Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Senescent cardiomyocytes contribute to cardiac dysfunction following myocardial infarction.

View through CrossRef
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.
Title: Senescent cardiomyocytes contribute to cardiac dysfunction following myocardial infarction.
Description:
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.

Related Results

Transcriptional Reprogramming of Senescent Human Cardiomyocytes by Cardiometabolic and Geroprotective Compounds
Transcriptional Reprogramming of Senescent Human Cardiomyocytes by Cardiometabolic and Geroprotective Compounds
Introduction: Cellular senescence is a fundamental hallmark of aging and a critical driver of cardiometabolic disease progression. In cardiomyocytes, senescence is characterized by...
ROLE OF HMGB1 IN DOXORUBICIN-INDUCED MYOCARDIAL APOPTOSIS AND ITS REGULATION PATHWAY
ROLE OF HMGB1 IN DOXORUBICIN-INDUCED MYOCARDIAL APOPTOSIS AND ITS REGULATION PATHWAY
Objectives Doxorubicin (DOX) is a widely used anti-tumour agent. The clinical application of the medication is limited by its side effect which can elicit myocard...
e0432 An essential role of serum B-type natriuretic peptide in patients with acute inferior myocardial infarction
e0432 An essential role of serum B-type natriuretic peptide in patients with acute inferior myocardial infarction
Objective To investigate the relationship between the level of serum B-type natriuretic peptide (BNP) and right ventricular infarction in patient s with acute inf...
Development of information panels for laboratory diagnosis of myocardial infarction risk in patients with stable ischemic heart disease
Development of information panels for laboratory diagnosis of myocardial infarction risk in patients with stable ischemic heart disease
The high incidence of stable coronary heart disease, the increasing frequency of myocardial infarction, disability and mortality determine the relevance of the search for new risk ...
Functional Significance of Collateral Circulation in Patients with Total Coronary Occlusion
Functional Significance of Collateral Circulation in Patients with Total Coronary Occlusion
Functional significance of collateral circulation was evaluated in 125 patients with total coronary occlusion. Patients were classified into 2 groups: group 1, patients without myo...

Back to Top