adult Neurogenesis Whereas Half Reduction Is Not Pathological. Front Mol Neurosci. 2019;12:19 pubmed 出版商
  257. Mentrup T, Theodorou K, Cabrera Cabrera F, Helbig A, Happ K, Gijbels M, et al. Atherogenic LOX-1 signaling is controlled by SPPL2-mediated intramembrane proteolysis. J Exp Med. 2019;: pubmed 出版商
  258. Liu Y, Wang X, Deng L, Ping L, Shi Y, Zheng W, et al. ITK inhibition induced in vitro and in vivo anti-tumor activity through downregulating TCR signaling pathway in malignant T cell lymphoma. Cancer Cell Int. 2019;19:32 pubmed 出版商
  259. Zhang S, Liu W, Yang Y, Sun K, Li S, Xu H, et al. Tmem30a Deficiency in endothelial cells impairs cell proliferation and angiogenesis. J Cell Sci. 2019;: pubmed 出版商
  260. Liu Z, Wu C, Pan Y, Liu H, Wang X, Yang Y, et al. NDR2 promotes the antiviral immune response via facilitating TRIM25-mediated RIG-I activation in macrophages. Sci Adv. 2019;5:eaav0163 pubmed 出版商
  261. Vrijens P, Noppen S, Boogaerts T, Vanstreels E, Ronca R, Chiodelli P, et al. Influenza virus entry via the GM3 ganglioside-mediated platelet-derived growth factor receptor β signalling pathway. J Gen Virol. 2019;100:583-601 pubmed 出版商
  262. Nava M, Dutta P, Zemke N, Farias Eisner R, Vadgama J, Wu Y. Transcriptomic and ChIP-sequence interrogation of EGFR signaling in HER2+ breast cancer cells reveals a dynamic chromatin landscape and S100 genes as targets. BMC Med Genomics. 2019;12:32 pubmed 出版商
  263. Wizeman J, Guo Q, Wilion E, LI J. Specification of diverse cell types during early neurogenesis of the mouse cerebellum. elife. 2019;8: pubmed 出版商
  264. Stivala S, Codilupi T, Brkic S, Baerenwaldt A, Ghosh N, Hao Shen H, et al. Targeting compensatory MEK/ERK activation increases JAK inhibitor efficacy in myeloproliferative neoplasms. J Clin Invest. 2019;130:1596-1611 pubmed 出版商
  265. Sakahara M, Okamoto T, Oyanagi J, Takano H, Natsume Y, Yamanaka H, et al. IFN/STAT signaling controls tumorigenesis and the drug response in colorectal cancer. Cancer Sci. 2019;110:1293-1305 pubmed 出版商
  266. Liu P, Shah R, Li Y, Arora A, Ung P, Raman R, et al. An IRAK1-PIN1 signalling axis drives intrinsic tumour resistance to radiation therapy. Nat Cell Biol. 2019;21:203-213 pubmed 出版商
  267. Dai L, Hu W, Yang Z, Chen D, He B, Chen Y, et al. Upregulated expression of HOXB7 in intrahepatic cholangiocarcinoma is associated with tumor cell metastasis and poor prognosis. Lab Invest. 2019;99:736-748 pubmed 出版商
  268. Duan S, Koziol White C, Jester W, Nycholat C, Macauley M, Panettieri R, et al. CD33 recruitment inhibits IgE-mediated anaphylaxis and desensitizes mast cells to allergen. J Clin Invest. 2019;129:1387-1401 pubmed 出版商
  269. Jia Y, Qi Y, Wang Y, Ma X, Xu Y, Wang J, et al. Overexpression of CD59 inhibits apoptosis of T-acute lymphoblastic leukemia via AKT/Notch1 signaling pathway. Cancer Cell Int. 2019;19:9 pubmed 出版商
  270. MacFarlane E, Parker S, Shin J, Kang B, Ziegler S, Creamer T, et al. Lineage-specific events underlie aortic root aneurysm pathogenesis in Loeys-Dietz syndrome. J Clin Invest. 2019;129:659-675 pubmed 出版商
  271. Ye P, Liu J, Xu W, Liu D, Ding X, Le S, et al. Dual-Specificity Phosphatase 26 Protects Against Nonalcoholic Fatty Liver Disease in Mice Through Transforming Growth Factor Beta-Activated Kinase 1 Suppression. Hepatology. 2019;69:1946-1964 pubmed 出版商
  272. 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
  273. Qiu L, Wang M, Hu S, Ru X, Ren Y, Zhang Z, et al. Oncogenic Activation of Nrf2, Though as a Master Antioxidant Transcription Factor, Liberated by Specific Knockout of the Full-Length Nrf1α that Acts as a Dominant Tumor Repressor. Cancers (Basel). 2018;10: pubmed 出版商
  274. Zhang Z, Chen J, Huang W, Ning D, Liu Q, Wang C, et al. FAM134B induces tumorigenesis and epithelial-to-mesenchymal transition via Akt signaling in hepatocellular carcinoma. Mol Oncol. 2019;13:792-810 pubmed 出版商
  275. Neel D, Allegakoen D, Olivas V, Mayekar M, Hemmati G, Chatterjee N, et al. Differential Subcellular Localization Regulates Oncogenic Signaling by ROS1 Kinase Fusion Proteins. Cancer Res. 2019;79:546-556 pubmed 出版商
  276. Turowec J, Lau E, Wang X, Brown K, Fellouse F, Jawanda K, et al. Functional genomic characterization of a synthetic anti-HER3 antibody reveals a role for ubiquitination by RNF41 in the anti-proliferative response. J Biol Chem. 2019;294:1396-1409 pubmed 出版商
  277. Liang N, Kitts D. Chlorogenic Acid (CGA) Isomers Alleviate Interleukin 8 (IL-8) Production in Caco-2 Cells by Decreasing Phosphorylation of p38 and Increasing Cell Integrity. Int J Mol Sci. 2018;19: pubmed 出版商
  278. Ding Y, Li N, Dong B, Guo W, Wei H, Chen Q, et al. Chromatin remodeling ATPase BRG1 and PTEN are synthetic lethal in prostate cancer. J Clin Invest. 2019;129:759-773 pubmed 出版商
  279. Bigenzahn J, Collu G, Kartnig F, Pieraks M, Vladimer G, Heinz L, et al. LZTR1 is a regulator of RAS ubiquitination and signaling. Science. 2018;362:1171-1177 pubmed 出版商
  280. Chen C, Zou L, Lin Q, Yan X, Bi H, Xie X, et al. Resveratrol as a new inhibitor of immunoproteasome prevents PTEN degradation and attenuates cardiac hypertrophy after pressure overload. Redox Biol. 2019;20:390-401 pubmed 出版商
  281. Cheng Z, Zhang M, Hu J, Lin J, Feng X, Wang S, et al. Cardiac-specific Mst1 deficiency inhibits ROS-mediated JNK signalling to alleviate Ang II-induced cardiomyocyte apoptosis. J Cell Mol Med. 2019;23:543-555 pubmed 出版商
  282. Xu X, Xu J, Wu J, Hu Y, Han Y, Gu Y, et al. Phosphorylation-Mediated IFN-γR2 Membrane Translocation Is Required to Activate Macrophage Innate Response. Cell. 2018;175:1336-1351.e17 pubmed 出版商
  283. Bai Y, Shen W, Zhu M, Zhang L, Wei Y, Tang H, et al. Combined detection of estrogen and tumor markers is an important reference factor in the diagnosis and prognosis of lung cancer. J Cell Biochem. 2019;120:105-114 pubmed 出版商
  284. Bugaj L, Sabnis A, Mitchell A, Garbarino J, Toettcher J, Bivona T, et al. Cancer mutations and targeted drugs can disrupt dynamic signal encoding by the Ras-Erk pathway. Science. 2018;361: pubmed 出版商
  285. Cao Y, Xu Y, Auchoybur M, Chen W, He S, Qin W, et al. Regulatory role of IKKɑ in myocardial ischemia/reperfusion injury by the determination of M1 versus M2 polarization of macrophages. J Mol Cell Cardiol. 2018;123:1-12 pubmed 出版商
  286. Rasheed K, Abdulsalam I, Fismen S, Grimstad Ø, Sveinbjørnsson B, Moens U. CCL17/TARC and CCR4 expression in Merkel cell carcinoma. Oncotarget. 2018;9:31432-31447 pubmed 出版商
  287. Taparra K, Wang H, Malek R, Lafargue A, Barbhuiya M, Wang X, et al. O-GlcNAcylation is required for mutant KRAS-induced lung tumorigenesis. J Clin Invest. 2018;128:4924-4937 pubmed 出版商
  288. Qin C, Li M, Bai T, Yang K, Xu T, Zhang J. Tisp40 deficiency limits renal inflammation and promotes tubular cell proliferation in renal ischemia reperfusion injury. Exp Cell Res. 2018;371:255-261 pubmed 出版商
  289. Cai J, Huang X, Yin M, Pan C, Song L, Zhan Z, et al. A novel fusion gene PLEKHA6-NTRK3 in langerhans cell histiocytosis. Int J Cancer. 2019;144:117-124 pubmed 出版商
  290. de La Vega M, Piret J, Griffin B, Rhéaume C, Venable M, Carbonneau J, et al. Zika-Induced Male Infertility in Mice Is Potentially Reversible and Preventable by Deoxyribonucleic Acid Immunization. J Infect Dis. 2019;219:365-374 pubmed 出版商
  291. Muller T, Braud S, Jüttner R, Voigt B, Paulick K, Sheean M, et al. Neuregulin 3 promotes excitatory synapse formation on hippocampal interneurons. EMBO J. 2018;37: pubmed 出版商
  292. Cuchet Lourenço D, Eletto D, Wu C, Plagnol V, Papapietro O, CURTIS J, et al. Biallelic RIPK1 mutations in humans cause severe immunodeficiency, arthritis, and intestinal inflammation. Science. 2018;361:810-813 pubmed 出版商
  293. Liu Z, Qin Q, Wu C, Li H, Shou J, Yang Y, et al. Downregulated NDR1 protein kinase inhibits innate immune response by initiating an miR146a-STAT1 feedback loop. Nat Commun. 2018;9:2789 pubmed 出版商
  294. Zhao X, Sankaran S, Yap J, Too C, Ho Z, Dolton G, et al. Nonstimulatory peptide-MHC enhances human T-cell antigen-specific responses by amplifying proximal TCR signaling. Nat Commun. 2018;9:2716 pubmed 出版商
  295. Liu Q, Liu C, Jiang L, Li M, Long T, He W, et al. α7 Nicotinic acetylcholine receptor-mediated anti-inflammatory effect in a chronic migraine rat model via the attenuation of glial cell activation. J Pain Res. 2018;11:1129-1140 pubmed 出版商
  296. Rapino F, Delaunay S, Rambow F, Zhou Z, Tharun L, de Tullio P, et al. Codon-specific translation reprogramming promotes resistance to targeted therapy. Nature. 2018;558:605-609 pubmed 出版商
  297. Chhipa R, Fan Q, Anderson J, Muraleedharan R, Huang Y, Ciraolo G, et al. AMP kinase promotes glioblastoma bioenergetics and tumour growth. Nat Cell Biol. 2018;20:823-835 pubmed 出版商
  298. Fan P, Narzisi G, Jayaprakash A, Venturini E, Robine N, Smibert P, et al. YES1 amplification is a mechanism of acquired resistance to EGFR inhibitors identified by transposon mutagenesis and clinical genomics. Proc Natl Acad Sci U S A. 2018;115:E6030-E6038 pubmed 出版商
  299. Yang M, Li C, Zhu S, Cao L, Kroemer G, Zeh H, et al. TFAM is a novel mediator of immunogenic cancer cell death. Oncoimmunology. 2018;7:e1431086 pubmed 出版商
  300. Hemming M, Lawlor M, Zeid R, Lesluyes T, Fletcher J, Raut C, et al. Gastrointestinal stromal tumor enhancers support a transcription factor network predictive of clinical outcome. Proc Natl Acad Sci U S A. 2018;115:E5746-E5755 pubmed 出版商
  301. Dai L, Del Valle L, Miley W, Whitby D, Ochoa A, Flemington E, et al. Transactivation of human endogenous retrovirus K (HERV-K) by KSHV promotes Kaposi's sarcoma development. Oncogene. 2018;37:4534-4545 pubmed 出版商
  302. Park J, Kim I, Choi J, Lim H, Shin J, Kim Y, et al. AHNAK Loss in Mice Promotes Type II Pneumocyte Hyperplasia and Lung Tumor Development. Mol Cancer Res. 2018;16:1287-1298 pubmed 出版商
  303. Toosi B, El Zawily A, Truitt L, Shannon M, Allonby O, Babu M, et al. EPHB6 augments both development and drug sensitivity of triple-negative breast cancer tumours. Oncogene. 2018;37:4073-4093 pubmed 出版商
  304. 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
  305. Lu J, Liu L, Zheng M, Li X, Wu A, Wu Q, et al. MEKK2 and MEKK3 suppress Hedgehog pathway-dependent medulloblastoma by inhibiting GLI1 function. Oncogene. 2018;37:3864-3878 pubmed 出版商
  306. Muhar M, Ebert A, Neumann T, Umkehrer C, Jude J, Wieshofer C, et al. SLAM-seq defines direct gene-regulatory functions of the BRD4-MYC axis. Science. 2018;360:800-805 pubmed 出版商
  307. Qiang L, Wang J, Zhang Y, Ge P, Chai Q, Li B, et al. Mycobacterium tuberculosis Mce2E suppresses the macrophage innate immune response and promotes epithelial cell proliferation. Cell Mol Immunol. 2018;: pubmed 出版商
  308. 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
  309. Rizzi C, Tiberi A, Giustizieri M, Marrone M, Gobbo F, Carucci N, et al. NGF steers microglia toward a neuroprotective phenotype. Glia. 2018;66:1395-1416 pubmed 出版商
  310. Vlachogiannis G, Hedayat S, Vatsiou A, Jamin Y, Fernández Mateos J, Khan K, et al. Patient-derived organoids model treatment response of metastatic gastrointestinal cancers. Science. 2018;359:920-926 pubmed 出版商
  311. Wu J, Liu Y, Liang J, Huang Q, Dou Y, Nie J, et al. Protective role of ?-patchoulene from Pogostemon cablin against indomethacin-induced gastric ulcer in rats: Involvement of anti-inflammation and angiogenesis. Phytomedicine. 2018;39:111-118 pubmed 出版商
  312. Janes M, Zhang J, Li L, Hansen R, Peters U, Guo X, et al. Targeting KRAS Mutant Cancers with a Covalent G12C-Specific Inhibitor. Cell. 2018;172:578-589.e17 pubmed 出版商
  313. 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
  314. Ambrogio C, Köhler J, Zhou Z, Wang H, Paranal R, Li J, et al. KRAS Dimerization Impacts MEK Inhibitor Sensitivity and Oncogenic Activity of Mutant KRAS. Cell. 2018;172:857-868.e15 pubmed 出版商
  315. Zhang G, Cheng Y, Zhang Q, Li X, Zhou J, Wang J, et al. ATX?LPA axis facilitates estrogen?induced endometrial cancer cell proliferation via MAPK/ERK signaling pathway. Mol Med Rep. 2018;17:4245-4252 pubmed 出版商
  316. Frattini V, Pagnotta S, Tala -, Fan J, Russo M, Lee S, et al. A metabolic function of FGFR3-TACC3 gene fusions in cancer. Nature. 2018;553:222-227 pubmed 出版商
  317. 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
  318. Zhou K, Enkhjargal B, Xie Z, Sun C, Wu L, Malaguit J, et al. Dihydrolipoic Acid Inhibits Lysosomal Rupture and NLRP3 Through Lysosome-Associated Membrane Protein-1/Calcium/Calmodulin-Dependent Protein Kinase II/TAK1 Pathways After Subarachnoid Hemorrhage in Rat. Stroke. 2018;49:175-183 pubmed 出版商
  319. Yu R, Longo J, van Leeuwen J, Mullen P, Ba Alawi W, Haibe Kains B, et al. Statin-Induced Cancer Cell Death Can Be Mechanistically Uncoupled from Prenylation of RAS Family Proteins. Cancer Res. 2018;78:1347-1357 pubmed 出版商
  320. Schafer S, Viswanathan S, Widjaja A, Lim W, Moreno Moral A, Delaughter D, et al. IL-11 is a crucial determinant of cardiovascular fibrosis. Nature. 2017;552:110-115 pubmed 出版商
  321. Shuang W, Hou L, Zhu Y, Li Q, Hu W. Mcl-1 stabilization confers resistance to taxol in human gastric cancer. Oncotarget. 2017;8:82981-82990 pubmed 出版商
  322. Zhang R, Li J, Yan X, Jin K, Li W, Xu J, et al. SODD promotes glucose uptake of colorectal cancer cells via AKT pathway. Cell Biol Int. 2017;: pubmed 出版商
  323. Xue X, Bredell B, Anderson E, Martin A, Mays C, Nagao Kitamoto H, et al. Quantitative proteomics identifies STEAP4 as a critical regulator of mitochondrial dysfunction linking inflammation and colon cancer. Proc Natl Acad Sci U S A. 2017;114:E9608-E9617 pubmed 出版商
  324. Berrout J, Kyriakopoulou E, Moparthi L, Hogea A, Berrout L, Ivan C, et al. TRPA1-FGFR2 binding event is a regulatory oncogenic driver modulated by miRNA-142-3p. Nat Commun. 2017;8:947 pubmed 出版商
  325. Mai W, Gosa L, Daniëls V, Ta L, Tsang J, Higgins B, et al. Cytoplasmic p53 couples oncogene-driven glucose metabolism to apoptosis and is a therapeutic target in glioblastoma. Nat Med. 2017;23:1342-1351 pubmed 出版商
  326. Hamada S, Shimosegawa T, Taguchi K, Nabeshima T, Yamamoto M, Masamune A. Simultaneous K-ras activation and Keap1 deletion cause atrophy of pancreatic parenchyma. Am J Physiol Gastrointest Liver Physiol. 2018;314:G65-G74 pubmed 出版商
  327. Bagarolli R, Tobar N, Oliveira A, Araújo T, Carvalho B, Rocha G, et al. Probiotics modulate gut microbiota and improve insulin sensitivity in DIO mice. J Nutr Biochem. 2017;50:16-25 pubmed 出版商
  328. Zhao Z, Jia Q, Wu M, Xie X, Wang Y, Song G, et al. Degalactotigonin, a Natural Compound from Solanum nigrum L., Inhibits Growth and Metastasis of Osteosarcoma through GSK3β Inactivation-Mediated Repression of the Hedgehog/Gli1 Pathway. Clin Cancer Res. 2018;24:130-144 pubmed 出版商
  329. He H, Huang M, Sun S, Wu Y, Lin X. Epithelial heparan sulfate regulates Sonic Hedgehog signaling in lung development. PLoS Genet. 2017;13:e1006992 pubmed 出版商
  330. Schwartz S, Cleyrat C, Olah M, Relich P, Phillips G, Hlavacek W, et al. Differential mast cell outcomes are sensitive to FcεRI-Syk binding kinetics. Mol Biol Cell. 2017;28:3397-3414 pubmed 出版商
  331. Jiang X, Bao Y, Liu H, Kou X, Zhang Z, Sun F, et al. VPS34 stimulation of p62 phosphorylation for cancer progression. Oncogene. 2017;36:6850-6862 pubmed 出版商
  332. Chong I, Aronson L, Bryant H, Gulati A, Campbell J, Elliott R, et al. Mapping genetic vulnerabilities reveals BTK as a novel therapeutic target in oesophageal cancer. Gut. 2018;67:1780-1792 pubmed 出版商
  333. Romero Pozuelo J, Demetriades C, Schroeder P, Teleman A. CycD/Cdk4 and Discontinuities in Dpp Signaling Activate TORC1 in the Drosophila Wing Disc. Dev Cell. 2017;42:376-387.e5 pubmed 出版商
  334. Shi Y, Zhang X, Chen C, Tang M, Wang Z, Liang X, et al. Schisantherin A attenuates ischemia/reperfusion-induced neuronal injury in rats via regulation of TLR4 and C5aR1 signaling pathways. Brain Behav Immun. 2017;66:244-256 pubmed 出版商
  335. Baumann C, Ullrich A, Torka R. GAS6-expressing and self-sustaining cancer cells in 3D spheroids activate the PDK-RSK-mTOR pathway for survival and drug resistance. Mol Oncol. 2017;11:1430-1447 pubmed 出版商
  336. Laviolette L, Mermoud J, Calvo I, Olson N, Boukhali M, Steinlein O, et al. Negative regulation of EGFR signalling by the human folliculin tumour suppressor protein. Nat Commun. 2017;8:15866 pubmed 出版商
  337. Mamo T, Wittern A, Kleppa M, Bohnenpoll T, Weiss A, Kispert A. BMP4 uses several different effector pathways to regulate proliferation and differentiation in the epithelial and mesenchymal tissue compartments of the developing mouse ureter. Hum Mol Genet. 2017;26:3553-3563 pubmed 出版商
  338. Wilkinson E, Sidaway J, Cross M. Statin regulated ERK5 stimulates tight junction formation and reduces permeability in human cardiac endothelial cells. J Cell Physiol. 2018;233:186-200 pubmed 出版商
  339. Kurapati S, Sadaoka T, Rajbhandari L, Jagdish B, Shukla P, Ali M, et al. Role of the JNK Pathway in Varicella-Zoster Virus Lytic Infection and Reactivation. J Virol. 2017;91: pubmed 出版商
  340. Li M, Cheng W, Luo J, Hu X, Nie T, Lai H, et al. Loss of selenocysteine insertion sequence binding protein 2 suppresses the proliferation, migration/invasion and hormone secretion of human trophoblast cells via the PI3K/Akt and ERK signaling pathway. Placenta. 2017;55:81-89 pubmed 出版商
