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Published on: February 22, 2022
Epigenetic revival of a dead cardiomyocyte through mitochondrial interventions
Abstract:
Mitochondrial dysfunction has been reported to underline heart failure, and our earlier report suggests that mitochondrial fusion and fission contributes significantly to volume overload heart failure. Although ample studies highlight mitochondrial dysfunction to be a major cause, studies are lacking to uncover the role of mitochondrial epigenetics, i.e. epigenetic modifications of mtDNA in cardiomyocyte function. Additionally, mitochondrial proteases like calpain and Lon proteases are underexplored. Cardiomyopathies are correlated to mitochondrial damage via increased reactive oxygen species production and free calcium within cardiomyocytes. These abnormalities drive increased proteolytic activity from matrix metalloproteinases and calpains, respectively. These proteases degrade the cytoskeleton of the cardiomyocyte and lead to myocyte death. mtDNA methylation is another factor that can lead to myocyte death by silencing several genes of mitochondria or upregulating the expression of mitochondrial proteases by hypomethylation. Cardiomyocyte resuscitation can occur through mitochondrial interventions by decreasing the proteolytic activity and reverting back the epigenetic changes in the mtDNA which lead to myocyte dysfunction. Epigenetic changes in the mtDNA are triggered by environmental factors like pollution and eating habits with cigarette smoking. An analysis of mitochondrial epigenetics in cigarette-smoking mothers will reveal an underlying novel mechanism leading to mitochondrial dysfunction and eventually heart failure. This review is focused on the mitochondrial dysfunction mechanisms that can be reverted back to resuscitate cardiomyocytes.
Insights
Mitochondrial dysfunction contributes to heart failure. This review explores how epigenetic changes in mitochondrial DNA (mtDNA) and proteases cause cardiomyocyte damage, offering potential resuscitation strategies.
Area of Science:
- Cardiovascular Research
- Mitochondrial Biology
- Epigenetics
Background:
- Mitochondrial dysfunction is a key factor in heart failure.
- Mitochondrial dynamics (fusion and fission) are implicated in volume overload heart failure.
- The role of mitochondrial epigenetics and specific proteases in cardiomyocyte function remains underexplored.
Purpose of the Study:
- To investigate the role of mitochondrial epigenetics, specifically mtDNA modifications, in cardiomyocyte dysfunction.
- To explore the involvement of mitochondrial proteases like calpain and Lon proteases in heart failure.
- To identify novel mechanisms linking environmental factors to mitochondrial dysfunction and heart failure.
Main Methods:
- Review of existing literature on mitochondrial dysfunction, epigenetics, and proteases in heart failure.
- Analysis of potential mechanisms of cardiomyocyte damage and death.
- Exploration of cardiomyocyte resuscitation strategies through mitochondrial interventions.
Main Results:
- Cardiomyopathies are linked to mitochondrial damage, increased reactive oxygen species, and calcium overload.
- Proteolytic activity from matrix metalloproteinases and calpains degrades cardiomyocyte cytoskeleton, leading to cell death.
- mtDNA methylation can silence mitochondrial genes or upregulate proteases, contributing to myocyte death.
Conclusions:
- Cardiomyocyte dysfunction and heart failure can be driven by epigenetic modifications of mtDNA and protease activity.
- Environmental factors like pollution, diet, and smoking can trigger epigenetic changes in mtDNA.
- Interventions targeting proteolytic activity and reverting epigenetic changes in mtDNA offer potential for cardiomyocyte resuscitation.

