抑制miR-499a-5p通过上调ARGLU1改善缺氧心肌细胞H9c2的凋亡和自噬损伤

IF 3.1
Sha Wang, Hui-Jun Wang, Shuo Pan
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摘要

心肌梗死(MI)是最常见的急性冠状动脉综合征,常伴有心肌细胞凋亡。心肌梗死期间,除凋亡外,自噬在心肌细胞存活中起着至关重要的作用。本研究旨在阐明缺氧条件下miR-499a-5p在心肌细胞凋亡和自噬中的调节作用。通过结扎左冠状动脉前降支建立心肌梗死小鼠模型,采用RT-qPCR方法评估心肌梗死小鼠和假手术小鼠心脏组织中miR-499a-5p的表达水平。马松三色染色评价心肌纤维化,超声心动图评价心功能参数。体外实验采用TUNEL法和流式细胞术检测细胞凋亡和自噬。荧光素酶报告试验证实了miR-499a-5p与富含精氨酸和谷氨酸的1 (ARGLU1)之间的直接结合。Western blot分析细胞凋亡标志物、自噬相关蛋白和ARGLU1蛋白水平。结果表明,心肌梗死小鼠出现明显的心脏纤维化和功能损伤,同时miR-499a-5p表达增加。在H9c2细胞中,miR-499a-5p的下调显著降低了缺氧诱导的细胞凋亡和自噬,而miR-499a-5p的过表达则加剧了这些过程。此外,ARGLU1被鉴定为miR-499a-5p的直接靶点,并受其负调控。沉默ARGLU1可增强缺氧诱导的细胞凋亡和自噬,并逆转miR-499a-5p敲低观察到的保护作用。综上所述,miR-499a-5p抑制通过上调ARGLU1减少凋亡和自噬,从而减轻缺氧诱导的H9c2细胞损伤,提示MI的潜在治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inhibition of miR-499a-5p Ameliorates Apoptotic and Autophagic Damage in Hypoxic Cardiomyocytes H9c2 Through Upregulation of ARGLU1.

Myocardial infarction (MI), the most prevalent form of acute coronary syndrome, is often accompanied by cardiomyocyte apoptosis. In addition to apoptosis, autophagy plays a critical role in determining cardiomyocyte survival during MI. This study aimed to elucidate the regulatory role of miR-499a-5p in cardiomyocyte apoptosis and autophagy under hypoxic conditions. An MI mouse model was established via ligation of the left anterior descending coronary artery, and RT-qPCR was used to assess miR-499a-5p expression levels in cardiac tissues from MI and sham-operated mice. Masson's trichrome staining was employed to evaluate cardiac fibrosis, and echocardiography was conducted to assess cardiac functional parameters. For in vitro experiments, TUNEL assays and flow cytometry analyses were used to measure apoptosis and autophagy. A luciferase reporter assay confirmed the direct binding between miR-499a-5p and arginine and glutamate rich 1 (ARGLU1). Western blot analysis was used to quantify protein levels of apoptotic markers, autophagy-related proteins, and ARGLU1. The results demonstrated that MI mice developed significant cardiac fibrosis and functional impairment, along with increased miR-499a-5p expression. In H9c2 cells, knockdown of miR-499a-5p significantly reduced hypoxia-induced apoptosis and autophagy, whereas miR-499a-5p overexpression exacerbated these processes. Moreover, ARGLU1 was identified as a direct target of miR-499a-5p and was negatively regulated by it. Silencing ARGLU1 enhanced hypoxia-induced apoptosis and autophagy and reversed the protective effects observed with miR-499a-5p knockdown. In summary, miR-499a-5p inhibition mitigates hypoxia-induced injury in H9c2 cells by reducing apoptosis and autophagy through the upregulation of ARGLU1, suggesting a potential therapeutic target for MI.

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