The cell cycle factor E2F-1 activates Bnip3 and the intrinsic death pathway in ventricular myocytes

Natalia Yurkova1, James Shaw, Karen Blackie

  • 1Institute of Cardiovascular Sciences, St. Boniface General Hospital Research Centre, 351 Taché Ave, Winnipeg, Manitoba, Canada R2H 2A6.

Circulation Research
|December 22, 2007
PubMed

Insights

The cell cycle factor E2F-1 induces ventricular myocyte death by activating the intrinsic mitochondrial pathway. This process is dependent on the hypoxia-inducible death factor Bnip3, a direct transcriptional target of E2F-1.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Cardiovascular Research

Background:

  • The cell cycle factor E2F-1 regulates apoptosis, but its role in ventricular myocyte death is unclear.
  • Previous studies showed Rb-E2F-1 complex disruption induces apoptosis in ventricular myocytes, but the mechanism remained unknown.

Purpose of the Study:

  • To elucidate the mechanism by which E2F-1 induces apoptosis in ventricular myocytes.
  • To identify the specific molecular targets and pathways involved in E2F-1-mediated cell death.

Main Methods:

  • Quantitative real-time PCR to measure Bnip3 gene transcription.
  • Chromatin immunoprecipitation to assess E2F-1 binding to the Bnip3 promoter.
  • Cell viability assays (Hoechst 33258 dye, vital staining) and DNA fragmentation analysis.

Main Results:

  • E2F-1 expression increased DNA fragmentation and cell death by 4.9-fold.
  • Bnip3 gene transcription increased 6.2-fold in cells expressing wild-type E2F-1, but not a DNA-binding mutant.
  • E2F-1 induced mitochondrial perturbations, suggesting permeability transition pore opening.

Conclusions:

  • E2F-1 directly activates the intrinsic mitochondrial death pathway in ventricular myocytes.
  • Bnip3 is a direct transcriptional target of E2F-1 and is essential for E2F-1-induced cell death.
  • This study provides the first evidence linking E2F-1 activation of the mitochondrial death pathway to Bnip3 transcriptional activation.

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