Tumor Suppressors RB1 and CDKN2a Cooperatively Regulate Cell-Cycle Progression and Differentiation During

Konstantinos E Hatzistergos1,2, Adam R Williams1,3,4, Derek Dykxhoorn5,6

  • 1From the Interdisciplinary Stem Cell Institute (K.E.H., A.R.W., M.A.B., W.Y., J.M.H.), University of Miami, Miller School of Medicine, FL.

Circulation Research
|February 13, 2019
PubMed
Abstract

Insights

Tumor suppressor genes RB1 and CDKN2a regulate human heart cell development. Dual inactivation of these genes promotes cardiomyocyte cell division and aids recovery after heart attack in animal models.

Area of Science:

  • Cardiovascular Biology
  • Stem Cell Biology
  • Molecular Biology

Background:

  • Cardiomyogenesis, the formation of heart muscle cells, is rare in adult mammals and its mechanisms are debated.
  • The roles of tumor suppressor genes RB1 (retinoblastoma) and CDKN2a (cyclin-dependent kinase inhibitor 2a) in human heart cell development are not well understood.
  • These genes are critical regulators of the cell cycle.

Purpose of the Study:

  • To investigate the cooperative roles of RB1 and CDKN2a in human cardiomyogenesis.
  • To determine if inactivating RB1 and CDKN2a promotes cell-cycle reentry in cardiomyocytes.
  • To explore the therapeutic potential of targeting these genes in cardiac repair.

Main Methods:

  • Directed differentiation of human pluripotent stem cells (hPSCs) into cardiomyocytes.
  • Analysis of RB1 and CDKN2a expression and activity during differentiation.
  • Gene depletion studies using RB1 and CDKN2a.
  • Investigation in a porcine model of myocardial infarction (MI) with cell therapy.

Main Results:

  • RB1 and CDKN2a are upregulated during human cardiac precursor specification and remain elevated until terminal differentiation.
  • RB1 is inactivated in both cardiac precursors and mature cardiomyocytes.
  • Transient RB1 depletion enhances cardiomyogenesis at the precursor stage by upregulating GATA4 via CDKN2a.
  • Simultaneous transient silencing of RB1 and CDKN2a induces cytokinesis in mature cardiomyocytes.
  • In vivo, dual RB1 and CDKN2a inactivation in adult GATA4+ cells correlates with scar reduction and cardiomyocyte mitosis post-MI in a porcine model.

Conclusions:

  • RB1 and CDKN2a play coordinated roles in regulating cell-cycle progression and differentiation during human cardiomyogenesis.
  • Transient dual inactivation of RB1 and CDKN2a in endogenous cells contributes to the efficacy of cell-based therapy for heart repair post-MI.
  • These findings have potential clinical implications for treating heart disease.

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