  341. Oblinger J, Burns S, Huang J, Pan L, Ren Y, Shen R, et al. Overexpression of eIF4F components in meningiomas and suppression of meningioma cell growth by inhibiting translation initiation. Exp Neurol. 2018;299:299-307 pubmed 出版商
  342. Shaffer S, Dunagin M, Torborg S, Torre E, Emert B, Krepler C, et al. Rare cell variability and drug-induced reprogramming as a mode of cancer drug resistance. Nature. 2017;546:431-435 pubmed 出版商
  343. Vanwalleghem G, Heap L, Scott E. A profile of auditory-responsive neurons in the larval zebrafish brain. J Comp Neurol. 2017;525:3031-3043 pubmed 出版商
  344. Sangodkar J, Perl A, Tohme R, Kiselar J, Kastrinsky D, Zaware N, et al. Activation of tumor suppressor protein PP2A inhibits KRAS-driven tumor growth. J Clin Invest. 2017;127:2081-2090 pubmed 出版商
  345. Chen X, Wu Q, Depeille P, Chen P, Thornton S, Kalirai H, et al. RasGRP3 Mediates MAPK Pathway Activation in GNAQ Mutant Uveal Melanoma. Cancer Cell. 2017;31:685-696.e6 pubmed 出版商
  346. Zhong J, Wang H, Chen W, Sun Z, Chen J, Xu Y, et al. Ubiquitylation of MFHAS1 by the ubiquitin ligase praja2 promotes M1 macrophage polarization by activating JNK and p38 pathways. Cell Death Dis. 2017;8:e2763 pubmed 出版商
  347. Haque R, Iuvone P, He L, Choi K, Ngo A, Gokhale S, et al. The MicroRNA-21 signaling pathway is involved in prorenin receptor (PRR) -induced VEGF expression in ARPE-19 cells under a hyperglycemic condition. Mol Vis. 2017;23:251-262 pubmed
  348. Kapil S, Sharma B, Patil M, Elattar S, Yuan J, Hou S, et al. The cell polarity protein Scrib functions as a tumor suppressor in liver cancer. Oncotarget. 2017;8:26515-26531 pubmed 出版商
  349. Tomić T, Olausson J, Wilzén A, Sabel M, Truvé K, Sjögren H, et al. A new GTF2I-BRAF fusion mediating MAPK pathway activation in pilocytic astrocytoma. PLoS ONE. 2017;12:e0175638 pubmed 出版商
  350. Ferraiuolo R, Tubman J, Sinha I, Hamm C, Porter L. The cyclin-like protein, SPY1, regulates the ER? and ERK1/2 pathways promoting tamoxifen resistance. Oncotarget. 2017;8:23337-23352 pubmed 出版商
  351. Iglesia R, Prado M, Cruz L, Martins V, Santos T, Lopes M. Engagement of cellular prion protein with the co-chaperone Hsp70/90 organizing protein regulates the proliferation of glioblastoma stem-like cells. Stem Cell Res Ther. 2017;8:76 pubmed 出版商
  352. Du M, Martin A, HAYS F, Johnson J, FARJO R, Farjo K. Serum retinol-binding protein-induced endothelial inflammation is mediated through the activation of toll-like receptor 4. Mol Vis. 2017;23:185-197 pubmed
  353. Wassermann Dozorets R, Rubinstein M. C/EBPβ LIP augments cell death by inducing osteoglycin. Cell Death Dis. 2017;8:e2733 pubmed 出版商
  354. Biggi S, Buccarello L, Sclip A, Lippiello P, Tonna N, Rumio C, et al. Evidence of Presynaptic Localization and Function of the c-Jun N-Terminal Kinase. Neural Plast. 2017;2017:6468356 pubmed 出版商
  355. Bittner S, Knoll G, Ehrenschwender M. Death receptor 3 signaling enhances proliferation of human regulatory T cells. FEBS Lett. 2017;591:1187-1195 pubmed 出版商
  356. Chen G, Nie S, Han C, Ma K, Xu Y, Zhang Z, et al. Antidyskinetic Effects of MEK Inhibitor Are Associated with Multiple Neurochemical Alterations in the Striatum of Hemiparkinsonian Rats. Front Neurosci. 2017;11:112 pubmed 出版商
  357. Lee H, Kim M, Baek M, Morales L, Jang I, Slaga T, et al. Targeted disruption of TC-PTP in the proliferative compartment augments STAT3 and AKT signaling and skin tumor development. Sci Rep. 2017;7:45077 pubmed 出版商
  358. 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
  359. Sahu U, Choudhury A, Parvez S, Biswas S, Kar S. Induction of intestinal stemness and tumorigenicity by aberrant internalization of commensal non-pathogenic E. coli. Cell Death Dis. 2017;8:e2667 pubmed 出版商
  360. Su S, Liao J, Liu J, Huang D, He C, Chen F, et al. Blocking the recruitment of naive CD4+ T cells reverses immunosuppression in breast cancer. Cell Res. 2017;27:461-482 pubmed 出版商
  361. Boutin A, Liao W, Wang M, Hwang S, Karpinets T, Cheung H, et al. Oncogenic Kras drives invasion and maintains metastases in colorectal cancer. Genes Dev. 2017;31:370-382 pubmed 出版商
  362. Koyama Y, Wang P, Liang S, Iwaisako K, Liu X, Xu J, et al. Mesothelin/mucin 16 signaling in activated portal fibroblasts regulates cholestatic liver fibrosis. J Clin Invest. 2017;127:1254-1270 pubmed 出版商
  363. Dogan A, Demirci S, Apdik H, Bayrak O, Gulluoglu S, Tuysuz E, et al. A new hope for obesity management: Boron inhibits adipogenesis in progenitor cells through the Wnt/β-catenin pathway. Metabolism. 2017;69:130-142 pubmed 出版商
  364. Retzlaff J, Thamm K, Ghosh C, Ziegler W, Haller H, Parikh S, et al. Flunarizine suppresses endothelial Angiopoietin-2 in a calcium - dependent fashion in sepsis. Sci Rep. 2017;7:44113 pubmed 出版商
  365. Shizu R, Osabe M, Perera L, Moore R, Sueyoshi T, Negishi M. Phosphorylated Nuclear Receptor CAR Forms a Homodimer To Repress Its Constitutive Activity for Ligand Activation. Mol Cell Biol. 2017;37: pubmed 出版商
  366. Li K, Mo C, Gong D, Chen Y, Huang Z, Li Y, et al. DDX17 nucleocytoplasmic shuttling promotes acquired gefitinib resistance in non-small cell lung cancer cells via activation of β-catenin. Cancer Lett. 2017;400:194-202 pubmed 出版商
  367. Lafont E, Kantari Mimoun C, Dráber P, De Miguel D, Hartwig T, Reichert M, et al. The linear ubiquitin chain assembly complex regulates TRAIL-induced gene activation and cell death. EMBO J. 2017;36:1147-1166 pubmed 出版商
  368. Carmona Fontaine C, Deforet M, Akkari L, Thompson C, Joyce J, Xavier J. Metabolic origins of spatial organization in the tumor microenvironment. Proc Natl Acad Sci U S A. 2017;114:2934-2939 pubmed 出版商
  369. de Oliveira R, de Campos Castilho G, da Cunha A, Miyajima F, de Oliveira Martins D. Dilodendron bipinnatum Radlk. inhibits pro-inflammatory mediators through the induction of MKP-1 and the down-regulation of MAPKp38/JNK/NF-?B pathways and COX-2 in LPS-activated RAW 264.7 cells. J Ethnopharmacol. 2017;202:127-137 pubmed 出版商
  370. Basu R, Wu S, Kopchick J. Targeting growth hormone receptor in human melanoma cells attenuates tumor progression and epithelial mesenchymal transition via suppression of multiple oncogenic pathways. Oncotarget. 2017;8:21579-21598 pubmed 出版商
  371. Ma C, Lin W, Liu Z, Tang W, Gautam R, Li H, et al. NDR1 protein kinase promotes IL-17- and TNF-α-mediated inflammation by competitively binding TRAF3. EMBO Rep. 2017;18:586-602 pubmed 出版商
  372. Yang X, Lou Y, Liu G, Wang X, Qian Y, Ding J, et al. Microglia P2Y6 receptor is related to Parkinson's disease through neuroinflammatory process. J Neuroinflammation. 2017;14:38 pubmed 出版商
  373. Chowdhury A, Hasselbach L, Echtermeyer F, Jyotsana N, Theilmeier G, Herzog C. Fibulin-6 regulates pro-fibrotic TGF-β responses in neonatal mouse ventricular cardiac fibroblasts. Sci Rep. 2017;7:42725 pubmed 出版商
  374. Dong Q, Li J, Wu Q, Zhao N, Qian C, Ding D, et al. Blockage of transient receptor potential vanilloid 4 alleviates myocardial ischemia/reperfusion injury in mice. Sci Rep. 2017;7:42678 pubmed 出版商
  375. Wang N, Yao F, Li K, Zhang L, Yin G, Du M, et al. Fisetin regulates astrocyte migration and proliferation in vitro. Int J Mol Med. 2017;39:783-790 pubmed 出版商
  376. Kuipers H, Yoon J, van Horssen J, Han M, Bollyky P, Palmer T, et al. Phosphorylation of αB-crystallin supports reactive astrogliosis in demyelination. Proc Natl Acad Sci U S A. 2017;114:E1745-E1754 pubmed 出版商
  377. Qian Q, Liu Q, Zhou D, Pan H, Liu Z, He F, et al. Brain-specific ablation of Efr3a promotes adult hippocampal neurogenesis via the brain-derived neurotrophic factor pathway. FASEB J. 2017;31:2104-2113 pubmed 出版商
  378. Piper A, Ross S, Redpath G, Lemckert F, Woolger N, Bournazos A, et al. Enzymatic cleavage of myoferlin releases a dual C2-domain module linked to ERK signalling. Cell Signal. 2017;33:30-40 pubmed 出版商
  379. Furukawa S, Nagaike M, Ozaki K. Databases for technical aspects of immunohistochemistry. J Toxicol Pathol. 2017;30:79-107 pubmed 出版商
  380. Cui Y, Ding Y, Chen L, Li Y, Li Y, Nie H. Dexmedetomidine enhances human lung fluid clearance through improving alveolar sodium transport. Fundam Clin Pharmacol. 2017;31:429-437 pubmed 出版商
  381. Dong Q, Fu L, Zhao Y, Tan S, Wang E. Derlin-1 overexpression confers poor prognosis in muscle invasive bladder cancer and contributes to chemoresistance and invasion through PI3K/AKT and ERK/MMP signaling. Oncotarget. 2017;8:17059-17069 pubmed 出版商
  382. Genovese G, Carugo A, TEPPER J, Robinson F, Li L, Svelto M, et al. Synthetic vulnerabilities of mesenchymal subpopulations in pancreatic cancer. Nature. 2017;542:362-366 pubmed 出版商
  383. Umstead M, Xiong J, Qi Q, Du Y, Fu H. Aurora kinase A interacts with H-Ras and potentiates Ras-MAPK signaling. Oncotarget. 2017;8:28359-28372 pubmed 出版商
  384. Gautam J, Nirwane A, Yao Y. Laminin differentially regulates the stemness of type I and type II pericytes. Stem Cell Res Ther. 2017;8:28 pubmed 出版商
  385. Zhang H, Qi Y, Yuan Y, Cai L, Xu H, Zhang L, et al. Paeoniflorin Ameliorates Experimental Autoimmune Encephalomyelitis via Inhibition of Dendritic Cell Function and Th17 Cell Differentiation. Sci Rep. 2017;7:41887 pubmed 出版商
  386. Xiong X, Liu Y, Mei Y, Peng J, Wang Z, Kong B, et al. Novel Protective Role of Myeloid Differentiation 1 in Pathological Cardiac Remodelling. Sci Rep. 2017;7:41857 pubmed 出版商
  387. Wang T, Yu H, Hughes N, Liu B, Kendirli A, Klein K, et al. Gene Essentiality Profiling Reveals Gene Networks and Synthetic Lethal Interactions with Oncogenic Ras. Cell. 2017;168:890-903.e15 pubmed 出版商
  388. Weinberg Z, Zajac A, Phan T, Shiwarski D, Puthenveedu M. Sequence-Specific Regulation of Endocytic Lifetimes Modulates Arrestin-Mediated Signaling at the µ Opioid Receptor. Mol Pharmacol. 2017;91:416-427 pubmed 出版商
  389. Gonzalez M, Martin E, Anwar T, Arellano Garcia C, Medhora N, Lama A, et al. Mesenchymal Stem Cell-Induced DDR2 Mediates Stromal-Breast Cancer Interactions and Metastasis Growth. Cell Rep. 2017;18:1215-1228 pubmed 出版商
  390. Zhu L, Almaca J, Dadi P, Hong H, Sakamoto W, Rossi M, et al. β-arrestin-2 is an essential regulator of pancreatic β-cell function under physiological and pathophysiological conditions. Nat Commun. 2017;8:14295 pubmed 出版商
  391. Yang H, Ju F, Guo X, Ma S, Wang L, Cheng B, et al. RNA-binding protein RBM3 prevents NO-induced apoptosis in human neuroblastoma cells by modulating p38 signaling and miR-143. Sci Rep. 2017;7:41738 pubmed 出版商
  392. Kissing S, Rudnik S, Damme M, Lüllmann Rauch R, Ichihara A, Kornak U, et al. Disruption of the vacuolar-type H+-ATPase complex in liver causes MTORC1-independent accumulation of autophagic vacuoles and lysosomes. Autophagy. 2017;13:670-685 pubmed 出版商
  393. Liu J, Wang H, Gu J, Deng T, Yuan Z, Hu B, et al. BECN1-dependent CASP2 incomplete autophagy induction by binding to rabies virus phosphoprotein. Autophagy. 2017;13:739-753 pubmed 出版商
  394. Ertsås H, Nolan G, Labarge M, Lorens J. Microsphere cytometry to interrogate microenvironment-dependent cell signaling. Integr Biol (Camb). 2017;9:123-134 pubmed 出版商
  395. Wu M, Chen W, Lu Y, Zhu G, Hao L, Li Y. Gα13 negatively controls osteoclastogenesis through inhibition of the Akt-GSK3β-NFATc1 signalling pathway. Nat Commun. 2017;8:13700 pubmed 出版商
  396. Peng Y, Shi X, Li Z, He X, Sun Y. Particularly interesting Cys-His-rich protein is highly expressed in human intracranial aneurysms and resists aneurysmal rupture. Exp Ther Med. 2016;12:3905-3912 pubmed 出版商
  397. Yoo S, Latifkar A, Cerione R, Antonyak M. Cool-associated Tyrosine-phosphorylated Protein 1 Is Required for the Anchorage-independent Growth of Cervical Carcinoma Cells by Binding Paxillin and Promoting AKT Activation. J Biol Chem. 2017;292:3947-3957 pubmed 出版商
  398. Luo L, Bokil N, Wall A, Kapetanovic R, Lansdaal N, Marceline F, et al. SCIMP is a transmembrane non-TIR TLR adaptor that promotes proinflammatory cytokine production from macrophages. Nat Commun. 2017;8:14133 pubmed 出版商
  399. Cao H, Yu S, Chen D, Jing C, Wang Z, Ma R, et al. Liver X receptor agonist T0901317 reverses resistance of A549 human lung cancer cells to EGFR-TKI treatment. FEBS Open Bio. 2017;7:35-43 pubmed 出版商
  400. Mescher M, Jeong P, Knapp S, Rübsam M, Saynisch M, Kranen M, et al. The epidermal polarity protein Par3 is a non-cell autonomous suppressor of malignant melanoma. J Exp Med. 2017;214:339-358 pubmed 出版商
  401. Kechele D, Blue R, Zwarycz B, Espenschied S, Mah A, Siegel M, et al. Orphan Gpr182 suppresses ERK-mediated intestinal proliferation during regeneration and adenoma formation. J Clin Invest. 2017;127:593-607 pubmed 出版商
  402. Chen G, Chen J, Yan Z, Li Z, Yu M, Guo W, et al. Maternal diabetes modulates dental epithelial stem cells proliferation and self-renewal in offspring through apurinic/apyrimidinicendonuclease 1-mediated DNA methylation. Sci Rep. 2017;7:40762 pubmed 出版商
  403. Kawakami K, Takeshita A, Furushima K, Miyajima M, Hatamura I, Kuro O M, et al. Persistent fibroblast growth factor 23 signalling in the parathyroid glands for secondary hyperparathyroidism in mice with chronic kidney disease. Sci Rep. 2017;7:40534 pubmed 出版商
  404. Halbrook C, Wen H, Ruggeri J, Takeuchi K, Zhang Y, di Magliano M, et al. Mitogen-activated Protein Kinase Kinase Activity Maintains Acinar-to-Ductal Metaplasia and Is Required for Organ Regeneration in Pancreatitis. Cell Mol Gastroenterol Hepatol. 2017;3:99-118 pubmed 出版商
  405. Amarnath S, Stevens L, Stein D. Reconstitution of Torso signaling in cultured cells suggests a role for both Trunk and Torso-like in receptor activation. Development. 2017;144:677-686 pubmed 出版商
  406. Decourtye L, Mire E, Clemessy M, Heurtier V, Ledent T, Robinson I, et al. IGF-1 Induces GHRH Neuronal Axon Elongation during Early Postnatal Life in Mice. PLoS ONE. 2017;12:e0170083 pubmed 出版商
  407. Wu Q, Ma Y, Ruan C, Yang Y, Liu X, Ge Q, et al. Loss of osteoglycin promotes angiogenesis in limb ischaemia mouse models via modulation of vascular endothelial growth factor and vascular endothelial growth factor receptor 2 signalling pathway. Cardiovasc Res. 2017;113:70-80 pubmed 出版商
  408. Fallahi Sichani M, Becker V, Izar B, Baker G, Lin J, Boswell S, et al. Adaptive resistance of melanoma cells to RAF inhibition via reversible induction of a slowly dividing de-differentiated state. Mol Syst Biol. 2017;13:905 pubmed 出版商
  409. Hirai M, Arita Y, McGlade C, Lee K, Chen J, Evans S. Adaptor proteins NUMB and NUMBL promote cell cycle withdrawal by targeting ERBB2 for degradation. J Clin Invest. 2017;127:569-582 pubmed 出版商
  410. Inui K, Chen C, Pauli J, Kuroki C, Tashiro S, Kanmura Y, et al. Nasal TRPA1 mediates irritant-induced bradypnea in mice. Physiol Rep. 2016;4: pubmed 出版商
  411. Grossi M, Bhattachariya A, Nordström I, Turczynska K, Svensson D, Albinsson S, et al. Pyk2 inhibition promotes contractile differentiation in arterial smooth muscle. J Cell Physiol. 2017;232:3088-3102 pubmed 出版商
  412. Ohtsuka T, Sakaguchi M, Yamamoto H, Tomida S, Takata K, Shien K, et al. Interaction of cytokeratin 19 head domain and HER2 in the cytoplasm leads to activation of HER2-Erk pathway. Sci Rep. 2016;6:39557 pubmed 出版商
  413. Chao M, Guo J, Cheng W, Zhu X, She Z, Huang Z, et al. Loss of Caspase-Activated DNase Protects Against Atherosclerosis in Apolipoprotein E-Deficient Mice. J Am Heart Assoc. 2016;5: pubmed 出版商
  414. Fourneaux B, Chaire V, Lucchesi C, Karanian M, Pineau R, Laroche Clary A, et al. Dual inhibition of the PI3K/AKT/mTOR pathway suppresses the growth of leiomyosarcomas but leads to ERK activation through mTORC2: biological and clinical implications. Oncotarget. 2017;8:7878-7890 pubmed 出版商
  415. Vakana E, Pratt S, Blosser W, Dowless M, Simpson N, Yuan X, et al. LY3009120, a panRAF inhibitor, has significant anti-tumor activity in BRAF and KRAS mutant preclinical models of colorectal cancer. Oncotarget. 2017;8:9251-9266 pubmed 出版商
  416. Li Y, Buijs Gladdines J, Cant Barrett K, Stubbs A, Vroegindeweij E, Smits W, et al. IL-7 Receptor Mutations and Steroid Resistance in Pediatric T cell Acute Lymphoblastic Leukemia: A Genome Sequencing Study. PLoS Med. 2016;13:e1002200 pubmed 出版商
  417. 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
  418. Chung H, Ryu D, Kim K, Chang J, Kim Y, Yi H, et al. Growth differentiation factor 15 is a myomitokine governing systemic energy homeostasis. J Cell Biol. 2017;216:149-165 pubmed 出版商
  419. Yu Z, Mouillesseaux K, Kushner E, Bautch V. Tumor-Derived Factors and Reduced p53 Promote Endothelial Cell Centrosome Over-Duplication. PLoS ONE. 2016;11:e0168334 pubmed 出版商
  420. Ganta V, Choi M, Kutateladze A, Annex B. VEGF165b Modulates Endothelial VEGFR1-STAT3 Signaling Pathway and Angiogenesis in Human and Experimental Peripheral Arterial Disease. Circ Res. 2017;120:282-295 pubmed 出版商
  421. 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
  422. Chhabra A, Mukherji B, Batra D. Activation induced cell death (AICD) of human melanoma antigen-specific TCR engineered CD8 T cells involves JNK, Bim and p53. Expert Opin Ther Targets. 2017;21:117-129 pubmed 出版商
  423. Kompella P, Moses A, Peisajovich S. Introduction of Premature Stop Codons as an Evolutionary Strategy To Rescue Signaling Network Function. ACS Synth Biol. 2017;6:446-454 pubmed 出版商
