STING通过靶向GPX4进行自噬降解,加重了心肌缺血再灌注损伤

IF 40.8 1区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Xiaohong Wang, Tao Chen, Sizhe Chen, Jie Zhang, Liangyu Cai, Changhao Liu, Yujie Zhang, Xiao Wu, Na Li, Zhiyong Ma, Lei Cao, Qian Li, Chenghu Guo, Qiming Deng, Wenqian Qi, Yonghao Hou, Ruiqing Ren, Wenhai Sui, Haonan Zheng, Yun Zhang, Meng Zhang, Cheng Zhang
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引用次数: 0

摘要

尽管心肌梗死后介入冠状动脉再灌注技术取得了进展,但仍有相当一部分患者因心肌缺血再灌注(MI/R)损伤而导致死亡率升高。深入了解MI/R损伤的机制对于制定最小化心肌损伤和提高患者生存率的策略至关重要。本研究发现,心肌缺血/再灌注过程中,双链DNA (dsDNA)-环GMP-AMP合成酶(cGAS)-干扰素基因刺激因子(STING)信号积累,心肌铁下垂发生率高。心肌细胞中cgas或Sting的特异性缺失,导致氧化应激的抑制,已被证明可以减轻铁下垂和I/R损伤。相反,STING的激活会加剧铁下垂和I/R损伤。在机制上,STING通过促进自噬体和溶酶体的融合,直接靶向谷胱甘肽过氧化物酶4 (glutathione peroxidase 4, GPX4),促进其自噬降解。该STING-GPX4轴参与心肌细胞铁下垂并形成正反馈回路。通过STING的T267或GPX4的N146突变阻断STING-GPX4的相互作用可以稳定GPX4。在治疗上,aav介导的GPX4给药减轻了STING诱导的铁下垂,从而增强了MI/R损伤后的心功能恢复。此外,H-151抑制STING稳定GPX4,逆转GPX4诱导的铁下垂,减轻MI/R损伤。总的来说,本研究确定了一种新的依赖自噬的铁下垂机制。具体来说,缺氧或缺血-再灌注诱导的STING自噬导致GPX4降解,从而为I/R相关心脏病提供了一个有希望的治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

STING aggravates ferroptosis-dependent myocardial ischemia-reperfusion injury by targeting GPX4 for autophagic degradation

STING aggravates ferroptosis-dependent myocardial ischemia-reperfusion injury by targeting GPX4 for autophagic degradation

Despite advancements in interventional coronary reperfusion technologies following myocardial infarction, a notable portion of patients continue to experience elevated mortality rates as a result of myocardial ischemia-reperfusion (MI/R) injury. An in-depth understanding of the mechanisms underlying MI/R injury is crucial for devising strategies to minimize myocardial damage and enhance patient survival. Here, it is discovered that during MI/R, double-stranded DNA (dsDNA)-cyclic GMP-AMP synthase (cGAS)-stimulator of interferon genes (STING) signal accumulates, accompanied by high rates of myocardial ferroptosis. The specific deletion of cgas or Sting in cardiomyocytes, resulting in the inhibition of oxidative stress, has been shown to mitigate ferroptosis and I/R injury. Conversely, activation of STING exacerbates ferroptosis and I/R injury. Mechanistically, STING directly targets glutathione peroxidase 4 (GPX4) to facilitate its degradation through autophagy, by promoting the fusion of autophagosomes and lysosomes. This STING-GPX4 axis contributes to cardiomyocyte ferroptosis and forms a positive feedback circuit. Blocking the STING-GPX4 interaction through mutations in T267 of STING or N146 of GPX4 stabilizes GPX4. Therapeutically, AAV-mediated GPX4 administration alleviates ferroptosis induced by STING, resulting in enhanced cardiac functional recovery from MI/R injury. Additionally, the inhibition of STING by H-151 stabilizes GPX4 to reverse GPX4-induced ferroptosis and alleviate MI/R injury. Collectively, a novel autophagy-dependent ferroptosis mechanism is identified in this study. Specifically, STING autophagy induced by anoxia or ischemia-reperfusion leads to GPX4 degradation, thereby presenting a promising therapeutic target for heart diseases associated with I/R.

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来源期刊
Signal Transduction and Targeted Therapy
Signal Transduction and Targeted Therapy Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
44.50
自引率
1.50%
发文量
384
审稿时长
5 weeks
期刊介绍: Signal Transduction and Targeted Therapy is an open access journal that focuses on timely publication of cutting-edge discoveries and advancements in basic science and clinical research related to signal transduction and targeted therapy. Scope: The journal covers research on major human diseases, including, but not limited to: Cancer,Cardiovascular diseases,Autoimmune diseases,Nervous system diseases.
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