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视神经萎缩 1 (OPA1)的短变异体可改善细胞在氧化应激下的存活能力。

The short variant of optic atrophy 1 (OPA1) improves cell survival under oxidative stress.

机构信息

Department of Physiology, Medical College of Georgia, Augusta University, Augusta, Georgia 30912.

Department of Cellular Biology and Anatomy, Medical College of Georgia, Augusta University, Augusta, Georgia 30912.

出版信息

J Biol Chem. 2020 May 8;295(19):6543-6560. doi: 10.1074/jbc.RA119.010983. Epub 2020 Apr 3.

Abstract

Optic atrophy 1 (OPA1) is a dynamin protein that mediates mitochondrial fusion at the inner membrane. OPA1 is also necessary for maintaining the cristae and thus essential for supporting cellular energetics. OPA1 exists as membrane-anchored long form (L-OPA1) and short form (S-OPA1) that lacks the transmembrane region and is generated by cleavage of L-OPA1. Mitochondrial dysfunction and cellular stresses activate the inner membrane-associated zinc metallopeptidase OMA1 that cleaves L-OPA1, causing S-OPA1 accumulation. The prevailing notion has been that L-OPA1 is the functional form, whereas S-OPA1 is an inactive cleavage product in mammals, and that stress-induced OPA1 cleavage causes mitochondrial fragmentation and sensitizes cells to death. However, S-OPA1 contains all functional domains of dynamin proteins, suggesting that it has a physiological role. Indeed, we recently demonstrated that S-OPA1 can maintain cristae and energetics through its GTPase activity, despite lacking fusion activity. Here, applying oxidant insult that induces OPA1 cleavage, we show that cells unable to generate S-OPA1 are more sensitive to this stress under obligatory respiratory conditions, leading to necrotic death. These findings indicate that L-OPA1 and S-OPA1 differ in maintaining mitochondrial function. Mechanistically, we found that cells that exclusively express L-OPA1 generate more superoxide and are more sensitive to Ca-induced mitochondrial permeability transition, suggesting that S-OPA1, and not L-OPA1, protects against cellular stress. Importantly, silencing of OMA1 expression increased oxidant-induced cell death, indicating that stress-induced OPA1 cleavage supports cell survival. Our findings suggest that S-OPA1 generation by OPA1 cleavage is a survival mechanism in stressed cells.

摘要

视神经萎缩 1(OPA1)是一种动力蛋白蛋白,在内膜处介导线粒体融合。OPA1 对于维持嵴也是必需的,因此对于支持细胞能量至关重要。OPA1 存在膜锚定的长形式(L-OPA1)和短形式(S-OPA1),后者缺乏跨膜区,是由 L-OPA1 的切割产生的。线粒体功能障碍和细胞应激激活内膜相关锌金属肽酶 OMA1,其切割 L-OPA1,导致 S-OPA1 积累。普遍的观点是 L-OPA1 是功能形式,而 S-OPA1 是哺乳动物中无活性的切割产物,应激诱导的 OPA1 切割导致线粒体碎片化并使细胞对死亡敏感。然而,S-OPA1 包含动力蛋白蛋白的所有功能域,表明它具有生理作用。事实上,我们最近证明,尽管缺乏融合活性,S-OPA1 可以通过其 GTPase 活性维持嵴和能量。在这里,我们应用诱导 OPA1 切割的氧化剂损伤,表明在必需呼吸条件下,无法产生 S-OPA1 的细胞对这种应激更为敏感,导致坏死性死亡。这些发现表明 L-OPA1 和 S-OPA1 在维持线粒体功能方面存在差异。从机制上讲,我们发现仅表达 L-OPA1 的细胞会产生更多的超氧化物,并且对 Ca 诱导的线粒体通透性转换更为敏感,这表明 S-OPA1 而不是 L-OPA1 可以保护细胞免受应激。重要的是,沉默 OMA1 表达增加了氧化剂诱导的细胞死亡,表明应激诱导的 OPA1 切割支持细胞存活。我们的研究结果表明,OPA1 切割产生的 S-OPA1 是应激细胞的一种生存机制。

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