  424. Farsam V, Basu A, Gatzka M, Treiber N, Schneider L, Mulaw M, et al. Senescent fibroblast-derived Chemerin promotes squamous cell carcinoma migration. Oncotarget. 2016;7:83554-83569 pubmed 出版商
  425. Choi S, Piao Z, Jin L, Kim J, Kim G, Ryu Y, et al. Piceatannol Attenuates Renal Fibrosis Induced by Unilateral Ureteral Obstruction via Downregulation of Histone Deacetylase 4/5 or p38-MAPK Signaling. PLoS ONE. 2016;11:e0167340 pubmed 出版商
  426. Mueller A, van Velthoven C, Fukumoto K, Cheung T, Rando T. Intronic polyadenylation of PDGFR? in resident stem cells attenuates muscle fibrosis. Nature. 2016;540:276-279 pubmed 出版商
  427. Quinn S, Graves S, Dains McGahee C, Friedman E, Hassan H, Witkowski P, et al. Adenylyl cyclase 3/adenylyl cyclase-associated protein 1 (CAP1) complex mediates the anti-migratory effect of forskolin in pancreatic cancer cells. Mol Carcinog. 2017;56:1344-1360 pubmed 出版商
  428. Su F, Myers V, Knezevic T, Wang J, Gao E, Madesh M, et al. Bcl-2-associated athanogene 3 protects the heart from ischemia/reperfusion injury. JCI Insight. 2016;1:e90931 pubmed 出版商
  429. Reuther C, Heinzle V, Nölting S, Herterich S, Hahner S, Halilovic E, et al. The HDM2 (MDM2) Inhibitor NVP-CGM097 Inhibits Tumor Cell Proliferation and Shows Additive Effects with 5-Fluorouracil on the p53-p21-Rb-E2F1 Cascade in the p53wild type Neuroendocrine Tumor Cell Line GOT1. Neuroendocrinology. 2018;106:1-19 pubmed 出版商
  430. Parag Sharma K, Leyme A, DiGiacomo V, Marivin A, Broselid S, Garcia Marcos M. Membrane Recruitment of the Non-receptor Protein GIV/Girdin (G?-interacting, Vesicle-associated Protein/Girdin) Is Sufficient for Activating Heterotrimeric G Protein Signaling. J Biol Chem. 2016;291:27098-27111 pubmed 出版商
  431. Kim H, Kim M, Park Y, Park I, Kim T, Yang S, et al. Prostaglandin E2 Activates YAP and a Positive-Signaling Loop to Promote Colon Regeneration After Colitis but Also Carcinogenesis in Mice. Gastroenterology. 2017;152:616-630 pubmed 出版商
  432. Bullock M, Lim G, Li C, Choi I, Kochhar S, Liddle C, et al. Thyroid transcription factor FOXE1 interacts with ETS factor ELK1 to co-regulate TERT. Oncotarget. 2016;7:85948-85962 pubmed 出版商
  433. Park J, Kim S, Yoo J, Jang J, Lee A, Oh J, et al. Novel Neuroprotective Effects of Melanin-Concentrating Hormone in Parkinson's Disease. Mol Neurobiol. 2017;54:7706-7721 pubmed 出版商
  434. Gordley R, Williams R, Bashor C, Toettcher J, Yan S, Lim W. Engineering dynamical control of cell fate switching using synthetic phospho-regulons. Proc Natl Acad Sci U S A. 2016;113:13528-13533 pubmed
  435. Han C, Juncadella I, Kinchen J, Buckley M, Klibanov A, Dryden K, et al. Macrophages redirect phagocytosis by non-professional phagocytes and influence inflammation. Nature. 2016;539:570-574 pubmed 出版商
  436. Hegedüs L, Garay T, Molnar E, Varga K, Bilecz A, Torok S, et al. The plasma membrane Ca2+ pump PMCA4b inhibits the migratory and metastatic activity of BRAF mutant melanoma cells. Int J Cancer. 2017;140:2758-2770 pubmed 出版商
  437. 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
  438. Cardoso R, Burns A, Moeller J, Skinner D, Padmanabhan V. Developmental Programming: Insulin Sensitizer Prevents the GnRH-Stimulated LH Hypersecretion in a Sheep Model of PCOS. Endocrinology. 2016;157:4641-4653 pubmed
  439. 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
  440. Shekhar A, Lin X, Liu F, Zhang J, Mo H, Bastarache L, et al. Transcription factor ETV1 is essential for rapid conduction in the heart. J Clin Invest. 2016;126:4444-4459 pubmed 出版商
  441. Zhao J, Chen C, Guo M, Tao Y, Cui P, Zhou Y, et al. MicroRNA-7 Deficiency Ameliorates the Pathologies of Acute Lung Injury through Elevating KLF4. Front Immunol. 2016;7:389 pubmed
  442. Bulldan A, Shihan M, Goericke Pesch S, Scheiner Bobis G. Signaling events associated with gonadotropin releasing hormone-agonist-induced hormonal castration and its reversal in canines. Mol Reprod Dev. 2016;83:1092-1101 pubmed 出版商
  443. Ulbrich F, Kaufmann K, Meske A, Lagrèze W, Augustynik M, Buerkle H, et al. The CORM ALF-186 Mediates Anti-Apoptotic Signaling via an Activation of the p38 MAPK after Ischemia and Reperfusion Injury in Retinal Ganglion Cells. PLoS ONE. 2016;11:e0165182 pubmed 出版商
  444. Cui Y, Li H, Wu S, Zhao R, Du D, Ding Y, et al. Formaldehyde impairs transepithelial sodium transport. Sci Rep. 2016;6:35857 pubmed 出版商
  445. Kennedy T, Swiderski K, Murphy K, Gehrig S, Curl C, Chandramouli C, et al. BGP-15 Improves Aspects of the Dystrophic Pathology in mdx and dko Mice with Differing Efficacies in Heart and Skeletal Muscle. Am J Pathol. 2016;186:3246-3260 pubmed 出版商
  446. Yang P, Schmit B, Fu C, Desart K, Oh S, Berceli S, et al. Smooth muscle cell-specific Tgfbr1 deficiency promotes aortic aneurysm formation by stimulating multiple signaling events. Sci Rep. 2016;6:35444 pubmed 出版商
  447. He Y, Yan Y, Zhang H, Lin Y, Chen Y, Yan Y, et al. Methyl salicylate 2-O-?-d-lactoside alleviates the pathological progression of pristane-induced systemic lupus erythematosus-like disease in mice via suppression of inflammatory response and signal transduction. Drug Des Devel Ther. 2016;10:3183-3196 pubmed
  448. De Henau O, Degroot G, Imbault V, Robert V, de Poorter C, Mcheik S, et al. Signaling Properties of Chemerin Receptors CMKLR1, GPR1 and CCRL2. PLoS ONE. 2016;11:e0164179 pubmed 出版商
  449. Zhao Y, Fan D, Ru B, Cheng K, Hu S, Zhang J, et al. 6-C-(E-phenylethenyl)naringenin induces cell growth inhibition and cytoprotective autophagy in colon cancer cells. Eur J Cancer. 2016;68:38-50 pubmed 出版商
  450. Zhong W, Wang X, Pan B, Li F, Kuang L, Su Z. Eupatilin induces human renal cancer cell apoptosis via ROS-mediated MAPK and PI3K/AKT signaling pathways. Oncol Lett. 2016;12:2894-2899 pubmed
  451. Wang J, Teng J, Zhao D, Ge P, Li B, Woo P, et al. The ubiquitin ligase TRIM27 functions as a host restriction factor antagonized by Mycobacterium tuberculosis PtpA during mycobacterial infection. Sci Rep. 2016;6:34827 pubmed 出版商
  452. Huai W, Song H, Yu Z, Wang W, Han L, Sakamoto T, et al. Mint3 potentiates TLR3/4- and RIG-I-induced IFN-? expression and antiviral immune responses. Proc Natl Acad Sci U S A. 2016;113:11925-11930 pubmed
  453. Schubert C, Raparelli V, Westphal C, Dworatzek E, Petrov G, Kararigas G, et al. Reduction of apoptosis and preservation of mitochondrial integrity under ischemia/reperfusion injury is mediated by estrogen receptor ?. Biol Sex Differ. 2016;7:53 pubmed 出版商
  454. Wang C, Zhang F, Cao Y, Zhang M, Wang A, Xu M, et al. Etoposide Induces Apoptosis in Activated Human Hepatic Stellate Cells via ER Stress. Sci Rep. 2016;6:34330 pubmed 出版商
  455. King B, Boccalatte F, Moran Crusio K, Wolf E, Wang J, Kayembe C, et al. The ubiquitin ligase Huwe1 regulates the maintenance and lymphoid commitment of hematopoietic stem cells. Nat Immunol. 2016;17:1312-1321 pubmed 出版商
  456. Ang Z, Er J, Tan N, Lu J, Liou Y, Grosse J, et al. Human and mouse monocytes display distinct signalling and cytokine profiles upon stimulation with FFAR2/FFAR3 short-chain fatty acid receptor agonists. Sci Rep. 2016;6:34145 pubmed 出版商
  457. Cao R, Meng Z, Liu T, Wang G, Qian G, Cao T, et al. Decreased TRPM7 inhibits activities and induces apoptosis of bladder cancer cells via ERK1/2 pathway. Oncotarget. 2016;7:72941-72960 pubmed 出版商
  458. Treindl F, Ruprecht B, Beiter Y, Schultz S, Döttinger A, Staebler A, et al. A bead-based western for high-throughput cellular signal transduction analyses. Nat Commun. 2016;7:12852 pubmed 出版商
  459. Shamblott M, O Driscoll M, Gomez D, McGuire D. Neurogenin 3 is regulated by neurotrophic tyrosine kinase receptor type 2 (TRKB) signaling in the adult human exocrine pancreas. Cell Commun Signal. 2016;14:23 pubmed
  460. Horn T, Ferretti S, Ebel N, Tam A, Ho S, Harbinski F, et al. High-Order Drug Combinations Are Required to Effectively Kill Colorectal Cancer Cells. Cancer Res. 2016;76:6950-6963 pubmed
  461. Krepler C, Xiao M, Samanta M, Vultur A, Chen H, Brafford P, et al. Targeting Notch enhances the efficacy of ERK inhibitors in BRAF-V600E melanoma. Oncotarget. 2016;7:71211-71222 pubmed 出版商
  462. Hang Q, Isaji T, Hou S, Zhou Y, Fukuda T, Gu J. N-Glycosylation of integrin ?5 acts as a switch for EGFR-mediated complex formation of integrin ?5?1 to ?6?4. Sci Rep. 2016;6:33507 pubmed 出版商
  463. Shin M, Male I, Beane T, Villefranc J, Kok F, Zhu L, et al. Vegfc acts through ERK to induce sprouting and differentiation of trunk lymphatic progenitors. Development. 2016;143:3785-3795 pubmed
  464. Wu Y, Ren D, Chen G. Siglec-E Negatively Regulates the Activation of TLR4 by Controlling Its Endocytosis. J Immunol. 2016;197:3336-3347 pubmed
  465. Janowski A, Colegio O, Hornick E, McNiff J, Martin M, Badovinac V, et al. NLRC4 suppresses melanoma tumor progression independently of inflammasome activation. J Clin Invest. 2016;126:3917-3928 pubmed 出版商
  466. Justa Schuch D, Silva Garcia M, Pilla E, Engelke M, Kilisch M, Lenz C, et al. DPP9 is a novel component of the N-end rule pathway targeting the tyrosine kinase Syk. elife. 2016;5: pubmed 出版商
  467. Klatt N, Scherschel K, Schad C, Lau D, Reitmeier A, Kuklik P, et al. Development of nonfibrotic left ventricular hypertrophy in an ANG II-induced chronic ovine hypertension model. Physiol Rep. 2016;4: pubmed 出版商
  468. García Carpizo V, Sarmentero J, Han B, Grana O, Ruiz Llorente S, Pisano D, et al. NSD2 contributes to oncogenic RAS-driven transcription in lung cancer cells through long-range epigenetic activation. Sci Rep. 2016;6:32952 pubmed 出版商
  469. Lee J, Jung H, Han Y, Yoon Y, Yun C, Sun H, et al. Antioxidant effects of Cirsium setidens extract on oxidative stress in human mesenchymal stem cells. Mol Med Rep. 2016;14:3777-84 pubmed 出版商
  470. Ando Y, Oku T, Tsuji T. Platelet Supernatant Suppresses LPS-Induced Nitric Oxide Production from Macrophages Accompanied by Inhibition of NF-?B Signaling and Increased Arginase-1 Expression. PLoS ONE. 2016;11:e0162208 pubmed 出版商
  471. Ji M, Lu Y, Zhao C, Gao W, He F, Zhang J, et al. C5a Induces the Synthesis of IL-6 and TNF-? in Rat Glomerular Mesangial Cells through MAPK Signaling Pathways. PLoS ONE. 2016;11:e0161867 pubmed 出版商
  472. Cheng F, Miao L, Wu Q, Gong X, Xiong J, Zhang J. Vinculin b deficiency causes epicardial hyperplasia and coronary vessel disorganization in zebrafish. Development. 2016;143:3522-3531 pubmed
  473. Cheng G, Gao F, Sun X, Bi H, Zhu Y. Paris saponin VII suppresses osteosarcoma cell migration and invasion by inhibiting MMP?2/9 production via the p38 MAPK signaling pathway. Mol Med Rep. 2016;14:3199-205 pubmed 出版商
  474. Josowitz R, Mulero Navarro S, Rodriguez N, Falce C, Cohen N, Ullian E, et al. Autonomous and Non-autonomous Defects Underlie Hypertrophic Cardiomyopathy in BRAF-Mutant hiPSC-Derived Cardiomyocytes. Stem Cell Reports. 2016;7:355-369 pubmed 出版商
  475. 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
  476. Hinsenkamp I, Schulz S, Roscher M, Suhr A, Meyer B, Munteanu B, et al. Inhibition of Rho-Associated Kinase 1/2 Attenuates Tumor Growth in Murine Gastric Cancer. Neoplasia. 2016;18:500-11 pubmed 出版商
  477. Mirkheshti N, Park S, Jiang S, Cropper J, Werner S, Song C, et al. Dual targeting of androgen receptor and mTORC1 by salinomycin in prostate cancer. Oncotarget. 2016;7:62240-62254 pubmed 出版商
  478. Froehlich J, Versapuech M, Megrelis L, Largeteau Q, Meunier S, Tanchot C, et al. FAM65B controls the proliferation of transformed and primary T cells. Oncotarget. 2016;7:63215-63225 pubmed 出版商
  479. Wu J, Wu H, Tsai D, Chiang M, Chen Y, Gao S, et al. Temporal regulation of Lsp1 O-GlcNAcylation and phosphorylation during apoptosis of activated B cells. Nat Commun. 2016;7:12526 pubmed 出版商
  480. Nakazawa S, Oikawa D, Ishii R, Ayaki T, Takahashi H, Takeda H, et al. Linear ubiquitination is involved in the pathogenesis of optineurin-associated amyotrophic lateral sclerosis. Nat Commun. 2016;7:12547 pubmed 出版商
  481. Hedl M, Yan J, Abraham C. IRF5 and IRF5 Disease-Risk Variants Increase Glycolysis and Human M1 Macrophage Polarization by Regulating Proximal Signaling and Akt2 Activation. Cell Rep. 2016;16:2442-55 pubmed 出版商
  482. Greenwood E, Maisel S, Ebertz D, Russ A, Pandey R, SCHROEDER J. Llgl1 prevents metaplastic survival driven by epidermal growth factor dependent migration. Oncotarget. 2016;7:60776-60792 pubmed 出版商
  483. Ju X, Hou Q, Sheng A, Wu K, Zhou Y, Jin Y, et al. The hominoid-specific gene TBC1D3 promotes generation of basal neural progenitors and induces cortical folding in mice. elife. 2016;5: pubmed 出版商
  484. Harrington K, Clevenger C. Identification of NEK3 Kinase Threonine 165 as a Novel Regulatory Phosphorylation Site That Modulates Focal Adhesion Remodeling Necessary for Breast Cancer Cell Migration. J Biol Chem. 2016;291:21388-21406 pubmed
  485. Di Roberto R, Chang B, Trusina A, Peisajovich S. Evolution of a G protein-coupled receptor response by mutations in regulatory network interactions. Nat Commun. 2016;7:12344 pubmed 出版商
  486. El Jamal S, Taylor E, Abd Elmageed Z, Alamodi A, Selimovic D, Alkhateeb A, et al. Interferon gamma-induced apoptosis of head and neck squamous cell carcinoma is connected to indoleamine-2,3-dioxygenase via mitochondrial and ER stress-associated pathways. Cell Div. 2016;11:11 pubmed 出版商
  487. Wang X, Shaw D, Hammond H, Sutterwala F, Rayamajhi M, Shirey K, et al. The Prostaglandin E2-EP3 Receptor Axis Regulates Anaplasma phagocytophilum-Mediated NLRC4 Inflammasome Activation. PLoS Pathog. 2016;12:e1005803 pubmed 出版商
  488. Reginensi A, Enderle L, Gregorieff A, Johnson R, Wrana J, McNeill H. A critical role for NF2 and the Hippo pathway in branching morphogenesis. Nat Commun. 2016;7:12309 pubmed 出版商
  489. Zhao Y, Zhang B, Lei Y, Sun J, Zhang Y, Yang S, et al. Knockdown of USP39 induces cell cycle arrest and apoptosis in melanoma. Tumour Biol. 2016;37:13167-13176 pubmed
  490. Ciaraldi T, Ryan A, Mudaliar S, Henry R. Altered Myokine Secretion Is an Intrinsic Property of Skeletal Muscle in Type 2 Diabetes. PLoS ONE. 2016;11:e0158209 pubmed 出版商
  491. Jiao K, Zeng G, Niu L, Yang H, Ren G, Xu X, et al. Activation of ?2A-adrenergic signal transduction in chondrocytes promotes degenerative remodelling of temporomandibular joint. Sci Rep. 2016;6:30085 pubmed 出版商
  492. Merry C, McMahon S, Forrest M, Bartels C, Saiakhova A, Bartel C, et al. Transcriptome-wide identification of mRNAs and lincRNAs associated with trastuzumab-resistance in HER2-positive breast cancer. Oncotarget. 2016;7:53230-53244 pubmed 出版商
  493. Wang J, Li H, Li B, Gong Q, Chen X, Wang Q. Co-culture of bone marrow stem cells and macrophages indicates intermediate mechanism between local inflammation and innate immune system in diabetic periodontitis. Exp Ther Med. 2016;12:567-572 pubmed
  494. Saisana M, Griffin S, May F. Importance of the type I insulin-like growth factor receptor in HER2, FGFR2 and MET-unamplified gastric cancer with and without Ras pathway activation. Oncotarget. 2016;7:54445-54462 pubmed 出版商
  495. Warner M, Bridge K, Hewitson J, Hodgkinson M, Heyam A, Massa B, et al. S6K2-mediated regulation of TRBP as a determinant of miRNA expression in human primary lymphatic endothelial cells. Nucleic Acids Res. 2016;44:9942-9955 pubmed
  496. Hogg S, Newbold A, Vervoort S, Cluse L, Martin B, Gregory G, et al. BET Inhibition Induces Apoptosis in Aggressive B-Cell Lymphoma via Epigenetic Regulation of BCL-2 Family Members. Mol Cancer Ther. 2016;15:2030-41 pubmed 出版商
  497. Zhang Y, Velez Delgado A, Mathew E, Li D, Mendez F, Flannagan K, et al. Myeloid cells are required for PD-1/PD-L1 checkpoint activation and the establishment of an immunosuppressive environment in pancreatic cancer. Gut. 2017;66:124-136 pubmed 出版商
  498. Grassi M, Palma C, Thomé C, Lanfredi G, Poersch A, Faça V. Proteomic analysis of ovarian cancer cells during epithelial-mesenchymal transition (EMT) induced by epidermal growth factor (EGF) reveals mechanisms of cell cycle control. J Proteomics. 2017;151:2-11 pubmed 出版商
  499. Botchlett R, Li H, Guo X, Qi T, Zhao J, Zheng J, et al. Glucose and Palmitate Differentially Regulate PFKFB3/iPFK2 and Inflammatory Responses in Mouse Intestinal Epithelial Cells. Sci Rep. 2016;6:28963 pubmed 出版商
  500. Shen P, Chen M, He M, Chen L, Song Y, Xiao P, et al. Inhibition of ER?/ERK/P62 cascades induces "autophagic switch" in the estrogen receptor-positive breast cancer cells exposed to gemcitabine. Oncotarget. 2016;7:48501-48516 pubmed 出版商
  501. Lukjanenko L, Jung M, Hegde N, Perruisseau Carrier C, Migliavacca E, Rozo M, et al. Loss of fibronectin from the aged stem cell niche affects the regenerative capacity of skeletal muscle in mice. Nat Med. 2016;22:897-905 pubmed 出版商
  502. Rozo M, Li L, Fan C. Targeting ?1-integrin signaling enhances regeneration in aged and dystrophic muscle in mice. Nat Med. 2016;22:889-96 pubmed 出版商
  503. Hatem R, El Botty R, Chateau Joubert S, Servely J, Labiod D, de Plater L, et al. Targeting mTOR pathway inhibits tumor growth in different molecular subtypes of triple-negative breast cancers. Oncotarget. 2016;7:48206-48219 pubmed 出版商
  504. Subramaniam S, Ozdener M, Abdoul Azize S, Saito K, Malik B, Maquart G, et al. ERK1/2 activation in human taste bud cells regulates fatty acid signaling and gustatory perception of fat in mice and humans. FASEB J. 2016;30:3489-3500 pubmed
