细胞焦亡和线粒体功能参与 miR-654-3p 对心肌梗死的保护作用。

Pyroptosis and mitochondrial function participated in miR-654-3p-protected against myocardial infarction.

机构信息

Xiamen Key Laboratory of Cardiovascular Diseases, Xiamen Cardiovascular Hospital of Xiamen University, School of Medicine, Xiamen University, Xiamen, Fujian, 361000, China.

出版信息

Cell Death Dis. 2024 Jun 4;15(6):393. doi: 10.1038/s41419-024-06786-4.

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.

摘要

心肌梗死(MI)是心力衰竭的主要病因之一,其发病机制非常复杂。miR-654-3p 已被认为是控制细胞存活的关键调节因子。然而,miR-654-3p 在心肌细胞和 MI 中的功能尚未得到报道。本研究旨在确定 miR-654-3p 在调节心肌梗死中的作用。为了了解 miR-654-3p 对心脏功能的贡献,我们使用 AAV9 技术在 MI 损伤时在心脏中特异性敲低和过表达 miR-654-3p。从机制上,我们结合细胞和分子技术、药物治疗、RNA 测序和功能测试来阐明潜在的病理机制。我们发现,MI 后小鼠在边界区和梗死区的 miR-654-3p 表达降低。心脏中缺乏 miR-654-3p 的小鼠显示出一些炎症浸润和心肌纤维化,导致轻度心脏损伤。此外,我们发现心肌细胞中 miR-654-3p 的缺乏导致细胞焦亡性死亡,而不是其他程序性细胞死亡。有趣的是,miR-654-3p 的缺乏加重了 MI 诱导的心脏功能障碍,伴有更高的心肌纤维化和心脏酶以及增强的细胞焦亡激活。心脏中 miR-654-3p 的升高可防止心肌纤维化和炎症浸润,并降低细胞焦亡谱,从而减轻 MI 引起的心脏损伤。通过 RNA 序列和分子生物学方法,我们发现心脏中 miR-654-3p 的过表达通过促进线粒体代谢和线粒体呼吸功能来促进心肌细胞的代谢能力。我们的发现确定了 miR-654-3p 通过调节细胞焦亡和线粒体代谢来保护 MI 损伤的特征。这些发现为 miR-654-3p 参与 MI 发病机制提供了新的机制,并揭示了新的治疗靶点。MI 后 miR-654-3p 的表达降低。心脏中缺乏 miR-654-3p 的小鼠显示出一些炎症浸润和心肌纤维化,导致轻度心脏损伤。心肌细胞中 miR-654-3p 的缺乏导致细胞焦亡性死亡。miR-654-3p 的缺乏加重了 MI 诱导的心脏功能障碍,伴有更高的心肌纤维化和心脏酶以及增强的细胞焦亡激活。心脏中 miR-654-3p 的过表达可防止心肌纤维化和炎症浸润,并降低细胞焦亡谱,从而减轻 MI 引起的心脏损伤。心脏中 miR-654-3p 的过表达通过促进线粒体代谢和线粒体呼吸功能来促进心肌细胞的代谢能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ea33/11150501/ae6b5a315c10/41419_2024_6786_Figa_HTML.jpg

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