Autophagy of OTUD5 destabilizes GPX4 to confer ferroptosis-dependent kidney injury

Author:

Chu Li-Kai,Cao Xu,Wan Lin,Diao Qiang,Zhu Yu,Kan Yu,Ye Li-Li,Mao Yi-Ming,Dong Xing-Qiang,Xiong Qian-Wei,Fu Ming-Cui,Zhang Ting,Zhou Hui-Ting,Cai Shi-Zhong,Ma Zhou-Rui,Hsu Ssu-Wei,Wu Reen,Chen Ching-HsienORCID,Yan Xiang-MingORCID,Liu JunORCID

Abstract

AbstractFerroptosis is an iron-dependent programmed cell death associated with severe kidney diseases, linked to decreased glutathione peroxidase 4 (GPX4). However, the spatial distribution of renal GPX4-mediated ferroptosis and the molecular events causing GPX4 reduction during ischemia-reperfusion (I/R) remain largely unknown. Using spatial transcriptomics, we identify that GPX4 is situated at the interface of the inner cortex and outer medulla, a hyperactive ferroptosis site post-I/R injury. We further discover OTU deubiquitinase 5 (OTUD5) as a GPX4-binding protein that confers ferroptosis resistance by stabilizing GPX4. During I/R, ferroptosis is induced by mTORC1-mediated autophagy, causing OTUD5 degradation and subsequent GPX4 decay. Functionally, OTUD5 deletion intensifies renal tubular cell ferroptosis and exacerbates acute kidney injury, while AAV-mediated OTUD5 delivery mitigates ferroptosis and promotes renal function recovery from I/R injury. Overall, this study highlights a new autophagy-dependent ferroptosis module: hypoxia/ischemia-induced OTUD5 autophagy triggers GPX4 degradation, offering a potential therapeutic avenue for I/R-related kidney diseases.

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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