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朊病毒诱导的神经毒性:细胞周期活性和DNA损伤反应的潜在作用。

Prion-induced neurotoxicity: Possible role for cell cycle activity and DNA damage response.

作者信息

Bujdoso Raymond, Landgraf Matthias, Jackson Walker S, Thackray Alana M

机构信息

Raymond Bujdoso, Alana M Thackray, Department of Veterinary Medicine, University of Cambridge, CB3 0ES Cambridge, United Kingdom.

出版信息

World J Virol. 2015 Aug 12;4(3):188-97. doi: 10.5501/wjv.v4.i3.188.

Abstract

Protein misfolding neurodegenerative diseases arise through neurotoxicity induced by aggregation of host proteins. These conditions include Alzheimer's disease, Huntington's disease, Parkinson's disease, motor neuron disease, tauopathies and prion diseases. Collectively, these conditions are a challenge to society because of the increasing aged population and through the real threat to human food security by animal prion diseases. It is therefore important to understand the cellular and molecular mechanisms that underlie protein misfolding-induced neurotoxicity as this will form the basis for designing strategies to alleviate their burden. Prion diseases are an important paradigm for neurodegenerative conditions in general since several of these maladies have now been shown to display prion-like phenomena. Increasingly, cell cycle activity and the DNA damage response are recognised as cellular events that participate in the neurotoxic process of various neurodegenerative diseases, and their associated animal models, which suggests they are truly involved in the pathogenic process and are not merely epiphenomena. Here we review the role of cell cycle activity and the DNA damage response in neurodegeneration associated with protein misfolding diseases, and suggest that these events contribute towards prion-induced neurotoxicity. In doing so, we highlight PrP transgenic Drosophila as a tractable model for the genetic analysis of transmissible mammalian prion disease.

摘要

蛋白质错误折叠神经退行性疾病是由宿主蛋白聚集诱导的神经毒性引起的。这些病症包括阿尔茨海默病、亨廷顿病、帕金森病、运动神经元病、tau蛋白病和朊病毒病。总体而言,由于人口老龄化加剧以及动物朊病毒病对人类食品安全构成的实际威胁,这些病症对社会构成了挑战。因此,了解蛋白质错误折叠诱导神经毒性的细胞和分子机制非常重要,因为这将为设计减轻其负担的策略奠定基础。朊病毒病是一般神经退行性疾病的重要范例,因为现在已经证明其中几种疾病表现出朊病毒样现象。越来越多的研究表明,细胞周期活性和DNA损伤反应是参与各种神经退行性疾病及其相关动物模型神经毒性过程的细胞事件,这表明它们确实参与了致病过程,而不仅仅是附带现象。在这里,我们综述了细胞周期活性和DNA损伤反应在与蛋白质错误折叠疾病相关的神经退行性变中的作用,并表明这些事件促成了朊病毒诱导的神经毒性。在此过程中,我们强调PrP转基因果蝇是用于可传播的哺乳动物朊病毒病遗传分析的易于处理的模型。

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