  505. Takagi Y, Shimada K, Shimada S, Sakamoto A, Naoe T, Nakamura S, et al. SPIB is a novel prognostic factor in diffuse large B-cell lymphoma that mediates apoptosis via the PI3K-AKT pathway. Cancer Sci. 2016;107:1270-80 pubmed 出版商
  506. Kemper K, Krijgsman O, Kong X, Cornelissen Steijger P, Shahrabi A, Weeber F, et al. BRAF(V600E) Kinase Domain Duplication Identified in Therapy-Refractory Melanoma Patient-Derived Xenografts. Cell Rep. 2016;16:263-277 pubmed 出版商
  507. Meinhardt G, Saleh L, Otti G, Haider S, Velicky P, Fiala C, et al. Wingless ligand 5a is a critical regulator of placental growth and survival. Sci Rep. 2016;6:28127 pubmed 出版商
  508. Zhou X, Wei Y, Qiu S, Xu Y, Zhang T, Zhang S. Propofol Decreases Endoplasmic Reticulum Stress-Mediated Apoptosis in Retinal Pigment Epithelial Cells. PLoS ONE. 2016;11:e0157590 pubmed 出版商
  509. Chan W, Ismail H, Mayaki D, Sanchez V, Tiedemann K, Davis E, et al. Fibulin-5 Regulates Angiopoietin-1/Tie-2 Receptor Signaling in Endothelial Cells. PLoS ONE. 2016;11:e0156994 pubmed 出版商
  510. Fagnocchi L, Cherubini A, Hatsuda H, Fasciani A, Mazzoleni S, Poli V, et al. A Myc-driven self-reinforcing regulatory network maintains mouse embryonic stem cell identity. Nat Commun. 2016;7:11903 pubmed 出版商
  511. Yin Y, Gao D, Wang Y, Wang Z, Wang X, Ye J, et al. Tau accumulation induces synaptic impairment and memory deficit by calcineurin-mediated inactivation of nuclear CaMKIV/CREB signaling. Proc Natl Acad Sci U S A. 2016;113:E3773-81 pubmed 出版商
  512. Xu Y, Liu J, He M, Liu R, Belegu V, Dai P, et al. Mechanisms of PDGF siRNA-mediated inhibition of bone cancer pain in the spinal cord. Sci Rep. 2016;6:27512 pubmed 出版商
  513. Tejada T, Tan L, Torres R, Calvert J, Lambert J, Zaidi M, et al. IGF-1 degradation by mouse mast cell protease 4 promotes cell death and adverse cardiac remodeling days after a myocardial infarction. Proc Natl Acad Sci U S A. 2016;113:6949-54 pubmed 出版商
  514. Han S, Ma X, Zhao Y, Zhao H, Batista A, Zhou S, et al. Identification of Glypican-3 as a potential metastasis suppressor gene in gastric cancer. Oncotarget. 2016;7:44406-44416 pubmed 出版商
  515. Xi Z, Yao M, Li Y, Xie C, Holst J, Liu T, et al. Guttiferone K impedes cell cycle re-entry of quiescent prostate cancer cells via stabilization of FBXW7 and subsequent c-MYC degradation. Cell Death Dis. 2016;7:e2252 pubmed 出版商
  516. Leonard S, Kinsella G, Benetti E, Findlay J. Regulating the effects of GPR21, a novel target for type 2 diabetes. Sci Rep. 2016;6:27002 pubmed 出版商
  517. Zhou B, Ritt D, Morrison D, Der C, Cox A. Protein Kinase CK2? Maintains Extracellular Signal-regulated Kinase (ERK) Activity in a CK2? Kinase-independent Manner to Promote Resistance to Inhibitors of RAF and MEK but Not ERK in BRAF Mutant Melanoma. J Biol Chem. 2016;291:17804-15 pubmed 出版商
  518. Lu Z, Chen W, Li Y, Li L, Zhang H, Pang Y, et al. TNF-? enhances vascular cell adhesion molecule-1 expression in human bone marrow mesenchymal stem cells via the NF-?B, ERK and JNK signaling pathways. Mol Med Rep. 2016;14:643-8 pubmed 出版商
  519. Zhang C, Li L, Zhao B, Jiao A, Li X, Sun N, et al. Ghrelin Protects against Dexamethasone-Induced INS-1 Cell Apoptosis via ERK and p38MAPK Signaling. Int J Endocrinol. 2016;2016:4513051 pubmed 出版商
  520. Huang D, Zhao C, Ju R, Kumar A, Tian G, Huang L, et al. VEGF-B inhibits hyperglycemia- and Macugen-induced retinal apoptosis. Sci Rep. 2016;6:26059 pubmed 出版商
  521. de Jong P, Taniguchi K, Harris A, Bertin S, Takahashi N, Duong J, et al. ERK5 signalling rescues intestinal epithelial turnover and tumour cell proliferation upon ERK1/2 abrogation. Nat Commun. 2016;7:11551 pubmed 出版商
  522. Ribeiro J, Schorl C, Yano N, Romano N, Kim K, Singh R, et al. HE4 promotes collateral resistance to cisplatin and paclitaxel in ovarian cancer cells. J Ovarian Res. 2016;9:28 pubmed 出版商
  523. Song X, Yao Z, Yang J, Zhang Z, Deng Y, Li M, et al. HCV core protein binds to gC1qR to induce A20 expression and inhibit cytokine production through MAPKs and NF-κB signaling pathways. Oncotarget. 2016;7:33796-808 pubmed 出版商
  524. 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
  525. Rao E, Zhang Y, Li Q, Hao J, Egilmez N, Suttles J, et al. AMPK-dependent and independent effects of AICAR and compound C on T-cell responses. Oncotarget. 2016;7:33783-95 pubmed 出版商
  526. Hsieh M, Yang P, Wong L, Lee J. The AXL receptor tyrosine kinase is associated with adverse prognosis and distant metastasis in esophageal squamous cell carcinoma. Oncotarget. 2016;7:36956-36970 pubmed 出版商
  527. Bulldan A, Dietze R, Shihan M, Scheiner Bobis G. Non-classical testosterone signaling mediated through ZIP9 stimulates claudin expression and tight junction formation in Sertoli cells. Cell Signal. 2016;28:1075-85 pubmed 出版商
  528. Terakawa J, Rocchi A, Serna V, Bottinger E, Graff J, Kurita T. FGFR2IIIb-MAPK Activity Is Required for Epithelial Cell Fate Decision in the Lower Müllerian Duct. Mol Endocrinol. 2016;30:783-95 pubmed 出版商
  529. Miyawaki S, Kawamura Y, Oiwa Y, Shimizu A, Hachiya T, Bono H, et al. Tumour resistance in induced pluripotent stem cells derived from naked mole-rats. Nat Commun. 2016;7:11471 pubmed 出版商
  530. Sommer A, Kordowski F, Büch J, Maretzky T, Evers A, Andrä J, et al. Phosphatidylserine exposure is required for ADAM17 sheddase function. Nat Commun. 2016;7:11523 pubmed 出版商
  531. Lock R, Ingraham R, Maertens O, Miller A, Weledji N, Legius E, et al. Cotargeting MNK and MEK kinases induces the regression of NF1-mutant cancers. J Clin Invest. 2016;126:2181-90 pubmed 出版商
  532. Ren W, Yin J, Chen S, Duan J, Liu G, Li T, et al. Proteome analysis for the global proteins in the jejunum tissues of enterotoxigenic Escherichia coli -infected piglets. Sci Rep. 2016;6:25640 pubmed 出版商
  533. Vorvis C, Hatziapostolou M, Mahurkar Joshi S, Koutsioumpa M, Williams J, Donahue T, et al. Transcriptomic and CRISPR/Cas9 technologies reveal FOXA2 as a tumor suppressor gene in pancreatic cancer. Am J Physiol Gastrointest Liver Physiol. 2016;310:G1124-37 pubmed 出版商
  534. Illich D, Zhang M, Ursu A, Osorno R, Kim K, Yoon J, et al. Distinct Signaling Requirements for the Establishment of ESC Pluripotency in Late-Stage EpiSCs. Cell Rep. 2016;15:787-800 pubmed 出版商
  535. Bie Q, Sun C, Gong A, Li C, Su Z, Zheng D, et al. Non-tumor tissue derived interleukin-17B activates IL-17RB/AKT/β-catenin pathway to enhance the stemness of gastric cancer. Sci Rep. 2016;6:25447 pubmed 出版商
  536. Xu Z, Mei F, Liu H, Sun C, Zheng Z. C-C Motif Chemokine Receptor 9 Exacerbates Pressure Overload-Induced Cardiac Hypertrophy and Dysfunction. J Am Heart Assoc. 2016;5: pubmed 出版商
  537. Filosa A, Barker A, Dal Maschio M, Baier H. Feeding State Modulates Behavioral Choice and Processing of Prey Stimuli in the Zebrafish Tectum. Neuron. 2016;90:596-608 pubmed 出版商
  538. He S, Mansour M, Zimmerman M, Ki D, Layden H, Akahane K, et al. Synergy between loss of NF1 and overexpression of MYCN in neuroblastoma is mediated by the GAP-related domain. elife. 2016;5: pubmed 出版商
  539. Li D, Xie K, Zhang L, Yao X, Li H, Xu Q, et al. Dual blockade of vascular endothelial growth factor (VEGF) and basic fibroblast growth factor (FGF-2) exhibits potent anti-angiogenic effects. Cancer Lett. 2016;377:164-73 pubmed 出版商
  540. Ishizuka S, Askew E, Ishizuka N, Knudson C, Knudson W. 4-Methylumbelliferone Diminishes Catabolically Activated Articular Chondrocytes and Cartilage Explants via a Mechanism Independent of Hyaluronan Inhibition. J Biol Chem. 2016;291:12087-104 pubmed 出版商
  541. Wu Y, Lan C, Ren D, Chen G. Induction of Siglec-1 by Endotoxin Tolerance Suppresses the Innate Immune Response by Promoting TGF-?1 Production. J Biol Chem. 2016;291:12370-82 pubmed 出版商
  542. Wang Y, Cao J, Fan Y, Xie Y, Xu Z, Yin Z, et al. Artemisinin inhibits monocyte adhesion to HUVECs through the NF-?B and MAPK pathways in vitro. Int J Mol Med. 2016;37:1567-75 pubmed 出版商
  543. Choi H, Kim M, Choi Y, Shin Y, Cho S, Ko S. Rhus verniciflua Stokes (RVS) and butein induce apoptosis of paclitaxel-resistant SKOV-3/PAX ovarian cancer cells through inhibition of AKT phosphorylation. BMC Complement Altern Med. 2016;16:122 pubmed 出版商
  544. Boothe T, Lim G, Cen H, Skovsø S, Piske M, Li S, et al. Inter-domain tagging implicates caveolin-1 in insulin receptor trafficking and Erk signaling bias in pancreatic beta-cells. Mol Metab. 2016;5:366-378 pubmed 出版商
  545. Papke B, Murarka S, Vogel H, Martín Gago P, Kovacevic M, Truxius D, et al. Identification of pyrazolopyridazinones as PDE? inhibitors. Nat Commun. 2016;7:11360 pubmed 出版商
  546. Wang X, Wang N, Li H, Liu M, Cao F, Yu X, et al. Up-Regulation of PAI-1 and Down-Regulation of uPA Are Involved in Suppression of Invasiveness and Motility of Hepatocellular Carcinoma Cells by a Natural Compound Berberine. Int J Mol Sci. 2016;17:577 pubmed 出版商
  547. Cao Y, Liang H, Zhang F, Luan Z, Zhao S, Wang X, et al. Prohibitin overexpression predicts poor prognosis and promotes cell proliferation and invasion through ERK pathway activation in gallbladder cancer. J Exp Clin Cancer Res. 2016;35:68 pubmed 出版商
  548. von Mässenhausen A, SANDERS C, Thewes B, Deng M, Queisser A, Vogel W, et al. MERTK as a novel therapeutic target in head and neck cancer. Oncotarget. 2016;7:32678-94 pubmed 出版商
  549. Cozzolino A, Noce V, Battistelli C, Marchetti A, Grassi G, Cicchini C, et al. Modulating the Substrate Stiffness to Manipulate Differentiation of Resident Liver Stem Cells and to Improve the Differentiation State of Hepatocytes. Stem Cells Int. 2016;2016:5481493 pubmed 出版商
  550. Seidel P, Remus M, Delacher M, Grigaravicius P, Reuss D, Frappart L, et al. Epidermal Nbn deletion causes premature hair loss and a phenotype resembling psoriasiform dermatitis. Oncotarget. 2016;7:23006-18 pubmed 出版商
  551. Su K, Cao J, Tang Z, Dai S, He Y, Sampson S, et al. HSF1 critically attunes proteotoxic stress sensing by mTORC1 to combat stress and promote growth. Nat Cell Biol. 2016;18:527-39 pubmed 出版商
  552. Li X, Dai X, Wan L, Inuzuka H, Sun L, North B. Smurf1 regulation of DAB2IP controls cell proliferation and migration. Oncotarget. 2016;7:26057-69 pubmed 出版商
  553. Huang W, Zhao H, Dong H, Wu Y, Yao L, Zou F, et al. High-mobility group box 1 impairs airway epithelial barrier function through the activation of the RAGE/ERK pathway. Int J Mol Med. 2016;37:1189-98 pubmed 出版商
  554. An X, Zhao Z, Luo Y, Zhang R, Tang X, Hao D, et al. Netrin-1 suppresses the MEK/ERK pathway and ITGB4 in pancreatic cancer. Oncotarget. 2016;7:24719-33 pubmed 出版商
  555. Chatelle C, Hövermann D, Muller A, Wagner H, Weber W, Radziwill G. Optogenetically controlled RAF to characterize BRAF and CRAF protein kinase inhibitors. Sci Rep. 2016;6:23713 pubmed 出版商
  556. 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
  557. Braley A, Kwak T, Jules J, Harja E, Landgraf R, Hudson B. Regulation of Receptor for Advanced Glycation End Products (RAGE) Ectodomain Shedding and Its Role in Cell Function. J Biol Chem. 2016;291:12057-73 pubmed 出版商
  558. Liu D, Bordicchia M, Zhang C, Fang H, Wei W, Li J, et al. Activation of mTORC1 is essential for ?-adrenergic stimulation of adipose browning. J Clin Invest. 2016;126:1704-16 pubmed 出版商
  559. Huang Y, Bharill S, Karandur D, Peterson S, Marita M, Shi X, et al. Molecular basis for multimerization in the activation of the epidermal growth factor receptor. elife. 2016;5: pubmed 出版商
  560. Woodfield S, Guo R, Liu Y, Major A, Hollingsworth E, Indiviglio S, et al. Neuroblastoma patient outcomes, tumor differentiation, and ERK activation are correlated with expression levels of the ubiquitin ligase UBE4B. Genes Cancer. 2016;7:13-26 pubmed
  561. Margaryan N, Gilgur A, Seftor E, Purnell C, Arva N, Gosain A, et al. Melanocytes Affect Nodal Expression and Signaling in Melanoma Cells: A Lesson from Pediatric Large Congenital Melanocytic Nevi. Int J Mol Sci. 2016;17:418 pubmed 出版商
  562. Wen Y, Li H, Zeng Y, Wen W, Pendleton K, Lui V, et al. MAPK1E322K mutation increases head and neck squamous cell carcinoma sensitivity to erlotinib through enhanced secretion of amphiregulin. Oncotarget. 2016;7:23300-11 pubmed 出版商
  563. Wu J, Ivanov A, Fisher P, Fu Z. Polo-like kinase 1 induces epithelial-to-mesenchymal transition and promotes epithelial cell motility by activating CRAF/ERK signaling. elife. 2016;5: pubmed 出版商
  564. Agarwal S, Ghosh R, Chen Z, Lakoma A, Gunaratne P, Kim E, et al. Transmembrane adaptor protein PAG1 is a novel tumor suppressor in neuroblastoma. Oncotarget. 2016;7:24018-26 pubmed 出版商
  565. Scott D, Tolbert C, Burridge K. Tension on JAM-A activates RhoA via GEF-H1 and p115 RhoGEF. Mol Biol Cell. 2016;27:1420-30 pubmed 出版商
  566. Fan J, Fan X, Li Y, Guo J, Xia D, Ding L, et al. Blunted inflammation mediated by NF-κB activation in hippocampus alleviates chronic normobaric hypoxia-induced anxiety-like behavior in rats. Brain Res Bull. 2016;122:54-61 pubmed 出版商
  567. Nishida Fukuda H, Araki R, Shudou M, Okazaki H, Tomono Y, Nakayama H, et al. Ectodomain Shedding of Lymphatic Vessel Endothelial Hyaluronan Receptor 1 (LYVE-1) Is Induced by Vascular Endothelial Growth Factor A (VEGF-A). J Biol Chem. 2016;291:10490-500 pubmed 出版商
  568. Prause M, Mayer C, Brorsson C, Frederiksen K, Billestrup N, Størling J, et al. JNK1 Deficient Insulin-Producing Cells Are Protected against Interleukin-1β-Induced Apoptosis Associated with Abrogated Myc Expression. J Diabetes Res. 2016;2016:1312705 pubmed 出版商
  569. Yang H, Vainshtein A, Maik Rachline G, Peles E. G protein-coupled receptor 37 is a negative regulator of oligodendrocyte differentiation and myelination. Nat Commun. 2016;7:10884 pubmed 出版商
  570. Christensen D, Ejlerskov P, Rasmussen I, Vilhardt F. Reciprocal signals between microglia and neurons regulate α-synuclein secretion by exophagy through a neuronal cJUN-N-terminal kinase-signaling axis. J Neuroinflammation. 2016;13:59 pubmed 出版商
  571. 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
  572. Wang W, Jossin Y, Chai G, Lien W, Tissir F, Goffinet A. Feedback regulation of apical progenitor fate by immature neurons through Wnt7-Celsr3-Fzd3 signalling. Nat Commun. 2016;7:10936 pubmed 出版商
  573. Papadopoulos D, Dietze R, Shihan M, Kirch U, Scheiner Bobis G. Dehydroepiandrosterone Sulfate Stimulates Expression of Blood-Testis-Barrier Proteins Claudin-3 and -5 and Tight Junction Formation via a Gnα11-Coupled Receptor in Sertoli Cells. PLoS ONE. 2016;11:e0150143 pubmed 出版商
  574. SaygideÄŸer Kont Y, Minas T, Jones H, Hour S, Çelik H, Temel I, et al. Ezrin Enhances EGFR Signaling and Modulates Erlotinib Sensitivity in Non-Small Cell Lung Cancer Cells. Neoplasia. 2016;18:111-20 pubmed 出版商
  575. Choi J, Kim I, Kim Y, Lee M, Nam T. Pyropia yezoensis glycoprotein regulates antioxidant status and prevents hepatotoxicity in a rat model of D-galactosamine/lipopolysaccharide-induced acute liver failure. Mol Med Rep. 2016;13:3110-4 pubmed 出版商
  576. Bigenzahn J, Fauster A, Rebsamen M, Kandasamy R, Scorzoni S, Vladimer G, et al. An Inducible Retroviral Expression System for Tandem Affinity Purification Mass-Spectrometry-Based Proteomics Identifies Mixed Lineage Kinase Domain-like Protein (MLKL) as an Heat Shock Protein 90 (HSP90) Client. Mol Cell Proteomics. 2016;15:1139-50 pubmed
  577. Woodfield S, Zhang L, Scorsone K, Liu Y, Zage P. Binimetinib inhibits MEK and is effective against neuroblastoma tumor cells with low NF1 expression. BMC Cancer. 2016;16:172 pubmed 出版商
  578. Eichten A, Su J, Adler A, Zhang L, Ioffe E, Parveen A, et al. Resistance to Anti-VEGF Therapy Mediated by Autocrine IL6/STAT3 Signaling and Overcome by IL6 Blockade. Cancer Res. 2016;76:2327-39 pubmed 出版商
  579. Seip K, Fleten K, Barkovskaya A, Nygaard V, Haugen M, Engesæter B, et al. Fibroblast-induced switching to the mesenchymal-like phenotype and PI3K/mTOR signaling protects melanoma cells from BRAF inhibitors. Oncotarget. 2016;7:19997-20015 pubmed 出版商
  580. Yu C, Tang L, Liang C, Chen X, Song S, Ding X, et al. Angiotensin-Converting Enzyme 3 (ACE3) Protects Against Pressure Overload-Induced Cardiac Hypertrophy. J Am Heart Assoc. 2016;5: pubmed 出版商
  581. Rubattu S, Di Castro S, Schulz H, Geurts A, Cotugno M, Bianchi F, et al. Ndufc2 Gene Inhibition Is Associated With Mitochondrial Dysfunction and Increased Stroke Susceptibility in an Animal Model of Complex Human Disease. J Am Heart Assoc. 2016;5: pubmed 出版商
  582. Baietti M, Simíček M, Abbasi Asbagh L, Radaelli E, Lievens S, Crowther J, et al. OTUB1 triggers lung cancer development by inhibiting RAS monoubiquitination. EMBO Mol Med. 2016;8:288-303 pubmed 出版商
  583. Molteni R, Rossetti A, Savino E, Racagni G, Calabrese F. Chronic Mild Stress Modulates Activity-Dependent Transcription of BDNF in Rat Hippocampal Slices. Neural Plast. 2016;2016:2592319 pubmed 出版商
  584. Singhal G, Fisher F, Chee M, Tan T, El Ouaamari A, Adams A, et al. Fibroblast Growth Factor 21 (FGF21) Protects against High Fat Diet Induced Inflammation and Islet Hyperplasia in Pancreas. PLoS ONE. 2016;11:e0148252 pubmed 出版商
  585. Wu T, Li Y, Liu B, Zhang S, Wu L, Zhu X, et al. Expression of Ferritin Light Chain (FTL) Is Elevated in Glioblastoma, and FTL Silencing Inhibits Glioblastoma Cell Proliferation via the GADD45/JNK Pathway. PLoS ONE. 2016;11:e0149361 pubmed 出版商
