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线粒体动力蛋白OPA1的短变体维持线粒体能量代谢和嵴结构。

The short variant of the mitochondrial dynamin OPA1 maintains mitochondrial energetics and cristae structure.

作者信息

Lee Hakjoo, Smith Sylvia B, Yoon Yisang

机构信息

From the Departments of Physiology and.

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

出版信息

J Biol Chem. 2017 Apr 28;292(17):7115-7130. doi: 10.1074/jbc.M116.762567. Epub 2017 Mar 15.

Abstract

The protein optic atrophy 1 (OPA1) is a dynamin-related protein associated with the inner mitochondrial membrane and functions in mitochondrial inner membrane fusion and cristae maintenance. Inner membrane-anchored long OPA1 (L-OPA1) undergoes proteolytic cleavage resulting in short OPA1 (S-OPA1). It is often thought that S-OPA1 is a functionally insignificant proteolytic product of L-OPA1 because the accumulation of S-OPA1 due to L-OPA1 cleavage is observed in mitochondrial fragmentation and dysfunction. However, cells contain a mixture of both L- and S-OPA1 in normal conditions, suggesting the functional significance of maintaining both OPA1 forms, but the differential roles of L- and S-OPA1 in mitochondrial fusion and energetics are ill-defined. Here, we examined mitochondrial fusion and energetic activities in cells possessing L-OPA1 alone, S-OPA1 alone, or both L- and S-OPA1. Using a mitochondrial fusion assay, we established that L-OPA1 confers fusion competence, whereas S-OPA1 does not. Remarkably, we found that S-OPA1 alone without L-OPA1 can maintain oxidative phosphorylation function as judged by growth in oxidative phosphorylation-requiring media, respiration measurements, and levels of the respiratory complexes. Most strikingly, S-OPA1 alone maintained normal mitochondrial cristae structure, which has been commonly assumed to be the function of OPA1 oligomers containing both L- and S-OPA1. Furthermore, we found that the GTPase activity of OPA1 is critical for maintaining cristae tightness and thus energetic competency. Our results demonstrate that, contrary to conventional notion, S-OPA1 is fully competent for maintaining mitochondrial energetics and cristae structure.

摘要

视神经萎缩蛋白1(OPA1)是一种与线粒体内膜相关的发动蛋白,在线粒体内膜融合和嵴维持中发挥作用。内膜锚定的长链OPA1(L-OPA1)发生蛋白水解切割,产生短链OPA1(S-OPA1)。人们通常认为S-OPA1是L-OPA1功能上无足轻重的蛋白水解产物,因为在L-OPA1切割导致S-OPA1积累的情况下会观察到线粒体碎片化和功能障碍。然而,在正常情况下细胞中同时存在L-OPA1和S-OPA1,这表明维持两种OPA1形式具有功能意义,但L-OPA1和S-OPA1在线粒体融合和能量代谢中的不同作用尚不明确。在此,我们研究了仅含有L-OPA1、仅含有S-OPA1或同时含有L-OPA1和S-OPA1的细胞中的线粒体融合和能量代谢活动。通过线粒体融合试验,我们确定L-OPA1赋予融合能力,而S-OPA1则不具备。值得注意的是,我们发现仅S-OPA1而没有L-OPA1时,通过在需要氧化磷酸化的培养基中生长、呼吸测量以及呼吸复合物水平判断,其能够维持氧化磷酸化功能。最引人注目的是,仅S-OPA1就能维持正常的线粒体嵴结构,而通常认为这是同时含有L-OPA1和S-OPA1的OPA1寡聚体的功能。此外,我们发现OPA1的GTPase活性对于维持嵴的紧密性以及从而维持能量代谢能力至关重要。我们 的结果表明,与传统观念相反,S-OPA1完全有能力维持线粒体能量代谢和嵴结构。

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