GPX4
脱氮酶
心肌梗塞
再灌注损伤
医学
缺血
脂质过氧化
谷胱甘肽过氧化物酶
药理学
化学
氧化应激
内科学
生物化学
泛素
过氧化氢酶
基因
作者
Lulu Liu,Jiaojiao Pang,Dandan Qin,Ruochuan Li,Dan Zou,Kai Chi,Wenxiao Wu,Haiying Rui,Huaxiang Yu,Wenyong Zhu,Бо Лю,Xuting Wu,Jinxin Wang,Ping Xu,Xiaoshuai Song,Yihai Cao,Jiali Wang,Feng Xu,Xue Li,Yuguo Chen
标识
DOI:10.1002/advs.202301852
摘要
Despite the development of advanced technologies for interventional coronary reperfusion after myocardial infarction, a substantial number of patients experience high mortality due to myocardial ischemia-reperfusion (MI/R) injury. An in-depth understanding of the mechanisms underlying MI/R injury can provide crucial strategies for mitigating myocardial damage and improving patient survival. Here, it is discovered that the 4-hydroxy-2-nonenal (4-HNE) accumulates during MI/R, accompanied by high rates of myocardial ferroptosis. The loss-of-function of aldehyde dehydrogenase 2 (ALDH2), which dissipates 4-HNE, aggravates myocardial ferroptosis, whereas the activation of ALDH2 mitigates ferroptosis. Mechanistically, 4-HNE targets glutathione peroxidase 4 (GPX4) for K48-linked polyubiquitin-related degradation, which 4-HNE-GPX4 axis commits to myocyte ferroptosis and forms a positive feedback circuit. 4-HNE blocks the interaction between GPX4 and ovarian tumor (OTU) deubiquitinase 5 (OTUD5) by directly carbonylating their cysteine residues at C93 of GPX4 and C247 of OTUD5, identifying OTUD5 as the novel deubiquitinase for GPX4. Consequently, the elevation of OTUD5 deubiquitinates and stabilizes GPX4 to reverse 4-HNE-induced ferroptosis and alleviate MI/R injury. The data unravel the mechanism of 4-HNE in GPX4-dependent ferroptosis and identify OTUD5 as a novel therapeutic target for the treatment of MI/R injury.
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