Knockdown of CDK2AP1 in human embryonic stem cells reduces the threshold of differentiation

Khaled N Alsayegh1,2, Steven D Sheridan3, Shilpa Iyer4

  • 1Department of Human and Molecular Genetics, School of Medicine, Virginia Commonwealth University, Richmond, VA, United States of America.

Plos One
|May 8, 2018
PubMed

Insights

Cyclin Dependent Kinase-2 Associated Protein 1 (CDK2AP1) knockdown in human stem cells enhances differentiation by increasing p53 levels. This finding is crucial for understanding stem cell fate and potential therapeutic applications.

Area of Science:

  • Stem cell biology
  • Epigenetics
  • Cell cycle regulation

Background:

  • Cyclin Dependent Kinase-2 Associated Protein 1 (CDK2AP1) has been implicated in stem cell self-renewal and differentiation.
  • Previous studies in mouse models suggest CDK2AP1 is essential for epigenetic silencing of Oct4 during differentiation.

Purpose of the Study:

  • To investigate the role of CDK2AP1 in human embryonic stem cells (hESCs).
  • To determine the effect of CDK2AP1 knockdown on pluripotency gene expression, differentiation, and cell cycle progression in hESCs.

Main Methods:

  • Human embryonic stem cells (hESCs) were treated with shRNA to reduce CDK2AP1 expression.
  • Quantitative analysis of pluripotency genes (OCT4, NANOG) and differentiation markers.
  • Cell cycle analysis using flow cytometry.
  • Western blot analysis for p53 protein levels.
  • Simultaneous knockdown of CDK2AP1 and p53.

Main Results:

  • CDK2AP1 knockdown significantly reduced OCT4 and NANOG expression in hESCs.
  • Knockdown led to increased embryoid body formation and enhanced differentiation across all three germ layers.
  • CDK2AP1 knockdown resulted in reduced proliferation, decreased S phase, and increased G2/M phase cells.
  • Elevated p53 protein levels were observed in CDK2AP1-knockdown hESCs.
  • Simultaneous downregulation of p53 and CDK2AP1 prevented the observed effects on OCT4/NANOG and cell cycle.

Conclusions:

  • CDK2AP1 plays a critical role in maintaining the self-renewal of hESCs.
  • CDK2AP1 knockdown promotes differentiation by upregulating p53, shifting the balance from self-renewal to differentiation.
  • These findings highlight CDK2AP1 as a potential target for controlling hESC fate.

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