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Published on: September 3, 2020
Senescent cardiomyocytes contribute to cardiac dysfunction following myocardial infarction
Rachael Redgrave1, Emily Dookun1, Laura Booth1
1Newcastle University.
Insights
Senescent cardiomyocytes worsen heart attack outcomes by promoting inflammation and tissue damage. Inhibiting cardiomyocyte senescence improves heart function and reduces scar size after myocardial infarction.
Area of Science:
- Cardiovascular Biology
- Cellular Senescence
- Myocardial Infarction Pathophysiology
Background:
- Myocardial infarction (MI) leads to heart failure through pathological remodeling, despite reperfusion therapy.
- Cellular senescence contributes to disease progression, and senolytics show therapeutic potential.
- The specific senescent cell types driving post-MI remodeling are not fully identified.
Approach:
- Developed a transgenic mouse model with cardiomyocyte-specific knockout of p16 (CDKN2A).
- Induced myocardial infarction in these mice and control littermates.
- Assessed cardiac function, hypertrophy, scar size, and senescence-associated markers.
Key Points:
- Mice lacking cardiomyocyte p16 showed improved cardiac function and reduced scar size post-MI.
- Cardiomyocyte-specific p16 knockout did not alter cardiomyocyte hypertrophy.
- Inhibition of cardiomyocyte senescence reduced inflammation and senescence markers in other myocardial cells.
Conclusions:
- Senescent cardiomyocytes are key contributors to pathological myocardial remodeling and dysfunction after MI.
- Cardiomyocytes may spread senescence to other cardiac cells, exacerbating damage.
- Targeting cardiomyocyte senescence offers a promising therapeutic strategy for post-MI recovery.
Abstract:
Myocardial infarction is a leading cause of morbidity and mortality. While reperfusion is now standard therapy, pathological remodeling leading to heart failure remains a clinical problem. Cellular senescence has been shown to contribute to disease pathophysiology and treatment with the senolytic navitoclax attenuates inflammation, reduces adverse myocardial remodeling and results in improved functional recovery. However, it remains unclear which senescent cell populations contribute to these processes. To identify whether senescent cardiomyocytes contribute to disease pathophysiology post-myocardial infarction, we established a transgenic model in which p16 (CDKN2A) expression was specifically knocked-out in the cardiomyocyte population. Following myocardial infarction, mice lacking cardiomyocyte p16 expression demonstrated no difference in cardiomyocyte hypertrophy but exhibited improved cardiac function and significantly reduced scar size in comparison to control animals. This data demonstrates that senescent cardiomyocytes participate in pathological myocardial remodeling. Importantly, inhibition of cardiomyocyte senescence led to reduced senescence-associated inflammation and decreased senescence-associated markers within other myocardial lineages, consistent with the hypothesis that cardiomyocytes promote pathological remodeling by spreading senescence to other cell-types. Collectively this study presents a novel demonstration that senescent cardiomyocytes are major contributors to myocardial remodeling and dysfunction following a myocardial infarction. Therefore, to maximize the potential for clinical translation, it is important to further understand the mechanisms underlying cardiomyocyte senescence and how to optimize senolytic strategies to target this cell lineage.
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