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Updated: Jul 6, 2026

Simultaneous Assessment of Cardiomyocyte DNA Synthesis and Ploidy: A Method to Assist Quantification of Cardiomyocyte Regeneration and Turnover
Published on: May 23, 2016
Cardiomyocyte death and renewal in the normal and diseased heart
Louis Maximilian Buja1, Deborah Vela
1Department of Pathology and Laboratory Medicine, University of Texas Medical School at Houston, University of Texas Health Science Center, Houston, TX 77030, USA. l.maximilian.buja@uth.tmc.edu
Insights
The adult mammalian heart has limited cardiomyocyte renewal, with cell death often exceeding new cell generation during stress, leading to heart failure. Research focuses on cell therapies to reduce cardiomyocyte death and promote heart repair.
Area of Science:
- Cardiovascular Biology
- Regenerative Medicine
- Cellular Biology
Background:
- Post-natal mammalian cardiomyocytes cease proliferation, entering cell cycle arrest.
- Myocardial response to stress involves cardiomyocyte injury, hypertrophy, and remodeling.
- Acute ischemia causes cardiomyocyte death via oncosis and apoptosis.
Purpose of the Study:
- To review the processes of cardiomyocyte turnover, renewal, and loss in the adult heart.
- To discuss the implications for myocardial remodeling and heart failure.
- To highlight current research directions in cell-based therapies for heart repair.
Main Methods:
- Review of existing scientific literature on cardiomyocyte biology and heart failure.
- Analysis of cell death pathways (apoptosis, autophagy, oncosis) in cardiomyocytes.
- Examination of stem cell involvement in cardiomyocyte renewal.
Main Results:
- Cardiomyocyte renewal in the adult heart is limited, primarily mediated by stem cells.
- Cardiomyocyte death often exceeds renewal during chronic stress, leading to progressive heart failure.
- Pathological remodeling involves simultaneous cardiomyocyte loss through multiple death pathways.
Conclusions:
- Understanding fundamental biological processes of cardiomyocyte turnover is crucial for developing effective heart failure therapies.
- Cell-based therapies targeting cardiomyocyte death and promoting repair show promise.
- Further research is needed to advance clinical therapeutics for heart disease.
Abstract:
During post-natal maturation of the mammalian heart, proliferation of cardiomyocytes essentially ceases as cardiomyocytes withdraw from the cell cycle and develop blocks at the G0/G1 and G2/M transition phases of the cell cycle. As a result, the response of the myocardium to acute stress is limited to various forms of cardiomyocyte injury, which can be modified by preconditioning and reperfusion, whereas the response to chronic stress is dominated by cardiomyocyte hypertrophy and myocardial remodeling. Acute myocardial ischemia leads to injury and death of cardiomyocytes and nonmyocytic stromal cells by oncosis and apoptosis, and possibly by a hybrid form of cell death involving both pathways in the same ischemic cardiomyocytes. There is increasing evidence for a slow, ongoing turnover of cardiomyocytes in the normal heart involving death of cardiomyocytes and generation of new cardiomyocytes. This process appears to be accelerated and quantitatively increased as part of myocardial remodeling. Cardiomyocyte loss involves apoptosis, autophagy, and oncosis, which can occur simultaneously and involve different individual cardiomyocytes in the same heart undergoing remodeling. Mitotic figures in myocytic cells probably represent maturing progeny of stem cells in most cases. Mitosis of mature cardiomyocytes that have reentered the cell cycle appears to be a rare event. Thus, cardiomyocyte renewal likely is mediated primarily by endogenous cardiac stem cells and possibly by blood-born stem cells, but this biological phenomenon is limited in capacity. As a consequence, persistent stress leads to ongoing remodeling in which cardiomyocyte death exceeds cardiomyocyte renewal, resulting in progressive heart failure. Intense investigation currently is focused on cell-based therapies aimed at retarding cardiomyocyte death and promoting myocardial repair and possibly regeneration. Alteration of pathological remodeling holds promise for prevention and treatment of heart failure, which is currently a major cause of morbidity and mortality and a major public health problem. However, a deeper understanding of the fundamental biological processes is needed in order to make lasting advances in clinical therapeutics in the field.
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