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SENP3-FIS1轴在缺氧条件下促进线粒体自噬和细胞存活。

SENP3-FIS1 axis promotes mitophagy and cell survival under hypoxia.

作者信息

Zhao Alice, Maple Laura, Jiang Juwei, Myers Katie N, Jones Callum G, Gagg Hannah, McGarrity-Cottrell Connor, Rominiyi Ola, Collis Spencer J, Wells Greg, Rahman Marufur, Danson Sarah J, Robinson Darren, Smythe Carl, Guo Chun

机构信息

School of Biosciences, University of Sheffield, Firth Court, Western Bank, Sheffield, S10 2TN, UK.

Division of Clinical Medicine, University of Sheffield Medical School, Sheffield, S10 2RX, UK.

出版信息

Cell Death Dis. 2024 Dec 5;15(12):881. doi: 10.1038/s41419-024-07271-8.

Abstract

SUMOylation, the covalent attachment of the small ubiquitin-like modifier (SUMO) to target proteins, and its reversal, deSUMOylation by SUMO proteases like Sentrin-specific proteases (SENPs), are crucial for initiating cellular responses to hypoxia. However, their roles in subsequent adaptation processes to hypoxia such as mitochondrial autophagy (mitophagy) remain unexplored. Here, we show that general SUMOylation, particularly SUMO2/3 modification, suppresses mitophagy under both normoxia and hypoxia. Furthermore, we identify deSUMO2/3-ylation enzyme SENP3 and mitochondrial Fission protein 1 (FIS1) as key players in hypoxia-induced mitophagy (HIM), with SUMOylatable FIS1 acting as a crucial regulator for SENP3-mediated HIM regulation. Interestingly, we find that hypoxia promotes FIS1 SUMO2/3-ylation and triggers an interaction between SUMOylatable FIS1 and Rab GTPase-activating protein Tre-2/Bub2/Cdc16 domain 1 family member 17 (TBC1D17), which in turn suppresses HIM. Therefore, we propose a novel SUMOylation-dependent pathway where the SENP3-FIS1 axis promotes HIM, with TBC1D17 acting as a fine-tuning regulator. Importantly, the SENP3-FIS1 axis plays a protective role against hypoxia-induced cell death, highlighting its physiological significance, and hypoxia-inducible FIS1-TBC1D17 interaction is detectable in primary glioma stem cell-like (GSC) cultures derived from glioblastoma patients, suggesting its disease relevance. Our findings not only provide new insights into SUMOylation/deSUMOylation regulation of HIM but also suggest the potential of targeting this pathway to enhance cellular resilience under hypoxic stress.

摘要

小泛素样修饰物(SUMO)与靶蛋白的共价连接即SUMO化修饰,以及其逆反应,即由Sentrin特异性蛋白酶(SENP)等SUMO蛋白酶进行的去SUMO化修饰,对于启动细胞对缺氧的反应至关重要。然而,它们在随后的缺氧适应过程(如线粒体自噬)中的作用仍未得到探索。在这里,我们表明,一般的SUMO化修饰,特别是SUMO2/3修饰,在常氧和缺氧条件下均抑制线粒体自噬。此外,我们确定去SUMO2/3化酶SENP3和线粒体裂变蛋白1(FIS1)是缺氧诱导的线粒体自噬(HIM)的关键参与者,可SUMO化修饰的FIS1作为SENP3介导的HIM调节的关键调节因子。有趣的是,我们发现缺氧促进FIS1的SUMO2/3化修饰,并触发可SUMO化修饰的FIS1与Rab GTP酶激活蛋白Tre-2/Bub2/Cdc16结构域1家族成员17(TBC1D17)之间的相互作用,进而抑制HIM。因此,我们提出了一种新的SUMO化修饰依赖途径,其中SENP3-FIS1轴促进HIM,而TBC1D17作为微调调节因子。重要的是,SENP3-FIS1轴对缺氧诱导的细胞死亡起保护作用,突出了其生理意义,并且在源自胶质母细胞瘤患者的原发性胶质瘤干细胞样(GSC)培养物中可检测到缺氧诱导的FIS1-TBC1D17相互作用,表明其与疾病的相关性。我们的发现不仅为HIM的SUMO化修饰/去SUMO化修饰调节提供了新的见解,还表明靶向该途径以增强细胞在缺氧应激下的恢复力的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/05e3/11621581/c004bdf414a4/41419_2024_7271_Fig1_HTML.jpg

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