胚胎干细胞
细胞生物学
胰岛素受体
受体
胰岛素样生长因子1受体
信号转导
干细胞
生物
癌症研究
生长因子受体
生长因子
内分泌学
胰岛素
遗传学
胰岛素抵抗
基因
作者
Linlin Wang,Thomas C. Schulz,Eric S. Sherrer,Derek S. Dauphin,Soojung Shin,Angelique M. Nelson,Carol B. Ware,Mei Zhan,Chao-Zhong Song,Xiaoji Chen,Sandii Constable,Amanda B. McLean,Maria J. Galeano,Elizabeth W. Uhl,Kevin A. D’Amour,Jonathan D. Chesnut,Mahendra S. Rao,C. Anthony Blau,Allan J. Robins
出处
期刊:Blood
[American Society of Hematology]
日期:2007-12-01
卷期号:110 (12): 4111-4119
被引量:308
标识
DOI:10.1182/blood-2007-03-082586
摘要
Despite progress in developing defined conditions for human embryonic stem cell (hESC) cultures, little is known about the cell-surface receptors that are activated under conditions supportive of hESC self-renewal. A simultaneous interrogation of 42 receptor tyrosine kinases (RTKs) in hESCs following stimulation with mouse embryonic fibroblast (MEF) conditioned medium (CM) revealed rapid and prominent tyrosine phosphorylation of insulin receptor (IR) and insulin-like growth factor-1 receptor (IGF1R); less prominent tyrosine phosphorylation of epidermal growth factor receptor (EGFR) family members, including ERBB2 and ERBB3; and trace phosphorylation of fibroblast growth factor receptors. Intense IGF1R and IR phosphorylation occurred in the absence of MEF conditioning (NCM) and was attributable to high concentrations of insulin in the proprietary KnockOut Serum Replacer (KSR). Inhibition of IGF1R using a blocking antibody or lentivirus-delivered shRNA reduced hESC self-renewal and promoted differentiation, while disruption of ERBB2 signaling with the selective inhibitor AG825 severely inhibited hESC proliferation and promoted apoptosis. A simple defined medium containing an IGF1 analog, heregulin-1beta (a ligand for ERBB2/ERBB3), fibroblast growth factor-2 (FGF2), and activin A supported long-term growth of multiple hESC lines. These studies identify previously unappreciated RTKs that support hESC proliferation and self-renewal, and provide a rationally designed medium for the growth and maintenance of pluripotent hESCs.
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