  586. Zhang Z, Zhang H, Peng T, Li D, Xu J. Melittin suppresses cathepsin S-induced invasion and angiogenesis via blocking of the VEGF-A/VEGFR-2/MEK1/ERK1/2 pathway in human hepatocellular carcinoma. Oncol Lett. 2016;11:610-618 pubmed
  587. Liu T, Fang Z, Wang G, Shi M, Wang X, Jiang K, et al. Anti-tumor activity of the TRPM8 inhibitor BCTC in prostate cancer DU145 cells. Oncol Lett. 2016;11:182-188 pubmed
  588. Roy J, Kim B, Hill E, Visconti P, Krapf D, Vinegoni C, et al. Tyrosine kinase-mediated axial motility of basal cells revealed by intravital imaging. Nat Commun. 2016;7:10666 pubmed 出版商
  589. Fu X, Xie F, Dong P, Li Q, Yu G, Xiao R. High-Dose Fluoride Impairs the Properties of Human Embryonic Stem Cells via JNK Signaling. PLoS ONE. 2016;11:e0148819 pubmed 出版商
  590. Liu Y, Takahashi Y, Desai N, Zhang J, Serfass J, Shi Y, et al. Bif-1 deficiency impairs lipid homeostasis and causes obesity accompanied by insulin resistance. Sci Rep. 2016;6:20453 pubmed 出版商
  591. Ding M, Bruick R, Yu Y. Secreted IGFBP5 mediates mTORC1-dependent feedback inhibition of IGF-1 signalling. Nat Cell Biol. 2016;18:319-27 pubmed 出版商
  592. White Y, Bagchi A, Van Ziffle J, Inguva A, Bollag G, Zhang C, et al. KRAS insertion mutations are oncogenic and exhibit distinct functional properties. Nat Commun. 2016;7:10647 pubmed 出版商
  593. Li J, Pan Q, Rowan P, Trotter T, Peker D, Regal K, et al. Heparanase promotes myeloma progression by inducing mesenchymal features and motility of myeloma cells. Oncotarget. 2016;7:11299-309 pubmed 出版商
  594. Coke C, Scarlett K, Chetram M, Jones K, Sandifer B, Davis A, et al. Simultaneous Activation of Induced Heterodimerization between CXCR4 Chemokine Receptor and Cannabinoid Receptor 2 (CB2) Reveals a Mechanism for Regulation of Tumor Progression. J Biol Chem. 2016;291:9991-10005 pubmed 出版商
  595. Yang Q, Sun G, Cao Z, Yin H, Qi Q, Wang J, et al. The expression of NLRX1 in C57BL/6 mice cochlear hair cells: Possible relation to aging- and neomycin-induced deafness. Neurosci Lett. 2016;616:138-46 pubmed 出版商
  596. Eichel K, Jullié D, von Zastrow M. β-Arrestin drives MAP kinase signalling from clathrin-coated structures after GPCR dissociation. Nat Cell Biol. 2016;18:303-10 pubmed 出版商
  597. Lin F, Chen Y, Liang H, Tan S. Echistatin prevents posterior capsule opacification in diabetic rabbit model via integrin linked kinase signaling pathway. Int J Clin Exp Pathol. 2015;8:14294-304 pubmed
  598. Iyer S, Chou F, Wang R, Chiu H, Raju V, Little M, et al. Crim1 has cell-autonomous and paracrine roles during embryonic heart development. Sci Rep. 2016;6:19832 pubmed 出版商
  599. Wu X, Yang L, Zheng Z, Li Z, Shi J, Li Y, et al. Src promotes cutaneous wound healing by regulating MMP-2 through the ERK pathway. Int J Mol Med. 2016;37:639-48 pubmed 出版商
  600. Grassilli E, Pisano F, Cialdella A, Bonomo S, Missaglia C, Cerrito M, et al. A novel oncogenic BTK isoform is overexpressed in colon cancers and required for RAS-mediated transformation. Oncogene. 2016;35:4368-78 pubmed 出版商
  601. Luey B, May F. Insulin-like growth factors are essential to prevent anoikis in oestrogen-responsive breast cancer cells: importance of the type I IGF receptor and PI3-kinase/Akt pathway. Mol Cancer. 2016;15:8 pubmed 出版商
  602. Chung S, Moon H, Ju H, Kim D, Cho K, Ribback S, et al. Comparison of liver oncogenic potential among human RAS isoforms. Oncotarget. 2016;7:7354-66 pubmed 出版商
  603. Peres T, Ong L, Costa A, Eyng H, Venske D, Colle D, et al. Tyrosine hydroxylase regulation in adult rat striatum following short-term neonatal exposure to manganese. Metallomics. 2016;8:597-604 pubmed 出版商
  604. Kanderová V, Kuzilkova D, Stuchly J, Vaskova M, Brdicka T, Fiser K, et al. High-resolution Antibody Array Analysis of Childhood Acute Leukemia Cells. Mol Cell Proteomics. 2016;15:1246-61 pubmed 出版商
  605. Tien S, Lee H, Yang Y, Lin M, Chen Y, Chang Z. The Shp2-induced epithelial disorganization defect is reversed by HDAC6 inhibition independent of Cdc42. Nat Commun. 2016;7:10420 pubmed 出版商
  606. Cherepkova M, Sineva G, Pospelov V. Leukemia inhibitory factor (LIF) withdrawal activates mTOR signaling pathway in mouse embryonic stem cells through the MEK/ERK/TSC2 pathway. Cell Death Dis. 2016;7:e2050 pubmed 出版商
  607. Pugh R, Slee J, Farwell S, Li Y, Barthol T, Patton W, et al. Transmembrane Protein 184A Is a Receptor Required for Vascular Smooth Muscle Cell Responses to Heparin. J Biol Chem. 2016;291:5326-41 pubmed 出版商
  608. Ito T, Itakura J, Takahashi S, Sato M, Mino M, Fushimi S, et al. Sprouty-Related Ena/Vasodilator-Stimulated Phosphoprotein Homology 1-Domain-Containing Protein-2 Critically Regulates Influenza A Virus-Induced Pneumonia. Crit Care Med. 2016;44:e530-43 pubmed 出版商
  609. Amato K, Wang S, Tan L, Hastings A, Song W, Lovly C, et al. EPHA2 Blockade Overcomes Acquired Resistance to EGFR Kinase Inhibitors in Lung Cancer. Cancer Res. 2016;76:305-18 pubmed 出版商
  610. Jeong J, VanHouten J, Dann P, Kim W, Sullivan C, Yu H, et al. PMCA2 regulates HER2 protein kinase localization and signaling and promotes HER2-mediated breast cancer. Proc Natl Acad Sci U S A. 2016;113:E282-90 pubmed 出版商
  611. Han X, Zha Z, Yuan H, Feng X, Xia Y, Lei Q, et al. KDM2B/FBXL10 targets c-Fos for ubiquitylation and degradation in response to mitogenic stimulation. Oncogene. 2016;35:4179-90 pubmed 出版商
  612. Creedon H, Balderstone L, Muir M, Balla J, Gómez Cuadrado L, Tracey N, et al. Use of a genetically engineered mouse model as a preclinical tool for HER2 breast cancer. Dis Model Mech. 2016;9:131-40 pubmed 出版商
  613. Hu Y, Chen F, Liu F, Liu X, Huang N, Cai X, et al. Overexpression of TIP30 inhibits the growth and invasion of glioma cells. Mol Med Rep. 2016;13:605-12 pubmed 出版商
  614. Wang C, Che L, Hu J, Zhang S, Jiang L, Latte G, et al. Activated mutant forms of PIK3CA cooperate with RasV12 or c-Met to induce liver tumour formation in mice via AKT2/mTORC1 cascade. Liver Int. 2016;36:1176-86 pubmed 出版商
  615. Xu Y, Wu D, Zheng W, Yu F, Yang F, Yao Y, et al. Proteome profiling of cadmium-induced apoptosis by antibody array analyses in human bronchial epithelial cells. Oncotarget. 2016;7:6146-58 pubmed 出版商
  616. Chen P, Li J, Huo Y, Lu J, Wan L, Li B, et al. Orphan nuclear receptor NR4A2 inhibits hepatic stellate cell proliferation through MAPK pathway in liver fibrosis. Peerj. 2015;3:e1518 pubmed 出版商
  617. He G, Xu W, Li J, Li S, Liu B, Tan X, et al. Huwe1 interacts with Gadd45b under oxygen-glucose deprivation and reperfusion injury in primary Rat cortical neuronal cells. Mol Brain. 2015;8:88 pubmed 出版商
  618. Roth Flach R, Skoura A, Matevossian A, Danai L, Zheng W, Cortes C, et al. Endothelial protein kinase MAP4K4 promotes vascular inflammation and atherosclerosis. Nat Commun. 2015;6:8995 pubmed 出版商
  619. Su X, Yan H, Huang Y, Yun H, Zeng B, Wang E, et al. Expression of FABP4, adipsin and adiponectin in Paneth cells is modulated by gut Lactobacillus. Sci Rep. 2015;5:18588 pubmed 出版商
  620. Schmieg N, Rocchi C, Romeo S, Maggio R, Millan M, Mannoury La Cour C. Dysbindin-1 modifies signaling and cellular localization of recombinant, human D₃ and Dâ‚‚ receptors. J Neurochem. 2016;136:1037-51 pubmed 出版商
  621. Zhang Y, Fan J, Ho J, Hu T, Kneeland S, Fan X, et al. Crim1 regulates integrin signaling in murine lens development. Development. 2016;143:356-66 pubmed 出版商
  622. Gao Q, Liu Y, Wu Y, Zhao Q, Wang L, Gao S, et al. IL-17 intensifies IFN-γ-induced NOS2 upregulation in RAW 264.7 cells by further activating STAT1 and NF-κB. Int J Mol Med. 2016;37:347-58 pubmed 出版商
  623. Pages M, Lacroix L, Tauziède Espariat A, Castel D, Daudigeos Dubus E, Ridola V, et al. Papillary glioneuronal tumors: histological and molecular characteristics and diagnostic value of SLC44A1-PRKCA fusion. Acta Neuropathol Commun. 2015;3:85 pubmed 出版商
  624. Wang X, Li S, Wang G, Ma Z, Chuai M, Cao L, et al. High glucose environment inhibits cranial neural crest survival by activating excessive autophagy in the chick embryo. Sci Rep. 2015;5:18321 pubmed 出版商
  625. Smorodinsky Atias K, Goshen Lago T, Goldberg Carp A, Melamed D, Shir A, Mooshayef N, et al. Intrinsically active variants of Erk oncogenically transform cells and disclose unexpected autophosphorylation capability that is independent of TEY phosphorylation. Mol Biol Cell. 2016;27:1026-39 pubmed 出版商
  626. Ulrich F, Carretero Ortega J, Menendez J, Narvaez C, Sun B, Lancaster E, et al. Reck enables cerebrovascular development by promoting canonical Wnt signaling. Development. 2016;143:147-59 pubmed 出版商
  627. Kiermaier E, Moussion C, Veldkamp C, Gerardy Schahn R, de Vries I, Williams L, et al. Polysialylation controls dendritic cell trafficking by regulating chemokine recognition. Science. 2016;351:186-90 pubmed 出版商
  628. Huang X, Huang S, Guo F, Xu F, Cheng P, Ye Y, et al. Dose-dependent inhibitory effects of zoledronic acid on osteoblast viability and function in vitro. Mol Med Rep. 2016;13:613-22 pubmed 出版商
  629. Yamagishi M, Katano H, Hishima T, Shimoyama T, Ota Y, Nakano K, et al. Coordinated loss of microRNA group causes defenseless signaling in malignant lymphoma. Sci Rep. 2015;5:17868 pubmed 出版商
  630. Daniele S, Zappelli E, Martini C. Trazodone regulates neurotrophic/growth factors, mitogen-activated protein kinases and lactate release in human primary astrocytes. J Neuroinflammation. 2015;12:225 pubmed 出版商
  631. Ulbrich F, Kaufmann K, Roesslein M, Wellner F, Auwärter V, Kempf J, et al. Argon Mediates Anti-Apoptotic Signaling and Neuroprotection via Inhibition of Toll-Like Receptor 2 and 4. PLoS ONE. 2015;10:e0143887 pubmed 出版商
  632. Dinh C, Szabo A, Yu Y, Camer D, Wang H, Huang X. Bardoxolone Methyl Prevents Mesenteric Fat Deposition and Inflammation in High-Fat Diet Mice. ScientificWorldJournal. 2015;2015:549352 pubmed 出版商
  633. Giri K, Pabelick C, Mukherjee P, Prakash Y. Hepatoma derived growth factor (HDGF) dynamics in ovarian cancer cells. Apoptosis. 2016;21:329-39 pubmed 出版商
  634. Diersch S, Wirth M, Schneeweis C, Jörs S, Geisler F, Siveke J, et al. Kras(G12D) induces EGFR-MYC cross signaling in murine primary pancreatic ductal epithelial cells. Oncogene. 2016;35:3880-6 pubmed 出版商
  635. Chow C, Ebine K, Knab L, Bentrem D, Kumar K, Munshi H. Cancer Cell Invasion in Three-dimensional Collagen Is Regulated Differentially by Gα13 Protein and Discoidin Domain Receptor 1-Par3 Protein Signaling. J Biol Chem. 2016;291:1605-18 pubmed 出版商
  636. Chen C, Zhu C, Huang J, Zhao X, Deng R, Zhang H, et al. SUMOylation of TARBP2 regulates miRNA/siRNA efficiency. Nat Commun. 2015;6:8899 pubmed 出版商
  637. El Khattouti A, Selimovic D, Hannig M, Taylor E, Abd Elmageed Z, Hassan S, et al. Imiquimod-induced apoptosis of melanoma cells is mediated by ER stress-dependent Noxa induction and enhanced by NF-κB inhibition. J Cell Mol Med. 2016;20:266-86 pubmed 出版商
  638. Momcilovic M, McMickle R, Abt E, Seki A, Simko S, Magyar C, et al. Heightening Energetic Stress Selectively Targets LKB1-Deficient Non-Small Cell Lung Cancers. Cancer Res. 2015;75:4910-22 pubmed 出版商
  639. Chandrani P, Upadhyay P, Iyer P, Tanna M, Shetty M, Raghuram G, et al. Integrated genomics approach to identify biologically relevant alterations in fewer samples. BMC Genomics. 2015;16:936 pubmed 出版商
  640. Askoxylakis V, Ferraro G, Kodack D, Badeaux M, Shankaraiah R, Seano G, et al. Preclinical Efficacy of Ado-trastuzumab Emtansine in the Brain Microenvironment. J Natl Cancer Inst. 2016;108: pubmed 出版商
  641. Ahn H, Kim K, Shin K, Lim K, Kim J, Lee J, et al. Ell3 stabilizes p53 following CDDP treatment via its effects on ubiquitin-dependent and -independent proteasomal degradation pathways in breast cancer cells. Oncotarget. 2015;6:44523-37 pubmed 出版商
  642. Dong Z, Chen J, Ruan Y, Zhou T, Chen Y, Chen Y, et al. CFTR-regulated MAPK/NF-κB signaling in pulmonary inflammation in thermal inhalation injury. Sci Rep. 2015;5:15946 pubmed 出版商
  643. Kurozumi A, Goto Y, Matsushita R, Fukumoto I, Kato M, Nishikawa R, et al. Tumor-suppressive microRNA-223 inhibits cancer cell migration and invasion by targeting ITGA3/ITGB1 signaling in prostate cancer. Cancer Sci. 2016;107:84-94 pubmed 出版商
  644. Quigley H, Pitha I, Welsbie D, Nguyen C, Steinhart M, Nguyen T, et al. Losartan Treatment Protects Retinal Ganglion Cells and Alters Scleral Remodeling in Experimental Glaucoma. PLoS ONE. 2015;10:e0141137 pubmed 出版商
  645. Webber P, Park C, Qui M, Ramalingam S, Khuri F, Fu H, et al. Combination of heat shock protein 90 and focal adhesion kinase inhibitors synergistically inhibits the growth of non-small cell lung cancer cells. Oncoscience. 2015;2:765-776 pubmed
  646. Park Y, Kim S, Kwon T, Kim J, Song I, Shin H, et al. Peroxiredoxin II promotes hepatic tumorigenesis through cooperation with Ras/Forkhead box M1 signaling pathway. Oncogene. 2016;35:3503-13 pubmed 出版商
  647. Ma S, Yang L, Niu T, Cheng C, Zhong L, Zheng M, et al. SKLB-677, an FLT3 and Wnt/β-catenin signaling inhibitor, displays potent activity in models of FLT3-driven AML. Sci Rep. 2015;5:15646 pubmed 出版商
  648. Pasini L, Re A, Tebaldi T, Ricci G, Boi S, Adami V, et al. TrkA is amplified in malignant melanoma patients and induces an anti-proliferative response in cell lines. BMC Cancer. 2015;15:777 pubmed 出版商
  649. Yang C, Lowther K, Lalioti M, Seli E. Embryonic Poly(A)-Binding Protein (EPAB) Is Required for Granulosa Cell EGF Signaling and Cumulus Expansion in Female Mice. Endocrinology. 2016;157:405-16 pubmed 出版商
  650. Ang S, Lee A, Foo F, Ng L, Low C, Khanna S. GABAergic neurons of the medial septum play a nodal role in facilitation of nociception-induced affect. Sci Rep. 2015;5:15419 pubmed 出版商
  651. Lin K, Kao S, Lai C, Chen C, Wu C, Hsu H, et al. Tumor Suppressor Lzap Suppresses Wnt/β-Catenin Signaling to Promote Zebrafish Embryonic Ventral Cell Fates via the Suppression of Inhibitory Phosphorylation of Glycogen Synthase Kinase 3. J Biol Chem. 2015;290:29808-19 pubmed 出版商
  652. Vajravelu B, Hong K, Al Maqtari T, Cao P, Keith M, Wysoczynski M, et al. C-Kit Promotes Growth and Migration of Human Cardiac Progenitor Cells via the PI3K-AKT and MEK-ERK Pathways. PLoS ONE. 2015;10:e0140798 pubmed 出版商
  653. Sugiyama S, Yoshino Y, Kuriyama S, Inoue M, Komine K, Otsuka K, et al. A Curcumin Analog, GO-Y078, Effectively Inhibits Angiogenesis through Actin Disorganization. Anticancer Agents Med Chem. 2016;16:633-47 pubmed
  654. Richardson E, Shukla S, Nagy N, Boom W, Beck R, Zhou L, et al. ERK Signaling Is Essential for Macrophage Development. PLoS ONE. 2015;10:e0140064 pubmed 出版商
  655. Mehner C, Oberg A, Kalli K, Nassar A, Hockla A, Pendlebury D, et al. Serine protease inhibitor Kazal type 1 (SPINK1) drives proliferation and anoikis resistance in a subset of ovarian cancers. Oncotarget. 2015;6:35737-54 pubmed 出版商
  656. Payne S, Maher M, Tran N, Van De Hey D, Foley T, Yueh A, et al. PIK3CA mutations can initiate pancreatic tumorigenesis and are targetable with PI3K inhibitors. Oncogenesis. 2015;4:e169 pubmed 出版商
  657. Fan S, Snell C, Turley H, Li J, McCormick R, Perera S, et al. PAT4 levels control amino-acid sensitivity of rapamycin-resistant mTORC1 from the Golgi and affect clinical outcome in colorectal cancer. Oncogene. 2016;35:3004-15 pubmed 出版商
  658. Patruno A, Pesce M, Grilli A, Speranza L, Franceschelli S, De Lutiis M, et al. mTOR Activation by PI3K/Akt and ERK Signaling in Short ELF-EMF Exposed Human Keratinocytes. PLoS ONE. 2015;10:e0139644 pubmed 出版商
  659. Görtz D, Braun G, Maruta Y, Djudjaj S, van Roeyen C, Martin I, et al. Anti-interleukin-6 therapy through application of a monogenic protein inhibitor via gene delivery. Sci Rep. 2015;5:14685 pubmed 出版商
  660. Cohen M, Johnson W, Pilat J, Kiselar J, DeFrancesco Lisowitz A, Zigmond R, et al. Nerve Growth Factor Regulates Transient Receptor Potential Vanilloid 2 via Extracellular Signal-Regulated Kinase Signaling To Enhance Neurite Outgrowth in Developing Neurons. Mol Cell Biol. 2015;35:4238-52 pubmed 出版商
  661. Beck K, Ehmann N, Andlauer T, Ljaschenko D, Strecker K, Fischer M, et al. Loss of the Coffin-Lowry syndrome-associated gene RSK2 alters ERK activity, synaptic function and axonal transport in Drosophila motoneurons. Dis Model Mech. 2015;8:1389-400 pubmed 出版商
  662. Mazur P, Herner A, Mello S, Wirth M, Hausmann S, Sánchez Rivera F, et al. Combined inhibition of BET family proteins and histone deacetylases as a potential epigenetics-based therapy for pancreatic ductal adenocarcinoma. Nat Med. 2015;21:1163-71 pubmed 出版商
  663. Qiu H, Liu B, Liu W, Liu S. Interleukin-27 enhances TNF-α-mediated activation of human coronary artery endothelial cells. Mol Cell Biochem. 2016;411:1-10 pubmed 出版商
  664. Brina D, Miluzio A, Ricciardi S, Clarke K, Davidsen P, Viero G, et al. eIF6 coordinates insulin sensitivity and lipid metabolism by coupling translation to transcription. Nat Commun. 2015;6:8261 pubmed 出版商
  665. Kaur A, Elzagheid A, Birkman E, Avoranta T, Kytölä V, Korkeila E, et al. Protein phosphatase methylesterase-1 (PME-1) expression predicts a favorable clinical outcome in colorectal cancer. Cancer Med. 2015;4:1798-808 pubmed 出版商
  666. Harmeier A, Obermueller S, Meyer C, Revel F, Buchy D, Chaboz S, et al. Trace amine-associated receptor 1 activation silences GSK3β signaling of TAAR1 and D2R heteromers. Eur Neuropsychopharmacol. 2015;25:2049-61 pubmed 出版商
