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Adenovirus E1A inhibits cardiac myocyte-specific gene expression through its amino terminus

N H Bishopric1, G Q Zeng, B Sato

  • 1Molecular Cardiology Laboratory, SRI International, Menlo Park, California 94125, USA.

Insights

Adenovirus E1A oncoproteins repress muscle gene expression via distinct mechanisms. E1A inhibits cardiac-specific promoters using amino-terminal residues, while general promoter repression involves pRb/p107 binding sites.

Area of Science:

  • Molecular Biology
  • Gene Regulation
  • Cardiovascular Research

Background:

  • Adenovirus E1A oncoproteins are known to inhibit muscle-specific gene expression and myogenic differentiation.
  • This inhibition occurs through the suppression of transcriptional activation by basic helix-loop-helix proteins.

Purpose of the Study:

  • To identify cardiac-specific gene regulatory proteins by analyzing functional regions of E1A proteins.
  • To understand the mechanisms by which E1A proteins repress muscle gene expression in cardiac cells.

Main Methods:

  • Analysis of E1A protein functional regions responsible for muscle gene repression in cardiac cells.
  • Utilized myocyte-specific promoters (alpha-actins, alpha-myosin heavy chain) and a ubiquitously expressed promoter (beta-actin).
  • Investigated E1A binding sites, interaction with pRb, p107, and p300/CBP.

Main Results:

  • E1A potently inhibited myocyte-specific promoters (>90%) and partially repressed the beta-actin promoter (~30%).
  • Distinct E1A binding sites mediated repression of muscle-specific and ubiquitous actin promoters.
  • Cardiac-specific promoter repression required E1A amino-terminal residues 2-36, while beta-actin repression involved pRb/p107 binding sites and E1A residues 15-35.

Conclusions:

  • Cardiac-specific and general promoter inhibition by E1A occur via distinct molecular mechanisms.
  • Cardiac-specific gene expression is modulated by cellular factors interacting with the E1A p300/CBP-binding domain.

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