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异常自噬与帕金森病:纠正异常能否挽救疾病进展?

Aberrant autophagy and parkinsonism: does correction rescue from disease progression?

作者信息

Mishra Abhishek Kumar, ur Rasheed Mohd Sami, Shukla Saurabh, Tripathi Manish Kumar, Dixit Anubhuti, Singh Mahendra Pratap

机构信息

CSIR-Indian Institute of Toxicology Research, Mahatma Gandhi Marg, Post Box No. 80, Lucknow, 226 001, Uttar Pradesh, India.

出版信息

Mol Neurobiol. 2015;51(3):893-908. doi: 10.1007/s12035-014-8744-3. Epub 2014 May 16.

Abstract

Information generated from animal models, genome sequencing, and high-throughput technologies provide valuable sequence of events to understand the Parkinson's disease (PD) pathogenesis. A dynamic equilibrium between biosynthesis and biodegradation of sub-cellular components by ubiquitin proteasome system and autophagy is found to be responsible for sustaining the homeostasis of tyrosine hydroxylase-positive neurons. Autophagy degrades and eliminates α-synuclein, Parkin, ubiquitin, etc., proteins along with damaged cellular components to maintain the homeostasis of the nigrostriatal dopaminergic neurons. Aberrant type II apoptosis is widely implicated in dopaminergic neurodegeneration leading to PD. The current article reviews the elementary role of autophagy in the degradation and elimination of superfluous and aggregated proteins and impaired mitochondria. The article also recapitulates the information, which implicated the role of aberrant autophagy in toxin-induced Parkinsonism. Moreover, the review sheds light on whether or not targeting the defective autophagy could reinstate the normal functioning of dopaminergic neurons, which could ultimately rescue from PD pathogenesis.

摘要

从动物模型、基因组测序和高通量技术中获得的信息为理解帕金森病(PD)的发病机制提供了有价值的事件序列。泛素蛋白酶体系统和自噬在亚细胞成分的生物合成和生物降解之间的动态平衡被发现是维持酪氨酸羟化酶阳性神经元稳态的原因。自噬降解并清除α-突触核蛋白、帕金蛋白、泛素等蛋白质以及受损的细胞成分,以维持黑质纹状体多巴胺能神经元的稳态。异常的II型凋亡广泛参与导致PD的多巴胺能神经变性。本文综述了自噬在降解和清除多余和聚集蛋白以及受损线粒体中的基本作用。文章还概述了与异常自噬在毒素诱导的帕金森综合征中的作用相关的信息。此外,该综述还探讨了针对缺陷自噬是否可以恢复多巴胺能神经元的正常功能,这最终可能从PD发病机制中拯救出来。

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