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Induction of DNA synthesis and apoptosis in cardiac myocytes by E1A oncoprotein

Y Liu1, R N Kitsis

  • 1Department of Medicine (Cardiology), Albert Einstein College of Medicine, Bronx, NY 10461, USA.

Insights

Cardiac myocytes normally stop dividing. Viral E1A protein can force them to synthesize DNA, but this leads to cell death, highlighting p300

Area of Science:

  • Cardiovascular Biology
  • Cell Cycle Regulation
  • Molecular Virology

Background:

  • Cardiac myocytes terminally differentiate and exit the cell cycle during late gestation.
  • The mechanisms preventing cell division in mature cardiac myocytes are largely unknown.
  • Understanding this barrier is crucial for cardiac regeneration research.

Purpose of the Study:

  • To investigate the molecular mechanisms underlying the G1/S phase cell cycle arrest in cardiac myocytes.
  • To explore the role of Adenovirus E1A protein in reactivating DNA synthesis in these cells.

Main Methods:

  • Primary cultures of embryonic day 20 rat cardiac myocytes were used.
  • Adenoviruses expressing wild-type and mutant E1A proteins were employed to transduce myocytes.
  • DNA synthesis and apoptosis were measured in response to E1A expression.

Main Results:

  • Wild-type E1A expression induced DNA synthesis in up to 94% of transduced cardiac myocytes.
  • E1A-induced DNA synthesis triggered apoptosis, suggesting a link between cell division and cell death.
  • Mutations affecting p300 binding, but not Rb pocket protein binding, significantly reduced E1A's ability to stimulate DNA synthesis.

Conclusions:

  • The barrier to G1/S progression in cardiac myocytes involves molecular players similar to those in actively cycling cells.
  • The cellular protein p300 plays a critical role in mediating E1A-induced DNA synthesis in cardiac myocytes.
  • Targeting p300 interactions may offer insights into controlling cardiac myocyte cell cycle re-entry.

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