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OPA1的蛋白水解加工将线粒体功能障碍与线粒体形态改变联系起来。

Proteolytic processing of OPA1 links mitochondrial dysfunction to alterations in mitochondrial morphology.

作者信息

Duvezin-Caubet Stéphane, Jagasia Ravi, Wagener Johannes, Hofmann Sabine, Trifunovic Aleksandra, Hansson Anna, Chomyn Anne, Bauer Matthias F, Attardi Giuseppe, Larsson Nils-Göran, Neupert Walter, Reichert Andreas S

机构信息

Adolf-Butenandt-Institut für Physiologische Chemie, Ludwig-Maximilians-Universität München, Butenandtstrasse 5, 81377 München, Germany.

出版信息

J Biol Chem. 2006 Dec 8;281(49):37972-9. doi: 10.1074/jbc.M606059200. Epub 2006 Sep 26.

Abstract

Many muscular and neurological disorders are associated with mitochondrial dysfunction and are often accompanied by changes in mitochondrial morphology. Mutations in the gene encoding OPA1, a protein required for fusion of mitochondria, are associated with hereditary autosomal dominant optic atrophy type I. Here we show that mitochondrial fragmentation correlates with processing of large isoforms of OPA1 in cybrid cells from a patient with myoclonus epilepsy and ragged-red fibers syndrome and in mouse embryonic fibroblasts harboring an error-prone mitochondrial mtDNA polymerase gamma. Furthermore, processed OPA1 was observed in heart tissue derived from heart-specific TFAM knock-out mice suffering from mitochondrial cardiomyopathy and in skeletal muscles from patients suffering from mitochondrial myopathies such as myopathy encephalopathy lactic acidosis and stroke-like episodes. Dissipation of the mitochondrial membrane potential leads to fast induction of proteolytic processing of OPA1 and concomitant fragmentation of mitochondria. Recovery of mitochondrial fusion depended on protein synthesis and was accompanied by resynthesis of large isoforms of OPA1. Fragmentation of mitochondria was prevented by overexpressing OPA1. Taken together, our data indicate that proteolytic processing of OPA1 has a key role in inducing fragmentation of energetically compromised mitochondria. We present the hypothesis that this pathway regulates mitochondrial morphology and serves as an early response to prevent fusion of dysfunctional mitochondria with the functional mitochondrial network.

摘要

许多肌肉和神经疾病都与线粒体功能障碍相关,并且常常伴随着线粒体形态的改变。编码OPA1(一种线粒体融合所需的蛋白质)的基因突变与常染色体显性遗传性视神经萎缩I型相关。在此我们表明,线粒体碎片化与患有肌阵挛性癫痫伴破碎红纤维综合征患者的胞质杂种细胞以及携带易出错的线粒体DNA聚合酶γ的小鼠胚胎成纤维细胞中OPA1的大型异构体的加工有关。此外,在患有线粒体心肌病的心脏特异性TFAM基因敲除小鼠的心脏组织以及患有线粒体肌病(如肌病性脑病伴乳酸酸中毒和卒中样发作)患者的骨骼肌中观察到了加工后的OPA1。线粒体膜电位的耗散导致OPA1的蛋白水解加工快速诱导以及线粒体随之发生碎片化。线粒体融合的恢复依赖于蛋白质合成,并伴随着OPA1大型异构体的重新合成。过表达OPA1可防止线粒体碎片化。综上所述,我们的数据表明,OPA1的蛋白水解加工在诱导能量受损的线粒体碎片化中起关键作用。我们提出这样的假说,即该途径调节线粒体形态,并作为一种早期反应来防止功能失调的线粒体与功能性线粒体网络融合。

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