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肌肉胆碱激酶β缺陷导致线粒体功能障碍和自噬增加。

Muscle choline kinase beta defect causes mitochondrial dysfunction and increased mitophagy.

机构信息

Department of Neuromuscular Research, National Institute of Neuroscience, National Center of Neurology and Psychiatry, 4-1-1 Ogawahigashi-cho, Kodaira, Tokyo, Japan.

出版信息

Hum Mol Genet. 2011 Oct 1;20(19):3841-51. doi: 10.1093/hmg/ddr305. Epub 2011 Jul 12.

Abstract

Choline kinase is the first step enzyme for phosphatidylcholine (PC) de novo biosynthesis. Loss of choline kinase activity in muscle causes rostrocaudal muscular dystrophy (rmd) in mouse and congenital muscular dystrophy in human, characterized by distinct mitochondrial morphological abnormalities. We performed biochemical and pathological analyses on skeletal muscle mitochondria from rmd mice. No mitochondria were found in the center of muscle fibers, while those located at the periphery of the fibers were significantly enlarged. Muscle mitochondria in rmd mice exhibited significantly decreased PC levels, impaired respiratory chain enzyme activities, decreased mitochondrial ATP synthesis, decreased coenzyme Q and increased superoxide production. Electron microscopy showed the selective autophagic elimination of mitochondria in rmd muscle. Molecular markers of mitophagy, including Parkin, PINK1, LC3, polyubiquitin and p62, were localized to mitochondria of rmd muscle. Quantitative analysis shows that the number of mitochondria in muscle fibers and mitochondrial DNA copy number were decreased. We demonstrated that the genetic defect in choline kinase in muscle results in mitochondrial dysfunction and subsequent mitochondrial loss through enhanced activation of mitophagy. These findings provide a first evidence for a pathomechanistic link between de novo PC biosynthesis and mitochondrial abnormality.

摘要

胆碱激酶是磷脂酰胆碱(PC)从头生物合成的第一步酶。肌肉中胆碱激酶活性的丧失会导致鼠的头侧尾侧肌营养不良症(rmd)和人类的先天性肌营养不良症,其特征是明显的线粒体形态异常。我们对 rmd 小鼠的骨骼肌线粒体进行了生化和病理学分析。在肌肉纤维的中心没有发现线粒体,而位于纤维外围的线粒体则显著增大。rmd 小鼠的肌肉线粒体中 PC 水平显著降低,呼吸链酶活性受损,线粒体 ATP 合成减少,辅酶 Q 减少,超氧化物产生增加。电子显微镜显示 rmd 肌肉中存在线粒体的选择性自噬消除。自噬的分子标志物,包括 Parkin、PINK1、LC3、多聚泛素和 p62,定位于 rmd 肌肉的线粒体中。定量分析表明,肌肉纤维中的线粒体数量和线粒体 DNA 拷贝数减少。我们证明,肌肉中胆碱激酶的遗传缺陷导致线粒体功能障碍,随后通过增强自噬的激活导致线粒体丧失。这些发现为从头合成 PC 与线粒体异常之间的病理机制联系提供了第一个证据。

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