  667. Wei Q, Chen Z, Wang L, Zhang T, Duan L, Behrens C, et al. LZTFL1 suppresses lung tumorigenesis by maintaining differentiation of lung epithelial cells. Oncogene. 2016;35:2655-63 pubmed 出版商
  668. Plescher M, Teleman A, Demetriades C. TSC2 mediates hyperosmotic stress-induced inactivation of mTORC1. Sci Rep. 2015;5:13828 pubmed 出版商
  669. Shain A, Garrido M, Botton T, Talevich E, Yeh I, Sanborn J, et al. Exome sequencing of desmoplastic melanoma identifies recurrent NFKBIE promoter mutations and diverse activating mutations in the MAPK pathway. Nat Genet. 2015;47:1194-9 pubmed 出版商
  670. Li M, Yang S, Xing B, Ferguson B, Gulchina Y, Li Y, et al. LY395756, an mGluR2 agonist and mGluR3 antagonist, enhances NMDA receptor expression and function in the normal adult rat prefrontal cortex, but fails to improve working memory and reverse MK801-induced working memory impairment. Exp Neurol. 2015;273:190-201 pubmed 出版商
  671. Reuther C, Heinzle V, Spampatti M, Vlotides G, de Toni E, Spöttl G, et al. Cabozantinib and Tivantinib, but Not INC280, Induce Antiproliferative and Antimigratory Effects in Human Neuroendocrine Tumor Cells in vitro: Evidence for 'Off-Target' Effects Not Mediated by c-Met Inhibition. Neuroendocrinology. 2016;103:383-401 pubmed 出版商
  672. Sharma B, Kolhe R, Black S, Keller J, Mivechi N, Satyanarayana A. Inhibitor of differentiation 1 transcription factor promotes metabolic reprogramming in hepatocellular carcinoma cells. FASEB J. 2016;30:262-75 pubmed 出版商
  673. Wong T, Lin S, Leung L. The Flavone Luteolin Suppresses SREBP-2 Expression and Post-Translational Activation in Hepatic Cells. PLoS ONE. 2015;10:e0135637 pubmed 出版商
  674. Korb E, Herre M, Zucker Scharff I, Darnell R, Allis C. BET protein Brd4 activates transcription in neurons and BET inhibitor Jq1 blocks memory in mice. Nat Neurosci. 2015;18:1464-73 pubmed 出版商
  675. Wolter S, Kloth C, Golombek M, Dittmar F, Försterling L, Seifert R. cCMP causes caspase-dependent apoptosis in mouse lymphoma cell lines. Biochem Pharmacol. 2015;98:119-31 pubmed 出版商
  676. Fu Y, Cruz Monserrate Z, Helen Lin H, Chung Y, Ji B, Lin S, et al. Ductal activation of oncogenic KRAS alone induces sarcomatoid phenotype. Sci Rep. 2015;5:13347 pubmed 出版商
  677. Bunaciu R, Jensen H, Macdonald R, Latocha D, Varner J, Yen A. 6-Formylindolo(3,2-b)Carbazole (FICZ) Modulates the Signalsome Responsible for RA-Induced Differentiation of HL-60 Myeloblastic Leukemia Cells. PLoS ONE. 2015;10:e0135668 pubmed 出版商
  678. Barbone D, Follo C, Echeverry N, Gerbaudo V, Klabatsa A, Bueno R, et al. Autophagy Correlates with the Therapeutic Responsiveness of Malignant Pleural Mesothelioma in 3D Models. PLoS ONE. 2015;10:e0134825 pubmed 出版商
  679. Kauko O, Laajala T, Jumppanen M, Hintsanen P, Suni V, Haapaniemi P, et al. Label-free quantitative phosphoproteomics with novel pairwise abundance normalization reveals synergistic RAS and CIP2A signaling. Sci Rep. 2015;5:13099 pubmed 出版商
  680. Dubois F, Leroy C, Simon V, Benistant C, Roche S. YES oncogenic activity is specified by its SH4 domain and regulates RAS/MAPK signaling in colon carcinoma cells. Am J Cancer Res. 2015;5:1972-87 pubmed
  681. Hu X, Tang Z, Li Y, Liu W, Zhang S, Wang B, et al. Deletion of the tyrosine phosphatase Shp2 in Sertoli cells causes infertility in mice. Sci Rep. 2015;5:12982 pubmed 出版商
  682. Morancho B, Martínez Barriocanal Ã, Villanueva J, Arribas J. Role of ADAM17 in the non-cell autonomous effects of oncogene-induced senescence. Breast Cancer Res. 2015;17:106 pubmed 出版商
  683. Zoch A, Mayerl S, Schulz A, Greither T, Frappart L, Rübsam J, et al. Merlin Isoforms 1 and 2 Both Act as Tumour Suppressors and Are Required for Optimal Sperm Maturation. PLoS ONE. 2015;10:e0129151 pubmed 出版商
  684. Sun D, Buttitta L. Protein phosphatase 2A promotes the transition to G0 during terminal differentiation in Drosophila. Development. 2015;142:3033-45 pubmed 出版商
  685. Simard E, Söllradl T, Maltais J, Boucher J, D Orléans Juste P, Grandbois M. Receptor for Advanced Glycation End-Products Signaling Interferes with the Vascular Smooth Muscle Cell Contractile Phenotype and Function. PLoS ONE. 2015;10:e0128881 pubmed 出版商
  686. McBryan J, Fagan A, McCartan D, Bane F, VareÅ¡lija D, Cocchiglia S, et al. Transcriptomic Profiling of Sequential Tumors from Breast Cancer Patients Provides a Global View of Metastatic Expression Changes Following Endocrine Therapy. Clin Cancer Res. 2015;21:5371-9 pubmed 出版商
  687. Hahn C, Scott D, Xu X, Roda M, Payne G, Wells J, et al. The matrikine N-α-PGP couples extracellular matrix fragmentation to endothelial permeability. Sci Adv. 2015;1: pubmed
  688. Wu M, Lee W, Hua K, Kuo M, Lin M. Macrophage Infiltration Induces Gastric Cancer Invasiveness by Activating the β-Catenin Pathway. PLoS ONE. 2015;10:e0134122 pubmed 出版商
  689. He D, Chen H, Muramatsu H, Lasek A. Ethanol activates midkine and anaplastic lymphoma kinase signaling in neuroblastoma cells and in the brain. J Neurochem. 2015;135:508-21 pubmed 出版商
  690. Tang Y, Ye M, Du Y, Qiu X, Lv X, Yang W, et al. EGFR signaling upregulates surface expression of the GluN2B-containing NMDA receptor and contributes to long-term potentiation in the hippocampus. Neuroscience. 2015;304:109-21 pubmed 出版商
  691. Zhu C, Chen C, Huang J, Zhang H, Zhao X, Deng R, et al. SUMOylation at K707 of DGCR8 controls direct function of primary microRNA. Nucleic Acids Res. 2015;43:7945-60 pubmed 出版商
  692. Dahlhoff M, Schäfer M, Muzumdar S, Rose C, Schneider M. ERBB3 is required for tumor promotion in a mouse model of skin carcinogenesis. Mol Oncol. 2015;9:1825-33 pubmed 出版商
  693. Chen I, Hsu P, Hsu W, Chen N, Tseng P. Polyubiquitination of Transforming Growth Factor β-activated Kinase 1 (TAK1) at Lysine 562 Residue Regulates TLR4-mediated JNK and p38 MAPK Activation. Sci Rep. 2015;5:12300 pubmed 出版商
  694. Lee M, Jeong M, Lee H, Han H, Ko A, Hewitt S, et al. PI3K/AKT activation induces PTEN ubiquitination and destabilization accelerating tumourigenesis. Nat Commun. 2015;6:7769 pubmed 出版商
  695. Zhou J, Joshi B, Duan X, Pant A, Qiu Z, Kuick R, et al. EGFR Overexpressed in Colonic Neoplasia Can be Detected on Wide-Field Endoscopic Imaging. Clin Transl Gastroenterol. 2015;6:e101 pubmed 出版商
  696. Logue J, Cartagena Rivera A, Baird M, Davidson M, Chadwick R, Waterman C. Erk regulation of actin capping and bundling by Eps8 promotes cortex tension and leader bleb-based migration. elife. 2015;4:e08314 pubmed 出版商
  697. Pedros C, Gaud G, Bernard I, Kassem S, Chabod M, Lagrange D, et al. An Epistatic Interaction between Themis1 and Vav1 Modulates Regulatory T Cell Function and Inflammatory Bowel Disease Development. J Immunol. 2015;195:1608-16 pubmed 出版商
  698. Gorojod R, Alaimo A, Porte Alcon S, Pomilio C, Saravia F, Kotler M. The autophagic- lysosomal pathway determines the fate of glial cells under manganese- induced oxidative stress conditions. Free Radic Biol Med. 2015;87:237-51 pubmed 出版商
  699. Reis C, Chen P, Srinivasan S, Aguet F, Mettlen M, Schmid S. Crosstalk between Akt/GSK3β signaling and dynamin-1 regulates clathrin-mediated endocytosis. EMBO J. 2015;34:2132-46 pubmed 出版商
  700. McGowan S, McCoy D. Fibroblast growth factor signaling in myofibroblasts differs from lipofibroblasts during alveolar septation in mice. Am J Physiol Lung Cell Mol Physiol. 2015;309:L463-74 pubmed 出版商
  701. Atsuta Y, Takahashi Y. FGF8 coordinates tissue elongation and cell epithelialization during early kidney tubulogenesis. Development. 2015;142:2329-37 pubmed 出版商
  702. Wang Z, Tang B, Tang F, Li Y, Zhang G, Zhong L, et al. Protection of rat intestinal epithelial cells from ischemia/reperfusion injury by (D-Ala2, D-Leu5)-enkephalin through inhibition of the MKK7-JNK signaling pathway. Mol Med Rep. 2015;12:4079-4088 pubmed 出版商
  703. Anand U, Yiangou Y, Sinisi M, Fox M, MacQuillan A, Quick T, et al. Mechanisms underlying clinical efficacy of Angiotensin II type 2 receptor (AT2R) antagonist EMA401 in neuropathic pain: clinical tissue and in vitro studies. Mol Pain. 2015;11:38 pubmed 出版商
  704. Meyer K, Albaugh B, Schoenike B, Roopra A. Type 1 Insulin-Like Growth Factor Receptor/Insulin Receptor Substrate 1 Signaling Confers Pathogenic Activity on Breast Tumor Cells Lacking REST. Mol Cell Biol. 2015;35:2991-3004 pubmed 出版商
  705. Seto D, Kandarian S, Jackman R. A Key Role for Leukemia Inhibitory Factor in C26 Cancer Cachexia. J Biol Chem. 2015;290:19976-86 pubmed 出版商
  706. Szlachcic W, Switonski P, Krzyzosiak W, Figlerowicz M, Figiel M. Huntington disease iPSCs show early molecular changes in intracellular signaling, the expression of oxidative stress proteins and the p53 pathway. Dis Model Mech. 2015;8:1047-57 pubmed 出版商
  707. Wu P, Yen J, Kou M, Wu M. Luteolin and Apigenin Attenuate 4-Hydroxy-2-Nonenal-Mediated Cell Death through Modulation of UPR, Nrf2-ARE and MAPK Pathways in PC12 Cells. PLoS ONE. 2015;10:e0130599 pubmed 出版商
  708. Nimlamool W, Andrews R, Falk M. Connexin43 phosphorylation by PKC and MAPK signals VEGF-mediated gap junction internalization. Mol Biol Cell. 2015;26:2755-68 pubmed 出版商
  709. Zeng X, Wang H, Bai F, Zhou X, Li S, Ren L, et al. Identification of matrine as a promising novel drug for hepatic steatosis and glucose intolerance with HSP72 as an upstream target. Br J Pharmacol. 2015;172:4303-18 pubmed 出版商
  710. Callaway J, Smith S, McKinnon K, de Silva A, Crowe J, Ting J. Spleen Tyrosine Kinase (Syk) Mediates IL-1β Induction by Primary Human Monocytes during Antibody-enhanced Dengue Virus Infection. J Biol Chem. 2015;290:17306-20 pubmed 出版商
  711. Deberge M, Ely K, Wright P, Thorp E, Enelow R. Shedding of TNF receptor 2 by effector CD8⁺ T cells by ADAM17 is important for regulating TNF-α availability during influenza infection. J Leukoc Biol. 2015;98:423-34 pubmed 出版商
  712. Korotkevych N, Labyntsev A, Kolybo D, Komisarenko S. The Soluble Heparin-Binding EGF-Like Growth Factor Stimulates EGF Receptor Trafficking to the Nucleus. PLoS ONE. 2015;10:e0127887 pubmed 出版商
  713. Nagata T, Yasukawa H, Kyogoku S, Oba T, Takahashi J, Nohara S, et al. Cardiac-Specific SOCS3 Deletion Prevents In Vivo Myocardial Ischemia Reperfusion Injury through Sustained Activation of Cardioprotective Signaling Molecules. PLoS ONE. 2015;10:e0127942 pubmed 出版商
  714. Dugina V, Khromova N, Rybko V, Blizniukov O, Shagieva G, Chaponnier C, et al. Tumor promotion by γ and suppression by β non-muscle actin isoforms. Oncotarget. 2015;6:14556-71 pubmed
  715. Zhu D, Wang Z, Zhao J, Calimeri T, Meng J, Hideshima T, et al. The Cyclophilin A-CD147 complex promotes the proliferation and homing of multiple myeloma cells. Nat Med. 2015;21:572-80 pubmed 出版商
  716. Li L, Qi L, Liang Z, Song W, Liu Y, Wang Y, et al. Transforming growth factor-β1 induces EMT by the transactivation of epidermal growth factor signaling through HA/CD44 in lung and breast cancer cells. Int J Mol Med. 2015;36:113-22 pubmed 出版商
  717. Bargut T, Mandarim de Lacerda C, Aguila M. A high-fish-oil diet prevents adiposity and modulates white adipose tissue inflammation pathways in mice. J Nutr Biochem. 2015;26:960-9 pubmed 出版商
  718. Hao W, Yuan X, Yu L, Gao C, Sun X, Wang D, et al. Licochalcone A-induced human gastric cancer BGC-823 cells apoptosis by regulating ROS-mediated MAPKs and PI3K/AKT signaling pathways. Sci Rep. 2015;5:10336 pubmed 出版商
  719. Wong T, Lin S, Leung L. The flavone apigenin blocks nuclear translocation of sterol regulatory element-binding protein-2 in the hepatic cells WRL-68. Br J Nutr. 2015;113:1844-52 pubmed 出版商
  720. Yin Y, Castro A, Hoekstra M, Yan T, Kanakamedala A, Dehner L, et al. Fibroblast Growth Factor 9 Regulation by MicroRNAs Controls Lung Development and Links DICER1 Loss to the Pathogenesis of Pleuropulmonary Blastoma. PLoS Genet. 2015;11:e1005242 pubmed 出版商
  721. Fujikawa Y, Tominaga K, Tanaka F, Tanigawa T, Watanabe T, Fujiwara Y, et al. Enteric glial cells are associated with stress-induced colonic hyper-contraction in maternally separated rats. Neurogastroenterol Motil. 2015;27:1010-23 pubmed 出版商
  722. Heinen A, Beyer F, Tzekova N, Hartung H, Küry P. Fingolimod induces the transition to a nerve regeneration promoting Schwann cell phenotype. Exp Neurol. 2015;271:25-35 pubmed 出版商
  723. Major J, Salih M, Tuana B. Interplay between the E2F pathway and β-adrenergic signaling in the pathological hypertrophic response of myocardium. J Mol Cell Cardiol. 2015;84:179-90 pubmed 出版商
  724. Liu X, Wang J, Li S, Li L, Huang M, Zhang Y, et al. Histone deacetylase 3 expression correlates with vasculogenic mimicry through the phosphoinositide3-kinase / ERK-MMP-laminin5γ2 signaling pathway. Cancer Sci. 2015;106:857-66 pubmed 出版商
  725. Hu J, Li T, Du S, Chen Y, Wang S, Xiong F, et al. The MAPK signaling pathway mediates the GPR91-dependent release of VEGF from RGC-5 cells. Int J Mol Med. 2015;36:130-8 pubmed 出版商
  726. Kimura T, Endo S, Inui M, Saitoh S, Miyake K, Takai T. Endoplasmic Protein Nogo-B (RTN4-B) Interacts with GRAMD4 and Regulates TLR9-Mediated Innate Immune Responses. J Immunol. 2015;194:5426-36 pubmed 出版商
  727. Qiu J, Zhang Y, Li Y, Zhao J, Zhang W, Jiang Q, et al. Trametinib modulates cancer multidrug resistance by targeting ABCB1 transporter. Oncotarget. 2015;6:15494-509 pubmed
  728. Daniele S, Da Pozzo E, Zappelli E, Martini C. Trazodone treatment protects neuronal-like cells from inflammatory insult by inhibiting NF-?B, p38 and JNK. Cell Signal. 2015;27:1609-29 pubmed 出版商
  729. Kim H, Kim I, Dong Y, Lee I, Kim J, Kim J, et al. Melanogenesis-inducing effect of cirsimaritin through increases in microphthalmia-associated transcription factor and tyrosinase expression. Int J Mol Sci. 2015;16:8772-88 pubmed 出版商
  730. Bugaj L, Spelke D, Mesuda C, Varedi M, Kane R, Schaffer D. Regulation of endogenous transmembrane receptors through optogenetic Cry2 clustering. Nat Commun. 2015;6:6898 pubmed 出版商
  731. Najm F, Madhavan M, Zaremba A, Shick E, Karl R, Factor D, et al. Drug-based modulation of endogenous stem cells promotes functional remyelination in vivo. Nature. 2015;522:216-20 pubmed 出版商
  732. Benzina S, Pitaval A, Lemercier C, Lustremant C, Frouin V, Wu N, et al. A kinome-targeted RNAi-based screen links FGF signaling to H2AX phosphorylation in response to radiation. Cell Mol Life Sci. 2015;72:3559-73 pubmed 出版商
  733. Yang L, Zhang S, George S, Teng R, You X, Xu M, et al. Targeting Notch1 and proteasome as an effective strategy to suppress T-cell lymphoproliferative neoplasms. Oncotarget. 2015;6:14953-69 pubmed
  734. Tavares R, Pathak S. Helicobacter pylori protein JHP0290 exhibits proliferative and anti-apoptotic effects in gastric epithelial cells. PLoS ONE. 2015;10:e0124407 pubmed 出版商
  735. Li L, Dong Q, Wang Y, Feng Q, Zhou P, Ou X, et al. Hedgehog signaling is involved in the BMP9-induced osteogenic differentiation of mesenchymal stem cells. Int J Mol Med. 2015;35:1641-50 pubmed 出版商
  736. Zhang D, Zhu L, Li C, Mu J, Fu Y, Zhu Q, et al. Sialyltransferase7A, a Klf4-responsive gene, promotes cardiomyocyte apoptosis during myocardial infarction. Basic Res Cardiol. 2015;110:28 pubmed 出版商
  737. Pan J, Li H, Zhang B, Xiong R, Zhang Y, Kang W, et al. Small peptide inhibitor of JNK3 protects dopaminergic neurons from MPTP induced injury via inhibiting the ASK1-JNK3 signaling pathway. PLoS ONE. 2015;10:e0119204 pubmed 出版商
  738. Witkiewicz A, McMillan E, Balaji U, Baek G, Lin W, Mansour J, et al. Whole-exome sequencing of pancreatic cancer defines genetic diversity and therapeutic targets. Nat Commun. 2015;6:6744 pubmed 出版商
  739. Janes K. An analysis of critical factors for quantitative immunoblotting. Sci Signal. 2015;8:rs2 pubmed 出版商
  740. Chuang W, Su C, Lin P, Lin C, Chen Y. Sann-Joong-Kuey-Jian-Tang induces autophagy in HepG2 cells via regulation of the phosphoinositide-3 kinase/Akt/mammalian target of rapamycin and p38 mitogen-activated protein kinase pathways. Mol Med Rep. 2015;12:1677-84 pubmed 出版商
  741. 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
  742. Moretti M, Budni J, Freitas A, Neis V, Ribeiro C, de Oliveira Balen G, et al. TNF-α-induced depressive-like phenotype and p38(MAPK) activation are abolished by ascorbic acid treatment. Eur Neuropsychopharmacol. 2015;25:902-12 pubmed 出版商
  743. Ko R, Park J, Ha H, Choi Y, Lee S. Glycogen synthase kinase 3β ubiquitination by TRAF6 regulates TLR3-mediated pro-inflammatory cytokine production. Nat Commun. 2015;6:6765 pubmed 出版商
  744. Li X, Tao J, Cigliano A, Sini M, Calderaro J, Azoulay D, et al. Co-activation of PIK3CA and Yap promotes development of hepatocellular and cholangiocellular tumors in mouse and human liver. Oncotarget. 2015;6:10102-15 pubmed
  745. Shin C, Grossmann A, Holmen S, Robinson J. The BRAF kinase domain promotes the development of gliomas in vivo. Genes Cancer. 2015;6:9-18 pubmed
  746. Bol G, Vesuna F, Xie M, Zeng J, Aziz K, Gandhi N, et al. Targeting DDX3 with a small molecule inhibitor for lung cancer therapy. EMBO Mol Med. 2015;7:648-69 pubmed 出版商
  747. Fallahi Sichani M, Moerke N, Niepel M, Zhang T, Gray N, Sorger P. Systematic analysis of BRAF(V600E) melanomas reveals a role for JNK/c-Jun pathway in adaptive resistance to drug-induced apoptosis. Mol Syst Biol. 2015;11:797 pubmed 出版商
