膜相关ring - ch型指6通过ACSL4降解抑制心肌细胞铁下垂,保护高血压诱导的心脏重构

IF 5 2区 医学 Q2 CELL BIOLOGY
Rui Hao, Xin Wang, Changhu Liu, Jianghua Xue
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引用次数: 0

摘要

高血压是导致包括心力衰竭在内的各种心血管疾病的主要因素。铁中毒引起的心肌细胞损失被认为是心力衰竭中心肌重构的一个新因素。膜相关RING-CH-type finger 6 (Marchf6)是一个新发现的基因,它调节铁死亡并与多种疾病过程有关。然而,3 - chf6在调节心肌细胞铁下沉中的作用及其对高血压引起的心肌重构的影响仍未被探索。本研究旨在探讨3 - chf6是否通过调控铁下沉影响心肌重构,并探讨其分子机制。我们的研究结果表明,通过血管紧张素II (Ang II)刺激建立的动物和细胞模型中,march chf6水平都有所下降。过表达Marchf6对erastin诱导的铁下垂具有抗性,而敲低Marchf6则增加了对铁下垂的敏感性。在Ang II细胞模型中,Marchf6过表达增强细胞活力,抑制心肌细胞肥厚,逆转凋亡相关指标,而Marchf6敲低则表现出相反的作用。动物模型研究表明,Marchf6过表达可显著改善心功能,减轻心肌肥厚和纤维化,抑制铁致死亡水平。机制研究表明,Marchf6显著调节ACSL4蛋白的稳定性,其过表达加速了ACSL4蛋白的降解。在过表达Marchf6的心肌细胞中,ACSL4过表达明显逆转了Marchf6对Ang II引发的心肌细胞肥大和铁凋亡的调节作用。总之,我们的研究结果表明,3 - chf6可能通过促进ACSL4降解来减轻心肌细胞铁下沉,从而减轻高血压引起的心肌重构。本研究不仅揭示了心肌细胞铁下垂在心肌重构中的一种新的调控机制,而且为高血压相关心脏病的治疗提供了一个可行的靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Membrane-Associated RING-CH-Type Finger 6 Protects against Hypertension-Induced Cardiac Remodeling by Suppressing Cardiomyocyte Ferroptosis Through the Degradation of ACSL4.

Hypertension serves as a major contributing factor to various cardiovascular disorders, including heart failure. Ferroptosis-induced cardiomyocyte loss is recognized as a novel contributor to myocardial remodeling in heart failure. Membrane-associated RING-CH-type finger 6 (Marchf6) is a newly identified gene that regulates ferroptosis and is implicated in various disease processes. However, the role of Marchf6 in modulating cardiomyocyte ferroptosis and its impact on hypertension-induced myocardial remodeling remain unexplored. This study aimed to investigate whether Marchf6 influences myocardial remodeling through the regulation of ferroptosis and to explore the underlying molecular mechanisms. Our findings indicated that there was a decrease in Marchf6 levels in both animal and cellular models established through Angiotensin II (Ang II) stimulation. Overexpression of Marchf6 conferred resistance to Erastin-induced ferroptosis, while Marchf6 knockdown increased sensitivity to ferroptosis. In the Ang II cellular model, Marchf6 overexpression enhanced cell viability, inhibited cardiomyocyte hypertrophy, and reversed ferroptosis-related indicators, whereas Marchf6 knockdown exhibited opposite effects. Animal model studies indicated that Marchf6 overexpression significantly improved cardiac function, alleviated myocardial hypertrophy and fibrosis, and suppressed ferroptotic death levels. Mechanistic investigations revealed that Marchf6 significantly regulated the stability of ACSL4 protein, with Marchf6 overexpression accelerating ACSL4 protein degradation. In cardiomyocytes overexpressing Marchf6, ACSL4 overexpression notably reversed the regulatory impact of Marchf6 on cardiac cell hypertrophy and ferroptosis triggered by Ang II. Collectively, our findings suggest that Marchf6 may mitigate cardiomyocyte ferroptosis by promoting ACSL4 degradation, thereby alleviating hypertension-induced myocardial remodeling. This study not only uncovers a novel regulatory mechanism of cardiomyocyte ferroptosis in myocardial remodeling but also presents a viable target for the management of hypertension-related cardiac diseases.

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来源期刊
Inflammation
Inflammation 医学-免疫学
CiteScore
9.70
自引率
0.00%
发文量
168
审稿时长
3.0 months
期刊介绍: Inflammation publishes the latest international advances in experimental and clinical research on the physiology, biochemistry, cell biology, and pharmacology of inflammation. Contributions include full-length scientific reports, short definitive articles, and papers from meetings and symposia proceedings. The journal''s coverage includes acute and chronic inflammation; mediators of inflammation; mechanisms of tissue injury and cytotoxicity; pharmacology of inflammation; and clinical studies of inflammation and its modification.
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