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Pyroptosis and mitochondrial function participated in miR-654-3p-protected against myocardial infarction
Chan Wu1, Xiao-Cheng Zhang1, Lan-Ruo Chen1
1Xiamen Key Laboratory of Cardiovascular Diseases, Xiamen Cardiovascular Hospital of Xiamen University, School of Medicine, Xiamen University, Xiamen, Fujian, 361000, China.
Abstract:
Myocardial infarction (MI) is one of the leading causes of heart failure with highly complicated pathogeneses. miR-654-3p has been recognized as a pivotal regulator of controlling cell survival. However, the function of miR-654-3p in cardiomyocytes and MI has yet to be reported. This study aimed to identify the role of miR-654-3p in the regulation of myocardial infarction. To understand the contribution of miR-654-3p on heart function, we generated cardiac-specific knockdown and overexpression mice using AAV9 technology in MI injury. Mechanically, we combined cellular and molecular techniques, pharmaceutical treatment, RNA sequencing, and functional testing to elucidate the potential pathological mechanisms. We identified that mice subjected to MI decreased the expression of miR-654-3p in the border and infarcted area. Mice lacking miR-654-3p in the heart showed some inflammation infiltration and myocardial fibrosis, resulting in a mild cardiac injury. Furthermore, we found a deficiency of miR-654-3p in cardiomyocytes resulted in pyroptotic cell death but not other programmed cell death. Intriguingly, miR-654-3p deficiency aggravated MI-induced cardiac dysfunction, accompanied by higher myocardial fibrosis and cardiac enzymes and augmented pyroptosis activation. Cardiac elevating miR-654-3p prevented myocardial fibrosis and inflammation infiltration and decreased pyroptosis profile, thereby attenuating MI-induced cardiac damage. Using RNA sequence and molecular biological approaches, we found overexpression of miR-654-3p in the heart promoted the metabolic ability of the cardiomyocytes by promoting mitochondrial metabolism and mitochondrial respiration function. Our finding identified the character of miR-654-3p in protecting against MI damage by mediating pyroptosis and mitochondrial metabolism. These findings provide a new mechanism for miR-654-3p involvement in the pathogenesis of MI and reveal novel therapeutic targets. miR-654-3p expression was decreased after MI. Mice lacking miR-654-3p in the heart showed some inflammation infiltration and myocardial fibrosis, resulting in a mild cardiac injury. The deficiency of miR-654-3p in cardiomyocytes resulted in pyroptotic cell death. miR-654-3p deficiency aggravated MI-induced cardiac dysfunction, accompanied by higher myocardial fibrosis and cardiac enzymes and augmented pyroptosis activation. Overexpression of miR-654-3p prevented myocardial fibrosis and inflammation infiltration and decreased pyroptosis profile, thereby attenuating MI-induced cardiac damage. Overexpression of miR-654-3p in the heart promoted the metabolic ability of the cardiomyocytes by promoting mitochondrial metabolism and mitochondrial respiration function.
Insights
MicroRNA-654-3p protects the heart after myocardial infarction (MI) by reducing pyroptosis and improving mitochondrial function. Lowering miR-654-3p worsens cardiac damage, while increasing it offers protection.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cell Death Mechanisms
Background:
- Myocardial infarction (MI) leads to heart failure through complex pathways.
- MicroRNA-654-3p (miR-654-3p) is known to regulate cell survival.
- The specific role of miR-654-3p in cardiomyocytes during MI was previously unreported.
Purpose of the Study:
- To investigate the function of miR-654-3p in cardiomyocytes.
- To determine the role of miR-654-3p in the pathogenesis of myocardial infarction.
- To elucidate the molecular mechanisms underlying miR-654-3p's effects on cardiac function post-MI.
Main Methods:
- Generated cardiac-specific knockdown and overexpression mouse models using AAV9 technology.
- Employed cellular and molecular techniques, including RNA sequencing and functional assays.
- Utilized pharmaceutical treatments and analyzed pyroptosis, fibrosis, and mitochondrial metabolism.
Main Results:
- MI decreased endogenous miR-654-3p expression in cardiac tissue.
- Loss of miR-654-3p exacerbated MI-induced cardiac dysfunction, fibrosis, and pyroptosis.
- Overexpression of miR-654-3p attenuated MI damage by reducing pyroptosis and enhancing mitochondrial metabolism and respiration.
Conclusions:
- miR-654-3p plays a protective role in myocardial infarction.
- The mechanism involves modulating pyroptosis and improving cardiomyocyte mitochondrial function.
- miR-654-3p represents a potential therapeutic target for treating MI and preventing heart failure.
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