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CCP1 促进线粒体融合和运动,以防止小鼠浦肯野细胞神经元丢失。

CCP1 promotes mitochondrial fusion and motility to prevent Purkinje cell neuron loss in mice.

机构信息

Department of Pediatrics, University of California, San Diego, La Jolla, CA.

Department of Neurosurgery, University of Washington, Seattle, WA.

出版信息

J Cell Biol. 2019 Jan 7;218(1):206-219. doi: 10.1083/jcb.201709028. Epub 2018 Oct 18.

Abstract

A perplexing question in neurodegeneration is why different neurons degenerate. The Purkinje cell degeneration () mouse displays a dramatic phenotype of degeneration of cerebellar Purkinje cells. Loss of CCP1/Nna1 deglutamylation of tubulin accounts for neurodegeneration, but the mechanism is unknown. In this study, we modulated the dosage of fission and fusion genes in a loss-of-function model and found that mitochondrial fragmentation and disease phenotypes were rescued by reduced Drp1. We observed mitochondrial fragmentation in CCP1 null cells and in neurons from mice, and we documented reduced mitochondrial fusion in cells lacking CCP1. We examined the effect of tubulin hyperglutamylation on microtubule-mediated mitochondrial motility in neurons and noted markedly reduced retrograde axonal transport. Mitochondrial stress promoted Parkin-dependent turnover of CCP1, and CCP1 and Parkin physically interacted. Our results indicate that CCP1 regulates mitochondrial motility through deglutamylation of tubulin and that loss of CCP1-mediated mitochondrial fusion accounts for the exquisite vulnerability of Purkinje neurons in mice.

摘要

神经退行性疾病中的一个令人费解的问题是为什么不同的神经元会退化。浦肯野细胞退化()小鼠表现出小脑浦肯野细胞明显退化的表型。CCP1/Nna1 对微管去谷氨酸化的丧失导致神经退行性变,但机制尚不清楚。在这项研究中,我们在功能丧失模型中调节裂变和融合基因的剂量,发现减少 Drp1 可挽救线粒体碎片化和疾病表型。我们观察到 CCP1 缺失细胞和 小鼠神经元中的线粒体碎片化,并记录到缺乏 CCP1 时线粒体融合减少。我们检查了微管介导的线粒体运动中微管过度谷氨酸化对 神经元的影响,并注意到逆行轴突运输明显减少。线粒体应激促进 Parkin 依赖性 CCP1 周转,CCP1 和 Parkin 相互作用。我们的结果表明,CCP1 通过微管去谷氨酸化来调节线粒体运动,而 CCP1 介导的线粒体融合的丧失导致 小鼠浦肯野神经元的极度脆弱。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0e68/6314562/2c7f8d192f96/JCB_201709028_Fig1.jpg

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