  748. Hsieh C, Botta G, Gao S, Li T, Van Allen E, Treacy D, et al. PLZF, a tumor suppressor genetically lost in metastatic castration-resistant prostate cancer, is a mediator of resistance to androgen deprivation therapy. Cancer Res. 2015;75:1944-8 pubmed 出版商
  749. Salvucci O, Ohnuki H, Maric D, Hou X, Li X, Yoon S, et al. EphrinB2 controls vessel pruning through STAT1-JNK3 signalling. Nat Commun. 2015;6:6576 pubmed 出版商
  750. Kann M, Bae E, Lenz M, Li L, Trannguyen B, Schumacher V, et al. WT1 targets Gas1 to maintain nephron progenitor cells by modulating FGF signals. Development. 2015;142:1254-66 pubmed 出版商
  751. Chen Z, Shojaee S, Buchner M, Geng H, Lee J, Klemm L, et al. Signalling thresholds and negative B-cell selection in acute lymphoblastic leukaemia. Nature. 2015;521:357-61 pubmed 出版商
  752. Contreras T, Ricciardi E, Cremonini E, Oteiza P. (-)-Epicatechin in the prevention of tumor necrosis alpha-induced loss of Caco-2 cell barrier integrity. Arch Biochem Biophys. 2015;573:84-91 pubmed 出版商
  753. Kemp M, Lindsey Boltz L, Sancar A. UV Light Potentiates STING (Stimulator of Interferon Genes)-dependent Innate Immune Signaling through Deregulation of ULK1 (Unc51-like Kinase 1). J Biol Chem. 2015;290:12184-94 pubmed 出版商
  754. Roost M, van Iperen L, De Melo Bernardo A, Mummery C, Carlotti F, de Koning E, et al. Lymphangiogenesis and angiogenesis during human fetal pancreas development. Vasc Cell. 2014;6:22 pubmed 出版商
  755. Zhang C, Nygaard M, Haxholm G, Boutillon F, Bernadet M, Hoos S, et al. A Residue Quartet in the Extracellular Domain of the Prolactin Receptor Selectively Controls Mitogen-activated Protein Kinase Signaling. J Biol Chem. 2015;290:11890-904 pubmed 出版商
  756. Wang Y, Han A, Chen E, Singh R, Chichester C, Moore R, et al. The cranberry flavonoids PAC DP-9 and quercetin aglycone induce cytotoxicity and cell cycle arrest and increase cisplatin sensitivity in ovarian cancer cells. Int J Oncol. 2015;46:1924-34 pubmed 出版商
  757. Richardson E, Shukla S, Sweet D, Wearsch P, Tsichlis P, Boom W, et al. Toll-like receptor 2-dependent extracellular signal-regulated kinase signaling in Mycobacterium tuberculosis-infected macrophages drives anti-inflammatory responses and inhibits Th1 polarization of responding T cells. Infect Immun. 2015;83:2242-54 pubmed 出版商
  758. Gomez A, Gomez J, Lopez Torres M, Naudi A, Mota Martorell N, Pamplona R, et al. Cysteine dietary supplementation reverses the decrease in mitochondrial ROS production at complex I induced by methionine restriction. J Bioenerg Biomembr. 2015;47:199-208 pubmed 出版商
  759. Woods S, Waite A, O Dea K, Halford P, Takata M, Wilson M. Kinetic profiling of in vivo lung cellular inflammatory responses to mechanical ventilation. Am J Physiol Lung Cell Mol Physiol. 2015;308:L912-21 pubmed 出版商
  760. Lin Y, Yang Z, Xu A, Dong P, Huang Y, Liu H, et al. PIK3R1 negatively regulates the epithelial-mesenchymal transition and stem-like phenotype of renal cancer cells through the AKT/GSK3β/CTNNB1 signaling pathway. Sci Rep. 2015;5:8997 pubmed 出版商
  761. Pone E, Lam T, Lou Z, Wang R, Chen Y, Liu D, et al. B cell Rab7 mediates induction of activation-induced cytidine deaminase expression and class-switching in T-dependent and T-independent antibody responses. J Immunol. 2015;194:3065-78 pubmed 出版商
  762. Wei Z, Yu D, Bi Y, Cao Y. A disintegrin and metalloprotease 17 promotes microglial cell survival via epidermal growth factor receptor signalling following spinal cord injury. Mol Med Rep. 2015;12:63-70 pubmed 出版商
  763. Cullen P. Evaluating the activity of the filamentous growth mitogen-activated protein kinase pathway in yeast. Cold Spring Harb Protoc. 2015;2015:276-83 pubmed 出版商
  764. Wu H, Hwang Verslues W, Lee W, Huang C, Wei P, Chen C, et al. Targeting IL-17B-IL-17RB signaling with an anti-IL-17RB antibody blocks pancreatic cancer metastasis by silencing multiple chemokines. J Exp Med. 2015;212:333-49 pubmed 出版商
  765. Tanaka T, Iino M. Sec8 regulates cytokeratin8 phosphorylation and cell migration by controlling the ERK and p38 MAPK signalling pathways. Cell Signal. 2015;27:1110-9 pubmed 出版商
  766. Adhikari H, Cullen P. Role of phosphatidylinositol phosphate signaling in the regulation of the filamentous-growth mitogen-activated protein kinase pathway. Eukaryot Cell. 2015;14:427-40 pubmed 出版商
  767. Coorey N, Shen W, Zhu L, Gillies M. Differential Expression of IL-6/gp130 Cytokines, Jak-STAT Signaling and Neuroprotection After Müller Cell Ablation in a Transgenic Mouse Model. Invest Ophthalmol Vis Sci. 2015;56:2151-61 pubmed 出版商
  768. Ito T, Taniguchi H, Fukagai K, Okamuro S, Kobayashi A. Inhibitory mechanism of FAT4 gene expression in response to actin dynamics during Src-induced carcinogenesis. PLoS ONE. 2015;10:e0118336 pubmed 出版商
  769. Huang P, Chen C, Hsu I, Salim S, Kao S, Cheng C, et al. Huntingtin-associated protein 1 interacts with breakpoint cluster region protein to regulate neuronal differentiation. PLoS ONE. 2015;10:e0116372 pubmed 出版商
  770. Jeffery J, Neyt C, Moore W, Paterson S, Bower N, Chenevix Trench G, et al. Cep55 regulates embryonic growth and development by promoting Akt stability in zebrafish. FASEB J. 2015;29:1999-2009 pubmed 出版商
  771. Adhikari H, Vadaie N, Chow J, Caccamise L, Chavel C, Li B, et al. Role of the unfolded protein response in regulating the mucin-dependent filamentous-growth mitogen-activated protein kinase pathway. Mol Cell Biol. 2015;35:1414-32 pubmed 出版商
  772. Ju B, Chen W, Orr B, Spitsbergen J, Jia S, Eden C, et al. Oncogenic KRAS promotes malignant brain tumors in zebrafish. Mol Cancer. 2015;14:18 pubmed 出版商
  773. Lewis M, Vyse S, Shields A, Boeltz S, Gordon P, Spector T, et al. UBE2L3 polymorphism amplifies NF-κB activation and promotes plasma cell development, linking linear ubiquitination to multiple autoimmune diseases. Am J Hum Genet. 2015;96:221-34 pubmed 出版商
  774. Dinh C, Szabo A, Camer D, Yu Y, Wang H, Huang X. Bardoxolone methyl prevents fat deposition and inflammation in the visceral fat of mice fed a high-fat diet. Chem Biol Interact. 2015;229:1-8 pubmed 出版商
  775. Li S, Bhave D, Chow J, Riera T, Schlee S, Rauch S, et al. Quantitative analysis of receptor tyrosine kinase-effector coupling at functionally relevant stimulus levels. J Biol Chem. 2015;290:10018-36 pubmed 出版商
  776. Seaberg B, Henslee G, Wang S, Paez Colasante X, Landreth G, Rimer M. Muscle-derived extracellular signal-regulated kinases 1 and 2 are required for the maintenance of adult myofibers and their neuromuscular junctions. Mol Cell Biol. 2015;35:1238-53 pubmed 出版商
  777. Yoo J, Kim T, Kong S, Lee J, Choi W, Kim K, et al. Role of Mig-6 in hepatic glucose metabolism. J Diabetes. 2016;8:86-97 pubmed 出版商
  778. Zhu G, Liu Y, Wang Y, Bi X, Baudry M. Different patterns of electrical activity lead to long-term potentiation by activating different intracellular pathways. J Neurosci. 2015;35:621-33 pubmed 出版商
  779. Blanchard Z, Paul B, Craft B, ElShamy W. BRCA1-IRIS inactivation overcomes paclitaxel resistance in triple negative breast cancers. Breast Cancer Res. 2015;17:5 pubmed 出版商
  780. Mello C, Ramos L, Gimenes A, Andrade T, Oliani S, Gil C. Immunomodulatory effects of galectin-1 on an IgE-mediated allergic conjunctivitis model. Invest Ophthalmol Vis Sci. 2015;56:693-704 pubmed 出版商
  781. Boj S, Hwang C, Baker L, Chio I, Engle D, Corbo V, et al. Organoid models of human and mouse ductal pancreatic cancer. Cell. 2015;160:324-38 pubmed 出版商
  782. Wurm S, Zhang J, Guinea Viniegra J, García F, Muñoz J, Bakiri L, et al. Terminal epidermal differentiation is regulated by the interaction of Fra-2/AP-1 with Ezh2 and ERK1/2. Genes Dev. 2015;29:144-56 pubmed 出版商
  783. Bharti S, Rani N, Bhatia J, Arya D. 5-HT2B receptor blockade attenuates β-adrenergic receptor-stimulated myocardial remodeling in rats via inhibiting apoptosis: role of MAPKs and HSPs. Apoptosis. 2015;20:455-65 pubmed 出版商
  784. Zou H, Limpert A, Zou J, Dembo A, Lee P, Grant D, et al. Benzodiazepinone derivatives protect against endoplasmic reticulum stress-mediated cell death in human neuronal cell lines. ACS Chem Neurosci. 2015;6:464-75 pubmed 出版商
  785. Passos E, Pereira C, Gonçalves I, Rocha Rodrigues S, Silva N, Guimarães J, et al. Role of physical exercise on hepatic insulin, glucocorticoid and inflammatory signaling pathways in an animal model of non-alcoholic steatohepatitis. Life Sci. 2015;123:51-60 pubmed 出版商
  786. Pino M, Verstraeten S. Tl(I) and Tl(III) alter the expression of EGF-dependent signals and cyclins required for pheochromocytoma (PC12) cell-cycle resumption and progression. J Appl Toxicol. 2015;35:952-69 pubmed 出版商
  787. Inaba J, McConnell E, Davis K. Lunasin sensitivity in non-small cell lung cancer cells is linked to suppression of integrin signaling and changes in histone acetylation. Int J Mol Sci. 2014;15:23705-24 pubmed 出版商
  788. Smith J, Leslie M, Robinson S, Korasick D, Zhang T, Backues S, et al. Loss of Arabidopsis thaliana Dynamin-Related Protein 2B reveals separation of innate immune signaling pathways. PLoS Pathog. 2014;10:e1004578 pubmed 出版商
  789. Boucrot E, Ferreira A, Almeida Souza L, Debard S, Vallis Y, Howard G, et al. Endophilin marks and controls a clathrin-independent endocytic pathway. Nature. 2015;517:460-5 pubmed 出版商
  790. Girotti M, Lopes F, Preece N, Niculescu Duvaz D, Zambon A, Davies L, et al. Paradox-breaking RAF inhibitors that also target SRC are effective in drug-resistant BRAF mutant melanoma. Cancer Cell. 2015;27:85-96 pubmed 出版商
  791. Winkler M, Dib C, Ljubimov A, Saghizadeh M. Targeting miR-146a to treat delayed wound healing in human diabetic organ-cultured corneas. PLoS ONE. 2014;9:e114692 pubmed 出版商
  792. Yoda A, Adelmant G, Tamburini J, Chapuy B, Shindoh N, Yoda Y, et al. Mutations in G protein β subunits promote transformation and kinase inhibitor resistance. Nat Med. 2015;21:71-5 pubmed 出版商
  793. Chuang C, Guh J, Lu C, Chen H, Chuang L. S100B is required for high glucose-induced pro-fibrotic gene expression and hypertrophy in mesangial cells. Int J Mol Med. 2015;35:546-52 pubmed 出版商
  794. Setoguchi R, Matsui Y, Mouri K. mTOR signaling promotes a robust and continuous production of IFN-γ by human memory CD8+ T cells and their proliferation. Eur J Immunol. 2015;45:893-902 pubmed 出版商
  795. Suzuki S, Okada M, Shibuya K, Seino M, Sato A, Takeda H, et al. JNK suppression of chemotherapeutic agents-induced ROS confers chemoresistance on pancreatic cancer stem cells. Oncotarget. 2015;6:458-70 pubmed
  796. Amara S, López K, Banan B, Brown S, Whalen M, Myles E, et al. Synergistic effect of pro-inflammatory TNFα and IL-17 in periostin mediated collagen deposition: potential role in liver fibrosis. Mol Immunol. 2015;64:26-35 pubmed 出版商
  797. Peng H, Kaplan N, Yang W, Getsios S, Lavker R. FIH-1 disrupts an LRRK1/EGFR complex to positively regulate keratinocyte migration. Am J Pathol. 2014;184:3262-71 pubmed 出版商
  798. El Khattouti A, Sheehan N, Monico J, Drummond H, Haikel Y, Brodell R, et al. CD133⁺ melanoma subpopulation acquired resistance to caffeic acid phenethyl ester-induced apoptosis is attributed to the elevated expression of ABCB5: significance for melanoma treatment. Cancer Lett. 2015;357:83-104 pubmed 出版商
  799. Harris R, Apolzan J. Hexosamine biosynthetic pathway activity in leptin resistant sucrose-drinking rats. Physiol Behav. 2015;138:208-18 pubmed 出版商
  800. Castanieto A, Johnston M, Nystul T. EGFR signaling promotes self-renewal through the establishment of cell polarity in Drosophila follicle stem cells. elife. 2014;3: pubmed 出版商
  801. Krawczyk P, Twarog E, Kurowska E, Klopotowska D, Matuszyk J. Establishment of a cellular model to study TrkC-dependent neuritogenesis. In Vitro Cell Dev Biol Anim. 2015;51:241-8 pubmed 出版商
  802. Eifler T, Shao W, Bartholomeeusen K, Fujinaga K, Jäger S, Johnson J, et al. Cyclin-dependent kinase 12 increases 3' end processing of growth factor-induced c-FOS transcripts. Mol Cell Biol. 2015;35:468-78 pubmed 出版商
  803. Pitoniak A, Chavel C, Chow J, Smith J, Camara D, Karunanithi S, et al. Cdc42p-interacting protein Bem4p regulates the filamentous-growth mitogen-activated protein kinase pathway. Mol Cell Biol. 2015;35:417-36 pubmed 出版商
  804. Tao W, Moore R, Smith E, Xu X. Hormonal induction and roles of Disabled-2 in lactation and involution. PLoS ONE. 2014;9:e110737 pubmed 出版商
  805. Adhikari H, Cullen P. Metabolic respiration induces AMPK- and Ire1p-dependent activation of the p38-Type HOG MAPK pathway. PLoS Genet. 2014;10:e1004734 pubmed 出版商
  806. Xu J, Huang Z, Lin L, Fu M, Song Y, Shen Y, et al. miRNA-130b is required for the ERK/FOXM1 pathway activation-mediated protective effects of isosorbide dinitrate against mesenchymal stem cell senescence induced by high glucose. Int J Mol Med. 2015;35:59-71 pubmed 出版商
  807. Hong Y, Kim J, Pectasides E, Fox C, Hong S, Ma Q, et al. Src mutation induces acquired lapatinib resistance in ERBB2-amplified human gastroesophageal adenocarcinoma models. PLoS ONE. 2014;9:e109440 pubmed 出版商
  808. Tan L, Wang J, Tanizaki J, Huang Z, Aref A, Rusan M, et al. Development of covalent inhibitors that can overcome resistance to first-generation FGFR kinase inhibitors. Proc Natl Acad Sci U S A. 2014;111:E4869-77 pubmed 出版商
  809. Bhattachariya A, TurczyÅ„ska K, Grossi M, Nordström I, Buckbinder L, Albinsson S, et al. PYK2 selectively mediates signals for growth versus differentiation in response to stretch of spontaneously active vascular smooth muscle. Physiol Rep. 2014;2: pubmed 出版商
  810. Holland W, Chinn D, Lara P, Gandara D, Mack P. Effects of AKT inhibition on HGF-mediated erlotinib resistance in non-small cell lung cancer cell lines. J Cancer Res Clin Oncol. 2015;141:615-26 pubmed 出版商
  811. Wang Y, Xiao X, Li N, Yang D, Xing Y, Huo R, et al. Oestrogen inhibits BMP4-induced BMP4 expression in cardiomyocytes: a potential mechanism of oestrogen-mediated protection against cardiac hypertrophy. Br J Pharmacol. 2015;172:5586-95 pubmed 出版商
  812. Kocher B, White L, Piwnica Worms D. DAPK3 suppresses acini morphogenesis and is required for mouse development. Mol Cancer Res. 2015;13:358-67 pubmed 出版商
  813. Sun G, Shi L, Li M, Jiang N, Fu L, Guo J. Lefty inhibits glioma growth by suppressing Nodal-activated Smad and ERK1/2 pathways. J Neurol Sci. 2014;347:137-42 pubmed 出版商
  814. Zhang Y, Wang N, Su P, Lu J, Wang Y. Disruption of dopamine D1 receptor phosphorylation at serine 421 attenuates cocaine-induced behaviors in mice. Neurosci Bull. 2014;30:1025-35 pubmed 出版商
  815. Eriksson O, Ramström M, Hörnaeus K, Bergquist J, Mokhtari D, Siegbahn A. The Eph tyrosine kinase receptors EphB2 and EphA2 are novel proteolytic substrates of tissue factor/coagulation factor VIIa. J Biol Chem. 2014;289:32379-91 pubmed 出版商
  816. Provenzano G, Pangrazzi L, Poli A, Pernigo M, Sgadò P, Genovesi S, et al. Hippocampal dysregulation of neurofibromin-dependent pathways is associated with impaired spatial learning in engrailed 2 knock-out mice. J Neurosci. 2014;34:13281-8 pubmed 出版商
  817. Song J, An N, Chatterjee S, Kistner Griffin E, Mahajan S, Mehrotra S, et al. Deletion of Pim kinases elevates the cellular levels of reactive oxygen species and sensitizes to K-Ras-induced cell killing. Oncogene. 2015;34:3728-36 pubmed 出版商
  818. Bertin S, Lozano Ruiz B, Bachiller V, García Martínez I, Herdman S, Zapater P, et al. Dual-specificity phosphatase 6 regulates CD4+ T-cell functions and restrains spontaneous colitis in IL-10-deficient mice. Mucosal Immunol. 2015;8:505-15 pubmed 出版商
  819. Tobar N, Toyos M, Urra C, Méndez N, Arancibia R, Smith P, et al. c-Jun N terminal kinase modulates NOX-4 derived ROS production and myofibroblasts differentiation in human breast stromal cells. BMC Cancer. 2014;14:640 pubmed 出版商
  820. Cox S. Intracellular signaling of CTLs. Methods Mol Biol. 2014;1186:49-63 pubmed 出版商
  821. Ahow M, Min L, Pampillo M, Nash C, Wen J, Soltis K, et al. KISS1R signals independently of Gαq/11 and triggers LH secretion via the β-arrestin pathway in the male mouse. Endocrinology. 2014;155:4433-46 pubmed 出版商
  822. Gu S, Wu W, Liu C, Yang L, Sun C, Ye W, et al. BMPRIA mediated signaling is essential for temporomandibular joint development in mice. PLoS ONE. 2014;9:e101000 pubmed 出版商
  823. Park J, Johnson N, Liu S, Levesque M, Wang Y, Ho H, et al. Differential in vivo tumorigenicity of diverse KRAS mutations in vertebrate pancreas: A comprehensive survey. Oncogene. 2015;34:2801-6 pubmed 出版商
  824. Ji X, Lu H, Zhou Q, Luo K. LARP7 suppresses P-TEFb activity to inhibit breast cancer progression and metastasis. elife. 2014;3:e02907 pubmed 出版商
  825. Ren W, Duan J, Yin J, Liu G, Cao Z, Xiong X, et al. Dietary L-glutamine supplementation modulates microbial community and activates innate immunity in the mouse intestine. Amino Acids. 2014;46:2403-13 pubmed 出版商
  826. Luo L, Wall A, Yeo J, Condon N, Norwood S, Schoenwaelder S, et al. Rab8a interacts directly with PI3K? to modulate TLR4-driven PI3K and mTOR signalling. Nat Commun. 2014;5:4407 pubmed 出版商
  827. Chondrogiannis G, Kastamoulas M, Kanavaros P, Vartholomatos G, Bai M, Baltogiannis D, et al. Cytokine effects on cell viability and death of prostate carcinoma cells. Biomed Res Int. 2014;2014:536049 pubmed 出版商
  828. Reddy V, Kumar C, Raghu G, Reddy G. Expression and induction of small heat shock proteins in rat heart under chronic hyperglycemic conditions. Arch Biochem Biophys. 2014;558:1-9 pubmed 出版商
