帕金森病的线粒体病理。

Anthony H V Schapira
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引用次数: 73

摘要

在过去的25年里,我们对帕金森病的病因和发病机制的了解取得了显著的进展。对帕金森病死后大脑进行详细生化分析的能力使线粒体和自由基代谢缺陷的识别成为可能。在α -突触核蛋白中发现了帕金森病的第一个基因突变,开启了该疾病的遗传时代,随后又发现了导致帕金森病的几个基因突变,撰写本文时为15个。测序技术和软件分析方面的技术进步使得足够大的关联研究能够准确地描述导致帕金森病风险增加的基因。令人惊讶的是,这两个独立的学科(生物化学和遗传学)在强调相同途径(即线粒体功能障碍和自由基代谢)的重要性方面的融合。其他途径在发病机制中也很重要,包括蛋白质周转、炎症和翻译后修饰,特别是蛋白质磷酸化和泛素化。然而,即使这些额外的途径彼此重叠,也与线粒体功能障碍和氧化应激重叠。这篇综述探讨了这些概念与线粒体参与特别相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mitochondrial pathology in Parkinson's disease.

The last 25 years have witnessed remarkable advances in our understanding of the etiology and pathogenesis of Parkinson's disease. The ability to undertake detailed biochemical analyses of the Parkinson's disease postmortem brain enabled the identification of defects of mitochondrial and free-radical metabolism. The discovery of the first gene mutation for Parkinson's disease, in alpha-synuclein, ushered in the genetic era for the disease and the subsequent finding of several gene mutations causing parkinsonism, 15 at the time of writing. Technological advances both in sequencing technology and software analysis have allowed association studies of sufficiently large size accurately to describe genes conferring an increased risk for Parkinson's disease. What has been so surprising is the convergence of these 2 separate disciplines (biochemistry and genetics) in terms of reinforcing the importance of the same pathways (ie, mitochondrial dysfunction and free-radical metabolism). Other pathways are also important in pathogenesis, including protein turnover, inflammation, and post-translational modification, particularly protein phosphorylation and ubiquitination. However, even these additional pathways overlap with each other and with those of mitochondrial dysfunction and oxidative stress. This review explores these concepts with particular relevance to mitochondrial involvement.

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来源期刊
Mount Sinai Journal of Medicine
Mount Sinai Journal of Medicine 医学-医学:内科
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1
审稿时长
6-12 weeks
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