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Updated: Jul 1, 2025

Co-immunoprecipitation Assay Using Endogenous Nuclear Proteins from Cells Cultured Under Hypoxic Conditions
Published on: August 2, 2018
Hypoxia-induced stabilization of HIF2A promotes cardiomyocyte proliferation by attenuating DNA damage
Shah R Ali1, Ngoc Uyen Nhi Nguyen2, Ivan Menendez-Montes2
1Department of Medicine, Division of Cardiology, Columbia University Irving Medical Center, New York, NY 10032, USA.
Insights
Hypoxia-inducible factor 2 (HIF2A) drives heart muscle cell regeneration by reducing DNA damage. This discovery offers a new therapeutic strategy for cardiac repair and combating age-related heart conditions.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Regenerative Medicine
Background:
- Chronic hypoxia promotes cardiomyocyte proliferation and cardiac function in mice by reducing oxidative DNA damage.
- The upstream transcriptional mechanisms linking hypoxia to DNA damage remain unclear.
Purpose of the Study:
- To investigate if hypoxia signaling via hypoxia-inducible factor 1 (HIF1A) or 2 (HIF2A) mediates hypoxia-induced cardiomyocyte proliferation.
- To explore the role of HIF2A in cardiac regeneration and repair.
Main Methods:
- Utilized cardiomyocyte-specific HIF1A and HIF2A gene deletion mouse models under chronic hypoxia.
- Characterized a cardiomyocyte-specific HIF2A overexpression model in normoxia during aging and injury.
- Performed RNA-sequencing on cardiac tissue and verified candidates at the protein level.
Main Results:
- HIF2A, not HIF1A, mediates hypoxia-induced cardiomyocyte proliferation.
- Ectopic HIF2A expression in cardiomyocytes demonstrated its cell-autonomous role in proliferation.
- HIF2A overexpression led to cardiac regeneration and improved systolic function post-myocardial infarction.
- RNA-sequencing indicated that ectopic HIF2A attenuated DNA damage pathways.
Conclusions:
- Provides mechanistic insights into a novel approach for cardiomyocyte renewal and mitigating cardiac injury.
- Suggests HIF2A-based therapies could address age-related DNA damage accumulation in cardiomyocytes for regenerative purposes.
Introduction:
Gradual exposure to a chronic hypoxic environment leads to cardiomyocyte proliferation and improved cardiac function in mouse models through a reduction in oxidative DNA damage. However, the upstream transcriptional events that link chronic hypoxia to DNA damage have remained obscure.
Aim:
We sought to determine whether hypoxia signaling mediated by the hypoxia-inducible factor 1 or 2 (HIF1A or HIF2A) underlies the proliferation phenotype that is induced by chronic hypoxia.
Methods And Results:
We used genetic loss-of-function models using cardiomyocyte-specific HIF1A and HIF2A gene deletions in chronic hypoxia. We additionally characterized a cardiomyocyte-specific HIF2A overexpression mouse model in normoxia during aging and upon injury. We performed transcriptional profiling with RNA-sequencing on cardiac tissue, from which we verified candidates at the protein level. We find that HIF2A - rather than HIF1A - mediates hypoxia-induced cardiomyocyte proliferation. Ectopic, oxygen-insensitive HIF2A expression in cardiomyocytes reveals the cell-autonomous role of HIF2A in cardiomyocyte proliferation. HIF2A overexpression in cardiomyocytes elicits cardiac regeneration and improvement in systolic function after myocardial infarction in adult mice. RNA-sequencing reveals that ectopic HIF2A expression attenuates DNA damage pathways, which was confirmed with immunoblot and immunofluorescence.
Conclusion:
Our study provides mechanistic insights about a new approach to induce cardiomyocyte renewal and mitigate cardiac injury in the adult mammalian heart. In light of evidence that DNA damage accrues in cardiomyocytes with aging, these findings may help to usher in a new therapeutic approach to overcome such age-related changes and achieve regeneration.
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