  829. Kühnisch J, Seto J, Lange C, Stumpp S, Kobus K, Grohmann J, et al. Neurofibromin inactivation impairs osteocyte development in Nf1Prx1 and Nf1Col1 mouse models. Bone. 2014;66:155-62 pubmed 出版商
  830. Tabor V, Bocci M, Alikhani N, Kuiper R, Larsson L. MYC synergizes with activated BRAFV600E in mouse lung tumor development by suppressing senescence. Cancer Res. 2014;74:4222-9 pubmed 出版商
  831. Ramos A, Rodríguez Seoane C, Rosa I, Trossbach S, Ortega Alonso A, Tomppo L, et al. Neuropeptide precursor VGF is genetically associated with social anhedonia and underrepresented in the brain of major mental illness: its downregulation by DISC1. Hum Mol Genet. 2014;23:5859-65 pubmed 出版商
  832. Dai X, North B, Inuzuka H. Negative regulation of DAB2IP by Akt and SCFFbw7 pathways. Oncotarget. 2014;5:3307-15 pubmed
  833. García Hernández V, Flores Maldonado C, Rincon Heredia R, Verdejo Torres O, Bonilla Delgado J, Meneses Morales I, et al. EGF regulates claudin-2 and -4 expression through Src and STAT3 in MDCK cells. J Cell Physiol. 2015;230:105-15 pubmed 出版商
  834. Yang Q, Hao J, Chen M, Li G. Dermatopontin is a novel regulator of the CdCl2-induced decrease in claudin-11 expression. Toxicol In Vitro. 2014;28:1158-64 pubmed 出版商
  835. Wang J, Mikse O, Liao R, Li Y, Tan L, Jänne P, et al. Ligand-associated ERBB2/3 activation confers acquired resistance to FGFR inhibition in FGFR3-dependent cancer cells. Oncogene. 2015;34:2167-77 pubmed 出版商
  836. Yan T, Li L, Sun B, Liu F, Yang P, Chen T, et al. Luteolin inhibits behavioral sensitization by blocking methamphetamine-induced MAPK pathway activation in the caudate putamen in mice. PLoS ONE. 2014;9:e98981 pubmed 出版商
  837. Aguilar H, Urruticoechea A, Halonen P, Kiyotani K, Mushiroda T, Barril X, et al. VAV3 mediates resistance to breast cancer endocrine therapy. Breast Cancer Res. 2014;16:R53 pubmed 出版商
  838. Nomiyama T, Kawanami T, Irie S, Hamaguchi Y, Terawaki Y, Murase K, et al. Exendin-4, a GLP-1 receptor agonist, attenuates prostate cancer growth. Diabetes. 2014;63:3891-905 pubmed 出版商
  839. Relógio A, Thomas P, Medina Pérez P, Reischl S, Bervoets S, Gloc E, et al. Ras-mediated deregulation of the circadian clock in cancer. PLoS Genet. 2014;10:e1004338 pubmed 出版商
  840. Yi X, Li X, Zhou Y, Ren S, Wan W, Feng G, et al. Hepatocyte growth factor regulates the TGF-?1-induced proliferation, differentiation and secretory function of cardiac fibroblasts. Int J Mol Med. 2014;34:381-90 pubmed 出版商
  841. Lee S, Griep A. Loss of Dlg-1 in the mouse lens impairs fibroblast growth factor receptor signaling. PLoS ONE. 2014;9:e97470 pubmed 出版商
  842. Bartley C, O Keefe R, Bordey A. FMRP S499 is phosphorylated independent of mTORC1-S6K1 activity. PLoS ONE. 2014;9:e96956 pubmed 出版商
  843. Ling S, Feng T, Ke Q, Fan N, Li L, Li Z, et al. Metformin inhibits proliferation and enhances chemosensitivity of intrahepatic cholangiocarcinoma cell lines. Oncol Rep. 2014;31:2611-8 pubmed 出版商
  844. Eucker T, Samuelson D, Hunzicker Dunn M, Konkel M. The focal complex of epithelial cells provides a signalling platform for interleukin-8 induction in response to bacterial pathogens. Cell Microbiol. 2014;16:1441-55 pubmed 出版商
  845. Hardman S, Hall D, Cabrera A, Hancock C, Thomson D. The effects of age and muscle contraction on AMPK activity and heterotrimer composition. Exp Gerontol. 2014;55:120-8 pubmed 出版商
  846. Wei X, Zhang F, Wang K, Zhang Q, Rong L. Assembly of the FKBP51-PHLPP2-AKT signaling complex in cerebral ischemia/reperfusion injury in rats. Brain Res. 2014;1566:60-8 pubmed 出版商
  847. Liu B, Cao Y, Huizinga T, Hafler D, Toes R. TLR-mediated STAT3 and ERK activation controls IL-10 secretion by human B cells. Eur J Immunol. 2014;44:2121-9 pubmed 出版商
  848. Ota K, Liu R, Voleti B, Maldonado Avilés J, Duric V, Iwata M, et al. REDD1 is essential for stress-induced synaptic loss and depressive behavior. Nat Med. 2014;20:531-5 pubmed 出版商
  849. El Refaey M, Zhong Q, Hill W, Shi X, Hamrick M, Bailey L, et al. Aromatic amino acid activation of signaling pathways in bone marrow mesenchymal stem cells depends on oxygen tension. PLoS ONE. 2014;9:e91108 pubmed 出版商
  850. Wong P, Yeoh C, Ahmad A, Chelala C, Gillett C, Speirs V, et al. Identification of MAGEA antigens as causal players in the development of tamoxifen-resistant breast cancer. Oncogene. 2014;33:4579-88 pubmed 出版商
  851. Knubel K, Pernu B, Sufit A, Nelson S, Pierce A, Keating A. MerTK inhibition is a novel therapeutic approach for glioblastoma multiforme. Oncotarget. 2014;5:1338-51 pubmed
  852. Kumagai Y, Naoki H, Nakasyo E, Kamioka Y, Kiyokawa E, Matsuda M. Heterogeneity in ERK activity as visualized by in vivo FRET imaging of mammary tumor cells developed in MMTV-Neu mice. Oncogene. 2015;34:1051-7 pubmed 出版商
  853. Gladding C, Fan J, Zhang L, Wang L, Xu J, Li E, et al. Alterations in STriatal-Enriched protein tyrosine Phosphatase expression, activation, and downstream signaling in early and late stages of the YAC128 Huntington's disease mouse model. J Neurochem. 2014;130:145-59 pubmed 出版商
  854. Qian H, Shi J, Fan T, Lv J, Chen S, Song C, et al. Sophocarpine attenuates liver fibrosis by inhibiting the TLR4 signaling pathway in rats. World J Gastroenterol. 2014;20:1822-32 pubmed 出版商
  855. Valente A, Irimpen A, Siebenlist U, Chandrasekar B. OxLDL induces endothelial dysfunction and death via TRAF3IP2: inhibition by HDL3 and AMPK activators. Free Radic Biol Med. 2014;70:117-28 pubmed 出版商
  856. Hu J, Lu J, Lian G, Zhang J, Hecht J, Sheen V. Filamin B regulates chondrocyte proliferation and differentiation through Cdk1 signaling. PLoS ONE. 2014;9:e89352 pubmed 出版商
  857. Foth M, Ahmad I, van Rhijn B, van der Kwast T, Bergman A, King L, et al. Fibroblast growth factor receptor 3 activation plays a causative role in urothelial cancer pathogenesis in cooperation with Pten loss in mice. J Pathol. 2014;233:148-58 pubmed 出版商
  858. Solan J, Lampe P. Specific Cx43 phosphorylation events regulate gap junction turnover in vivo. FEBS Lett. 2014;588:1423-9 pubmed 出版商
  859. Berkenkamp B, Susnik N, Baisantry A, Kuznetsova I, Jacobi C, Sörensen Zender I, et al. In vivo and in vitro analysis of age-associated changes and somatic cellular senescence in renal epithelial cells. PLoS ONE. 2014;9:e88071 pubmed 出版商
  860. Jin Y, Wi H, Choi M, Hong S, Bae Y. Regulation of anti-inflammatory cytokines IL-10 and TGF-? in mouse dendritic cells through treatment with Clonorchis sinensis crude antigen. Exp Mol Med. 2014;46:e74 pubmed 出版商
  861. Gámez M, Calvo M, Selgas M, García M, Erler K, Böhm V, et al. Effect of E-beam treatment on the chemistry and on the antioxidant activity of lycopene from dry tomato peel and tomato powder. J Agric Food Chem. 2014;62:1557-63 pubmed 出版商
  862. Megison M, Gillory L, Stewart J, Nabers H, Mrozcek Musulman E, Beierle E. FAK inhibition abrogates the malignant phenotype in aggressive pediatric renal tumors. Mol Cancer Res. 2014;12:514-26 pubmed 出版商
  863. Naudin C, Sirvent A, Leroy C, Larive R, Simon V, Pannequin J, et al. SLAP displays tumour suppressor functions in colorectal cancer via destabilization of the SRC substrate EPHA2. Nat Commun. 2014;5:3159 pubmed 出版商
  864. Sperrhacke M, Fischer J, Wu Z, Klünder S, Sedlacek R, Schroeder J, et al. SPINK9 stimulates metalloprotease/EGFR-dependent keratinocyte migration via purinergic receptor activation. J Invest Dermatol. 2014;134:1645-1654 pubmed 出版商
  865. Liu L, Wen Q, Gong R, Gilles L, Stankiewicz M, Guo M, et al. PSTPIP2 dysregulation contributes to aberrant terminal differentiation in GATA-1-deficient megakaryocytes by activating LYN. Cell Death Dis. 2014;5:e988 pubmed 出版商
  866. Miura S, Hamada S, Masamune A, Satoh K, Shimosegawa T. CUB-domain containing protein 1 represses the epithelial phenotype of pancreatic cancer cells. Exp Cell Res. 2014;321:209-18 pubmed 出版商
  867. Wang N, Su P, Zhang Y, Lu J, Xing B, Kang K, et al. Protein kinase D1-dependent phosphorylation of dopamine D1 receptor regulates cocaine-induced behavioral responses. Neuropsychopharmacology. 2014;39:1290-301 pubmed 出版商
  868. Chen Y, Thang M, Chan Y, Huang Y, Ma N, Yu A, et al. Global assessment of Antrodia cinnamomea-induced microRNA alterations in hepatocarcinoma cells. PLoS ONE. 2013;8:e82751 pubmed 出版商
  869. Yabuta C, Yano F, Fujii A, Shearer T, Azuma M. Galectin-3 enhances epithelial cell adhesion and wound healing in rat cornea. Ophthalmic Res. 2014;51:96-103 pubmed 出版商
  870. Wang Z, Ren Z, Hu Z, Hu X, Zhang H, Wu H, et al. Angiotensin-II induces phosphorylation of ERK1/2 and promotes aortic adventitial fibroblasts differentiating into myofibroblasts during aortic dissection formation. J Mol Histol. 2014;45:401-12 pubmed 出版商
  871. Bohonowych J, Hance M, Nolan K, DEFEE M, Parsons C, Isaacs J. Extracellular Hsp90 mediates an NF-?B dependent inflammatory stromal program: implications for the prostate tumor microenvironment. Prostate. 2014;74:395-407 pubmed 出版商
  872. Sanchez Roman I, Gomez A, Naudi A, Jove M, Gomez J, Lopez Torres M, et al. Independent and additive effects of atenolol and methionine restriction on lowering rat heart mitochondria oxidative stress. J Bioenerg Biomembr. 2014;46:159-72 pubmed 出版商
  873. Okada M, Sato A, Shibuya K, Watanabe E, Seino S, Suzuki S, et al. JNK contributes to temozolomide resistance of stem-like glioblastoma cells via regulation of MGMT expression. Int J Oncol. 2014;44:591-9 pubmed 出版商
  874. Zhu J, Lin F, Brown D, Clark R. A fibronectin peptide redirects PDGF-BB/PDGFR complexes to macropinocytosis-like internalization and augments PDGF-BB survival signals. J Invest Dermatol. 2014;134:921-929 pubmed 出版商
  875. Zhang Y, Zhang X, Gao L, Liu Y, Jiang D, Chen K, et al. Growth/differentiation factor 1 alleviates pressure overload-induced cardiac hypertrophy and dysfunction. Biochim Biophys Acta. 2014;1842:232-44 pubmed 出版商
  876. Herndon C, Ankenbruck N, Fromm L. The Erk MAP kinase pathway is activated at muscle spindles and is required for induction of the muscle spindle-specific gene Egr3 by neuregulin1. J Neurosci Res. 2014;92:174-84 pubmed 出版商
  877. Wang X, Pesakhov S, Harrison J, Danilenko M, Studzinski G. ERK5 pathway regulates transcription factors important for monocytic differentiation of human myeloid leukemia cells. J Cell Physiol. 2014;229:856-67 pubmed 出版商
  878. Crowther A, Gama V, Bevilacqua A, Chang S, Yuan H, Deshmukh M, et al. Tonic activation of Bax primes neural progenitors for rapid apoptosis through a mechanism preserved in medulloblastoma. J Neurosci. 2013;33:18098-108 pubmed 出版商
  879. Thapa N, Choi S, Hedman A, Tan X, Anderson R. Phosphatidylinositol phosphate 5-kinase I?i2 in association with Src controls anchorage-independent growth of tumor cells. J Biol Chem. 2013;288:34707-18 pubmed 出版商
  880. Rincon Heredia R, Flores Benitez D, Flores Maldonado C, Bonilla Delgado J, García Hernández V, Verdejo Torres O, et al. Ouabain induces endocytosis and degradation of tight junction proteins through ERK1/2-dependent pathways. Exp Cell Res. 2014;320:108-18 pubmed 出版商
  881. Hou J, Xia Y, Jiang R, Chen D, Xu J, Deng L, et al. PTPRO plays a dual role in hepatic ischemia reperfusion injury through feedback activation of NF-?B. J Hepatol. 2014;60:306-12 pubmed 出版商
  882. Bray K, Gillette M, Young J, Loughran E, Hwang M, Sears J, et al. Cdc42 overexpression induces hyperbranching in the developing mammary gland by enhancing cell migration. Breast Cancer Res. 2013;15:R91 pubmed
  883. Trotter J, Lee G, Kazdoba T, Crowell B, Domogauer J, Mahoney H, et al. Dab1 is required for synaptic plasticity and associative learning. J Neurosci. 2013;33:15652-68 pubmed 出版商
  884. Chen Z, Chen J, Gu Y, Hu C, Li J, Lin S, et al. Aberrantly activated AREG-EGFR signaling is required for the growth and survival of CRTC1-MAML2 fusion-positive mucoepidermoid carcinoma cells. Oncogene. 2014;33:3869-77 pubmed 出版商
  885. Cheng X, Chapple S, Patel B, Puszyk W, Sugden D, Yin X, et al. Gestational diabetes mellitus impairs Nrf2-mediated adaptive antioxidant defenses and redox signaling in fetal endothelial cells in utero. Diabetes. 2013;62:4088-97 pubmed 出版商
  886. Philip B, Roland C, Daniluk J, Liu Y, Chatterjee D, Gomez S, et al. A high-fat diet activates oncogenic Kras and COX2 to induce development of pancreatic ductal adenocarcinoma in mice. Gastroenterology. 2013;145:1449-58 pubmed 出版商
  887. O Bryan M, Clark B, McLaughlin E, D Sylva R, O Donnell L, Wilce J, et al. RBM5 is a male germ cell splicing factor and is required for spermatid differentiation and male fertility. PLoS Genet. 2013;9:e1003628 pubmed 出版商
  888. Yuan F, Xu Z, Yang M, Wei Q, Zhang Y, Yu J, et al. Overexpressed DNA polymerase iota regulated by JNK/c-Jun contributes to hypermutagenesis in bladder cancer. PLoS ONE. 2013;8:e69317 pubmed 出版商
  889. Tsai C, Yang C, Wang J, Tsai Y, Tseng L, King K, et al. Timosaponin AIII Suppresses Hepatocyte Growth Factor-Induced Invasive Activity through Sustained ERK Activation in Breast Cancer MDA-MB-231 Cells. Evid Based Complement Alternat Med. 2013;2013:421051 pubmed 出版商
  890. Yin Y, Betsuyaku T, Garbow J, Miao J, Govindan R, Ornitz D. Rapid induction of lung adenocarcinoma by fibroblast growth factor 9 signaling through FGF receptor 3. Cancer Res. 2013;73:5730-41 pubmed 出版商
  891. Palavicini J, Lloyd B, Hayes C, Bianchi E, Kang D, Dawson Scully K, et al. RanBP9 Plays a Critical Role in Neonatal Brain Development in Mice. PLoS ONE. 2013;8:e66908 pubmed 出版商
  892. McGivern J, Patitucci T, Nord J, Barabas M, Stucky C, Ebert A. Spinal muscular atrophy astrocytes exhibit abnormal calcium regulation and reduced growth factor production. Glia. 2013;61:1418-1428 pubmed 出版商
  893. Garcia Murillas I, Sharpe R, Pearson A, Campbell J, Natrajan R, Ashworth A, et al. An siRNA screen identifies the GNAS locus as a driver in 20q amplified breast cancer. Oncogene. 2014;33:2478-86 pubmed 出版商
  894. Griffeth R, Carretero J, Burks D. Insulin receptor substrate 2 is required for testicular development. PLoS ONE. 2013;8:e62103 pubmed 出版商
  895. Gillette M, Bray K, Blumenthaler A, Vargo Gogola T. P190B RhoGAP overexpression in the developing mammary epithelium induces TGF?-dependent fibroblast activation. PLoS ONE. 2013;8:e65105 pubmed 出版商
  896. De Sousa Coelho A, Relat J, Hondares E, Pérez Martí A, Ribas F, Villarroya F, et al. FGF21 mediates the lipid metabolism response to amino acid starvation. J Lipid Res. 2013;54:1786-97 pubmed 出版商
  897. Lessard S, Rivas D, Alves Wagner A, Hirshman M, Gallagher I, Constantin Teodosiu D, et al. Resistance to aerobic exercise training causes metabolic dysfunction and reveals novel exercise-regulated signaling networks. Diabetes. 2013;62:2717-27 pubmed 出版商
  898. Yu M, Trobridge P, Wang Y, Kanngurn S, Morris S, Knoblaugh S, et al. Inactivation of TGF-? signaling and loss of PTEN cooperate to induce colon cancer in vivo. Oncogene. 2014;33:1538-47 pubmed 出版商
  899. Tokami H, Ago T, Sugimori H, Kuroda J, Awano H, Suzuki K, et al. RANTES has a potential to play a neuroprotective role in an autocrine/paracrine manner after ischemic stroke. Brain Res. 2013;1517:122-32 pubmed 出版商
  900. Gupta S, Hillman B, Prakash A, Ugale R, Stairs D, Dravid S. Effect of D-cycloserine in conjunction with fear extinction training on extracellular signal-regulated kinase activation in the medial prefrontal cortex and amygdala in rat. Eur J Neurosci. 2013;37:1811-22 pubmed 出版商
  901. Sarantos M, Papanikolaou T, Ellerby L, Hughes R. Pizotifen Activates ERK and Provides Neuroprotection in vitro and in vivo in Models of Huntington's Disease. J Huntingtons Dis. 2012;1:195-210 pubmed 出版商
  902. Dai J, Shen D, Bian Z, Zhou H, Gan H, Zong J, et al. IKKi deficiency promotes pressure overload-induced cardiac hypertrophy and fibrosis. PLoS ONE. 2013;8:e53412 pubmed 出版商
  903. Nakamura K, Aizawa K, Nakabayashi K, Kato N, Yamauchi J, Hata K, et al. DNA methyltransferase inhibitor zebularine inhibits human hepatic carcinoma cells proliferation and induces apoptosis. PLoS ONE. 2013;8:e54036 pubmed 出版商
  904. Fong G, Backman L, Andersson G, Scott A, Danielson P. Human tenocytes are stimulated to proliferate by acetylcholine through an EGFR signalling pathway. Cell Tissue Res. 2013;351:465-75 pubmed 出版商
  905. Gawecka J, Young Robbins S, Sulzmaier F, Caliva M, Heikkila M, Matter M, et al. RSK2 protein suppresses integrin activation and fibronectin matrix assembly and promotes cell migration. J Biol Chem. 2012;287:43424-37 pubmed 出版商
  906. Xu X, Wang Q, Long Y, Zhang R, Wei X, Xing M, et al. Stress-mediated p38 activation promotes somatic cell reprogramming. Cell Res. 2013;23:131-41 pubmed 出版商
  907. Chatain N, Ziegler P, Fahrenkamp D, Jost E, Moriggl R, Schmitz Van de Leur H, et al. Src family kinases mediate cytoplasmic retention of activated STAT5 in BCR-ABL-positive cells. Oncogene. 2013;32:3587-97 pubmed 出版商
  908. Jarosz M, Robbez Masson L, Chioni A, Cross B, Rosewell I, Grose R. Fibroblast growth factor 22 is not essential for skin development and repair but plays a role in tumorigenesis. PLoS ONE. 2012;7:e39436 pubmed 出版商
  909. Heimovics S, Prior N, Maddison C, Soma K. Rapid and widespread effects of 17?-estradiol on intracellular signaling in the male songbird brain: a seasonal comparison. Endocrinology. 2012;153:1364-76 pubmed 出版商