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Updated: Jul 12, 2026

A Simple Method to Identify Kinases That Regulate Embryonic Stem Cell Pluripotency by High-throughput Inhibitor Screening
Published on: May 12, 2017
ERK1/2 function as a central hub safeguarding primed human embryonic stem cell identity via multifaceted regulatory
Yifan Zhou1, Hanzhi Zhao1, Min Shao1
1CAS Key Laboratory of Tissue Microenvironment and Tumor, Shanghai Institute of Nutrition and Health, Chinese Academy of Sciences, Shanghai 200031, China.
None:
ERK1/2 play crucial roles in diverse cellular processes, yet their functions and underlying mechanisms in human embryonic stem cells (hESCs) remain incompletely defined. Here, we generate hESC lines with graded ERK1/2 activities and demonstrate that moderate ERK1/2 activation, with intact kinase activity and nuclear localization capacity, is optimal for sustaining the primed pluripotency state. Specifically, ERK1/2 hyperactivation induces mesendoderm differentiation, whereas their depletion drives trophoblast-like differentiation. Mechanistically, ERK1/2 govern pluripotency primarily through directly controlling key transcription factors (e.g., MYC, ZIC2, and FOS) and crosstalking with Hippo and BMP signaling pathways. Additionally, ERK1/2 preserve the homeostasis of the MYC-Ac-CoA-H3K27ac axis and constrain the CDK1-EZH2-H3K27me3 axis, thereby activating pluripotency genes and repressing trophoblast lineage genes. Collectively, this study systematically deciphers direct and indirect regulatory functions of ERK1/2 in hESCs, revealing a holistic regulatory network, in which ERK1/2 act as a central hub, to govern pluripotency of primed hESCs.
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