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Visualization of Cell Cycle Variations and Determination of Nucleation in Postnatal Cardiomyocytes
Published on: February 24, 2017
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.
Abstract:
The cell cycle factor E2F-1 is known to regulate a variety of cellular processes including apoptosis. Previously we showed that disruption of Rb-E2F-1 complexes provoked apoptosis of postmitotic adult and neonatal ventricular myocytes; however, the underlying mechanism was undetermined. In this report, we show that E2F-1 provokes cell death of ventricular myocytes through a mechanism that directly impinges on the intrinsic death pathway. Furthermore, we show mechanistically that the hypoxia-inducible death factor Bnip3 is a direct transcriptional target of E2F-1 that is necessary and sufficient for E2F-1-induced cell death. Expression of E2F-1 resulted in a 4.9-fold increase (P<0.001) in nucleosomal DNA fragmentation and cell death by Hoechst 33258 dye and vital staining. E2F-1 provoked mitochondrial perturbations that were consistent with permeability transition pore opening. As determined by quantitative real-time PCR analysis, a 6.2-fold increase (P<0.001) in endogenous Bnip3 gene transcription was observed in cells expressing wild-type E2F-1 but not in cells expressing a mutation of E2F-1 defective for DNA binding. Rb, the principle regulator of cellular E2F-1 activity, was proteolytically cleaved and inactivated in ventricular myocytes during hypoxia. Consistent with the proteolytic cleavage of Rb, chromatin immunoprecipitation analysis revealed increased binding of E2F-1 to the Bnip3 promoter during hypoxia, a finding concordant with the induction of Bnip3 gene transcription. The Bnip3 homolog Nix/Bnip3L was unaffected in ventricular myocytes by either E2F-1 or hypoxia. Genetic knockdown of E2F-1 or expression of a caspase-resistant form of Rb suppressed basal and hypoxia-inducible Bnip3 gene transcription. Loss-of-function mutations of Bnip3 defective for mitochondrial membrane insertion or small interference RNA directed against Bnip3 suppressed cell death signals elicited by E2F-1. To our knowledge, the data provide the first direct evidence that activation of the intrinsic mitochondrial death pathway by E2F-1 is mutually dependent on and obligatorily linked to the transcriptional activation of Bnip3.
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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