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朊病毒检测扩增研究的设计、实施与解读

Design, implementation, and interpretation of amplification studies for prion detection.

作者信息

Haley Nicholas J, Richt Jürgen A, Davenport Kristen A, Henderson Davin M, Hoover Edward A, Manca Matteo, Caughey Byron, Marthaler Douglas, Bartz Jason, Gilch Sabine

机构信息

a Department of Microbiology and Immunology , Midwestern University , Glendale , AZ , USA.

b College of Veterinary Medicine, Kansas State University (KSU) , Manhattan , KS , USA.

出版信息

Prion. 2018 Mar 4;12(2):73-82. doi: 10.1080/19336896.2018.1443000. Epub 2018 Mar 9.

Abstract

Amplification assays for transmissible spongiform encephalopathies have been in development for close to 15 years, with critical implications for the postmortem and antemortem diagnosis of human and animal prion diseases. Little has been published regarding the structured development, implementation and interpretation of experiments making use of protein misfolding cyclic amplification (PMCA) and real time quaking-induced conversion (RT-QuIC), and our goal with this Perspectives manuscript is to offer a framework which might allow for more efficient expansion of pilot studies into diagnostic trials in both human and animal subjects. This framework is made up of approaches common to diagnostic medicine, including a thorough understanding of analytical and diagnostic sensitivity and specificity, an a priori development of amplification strategy, and an effective experimental design. It is our hope that a structured framework for prion amplification assays will benefit not only experiments seeking to sensitively detect naturally-occurring cases of prion diseases and describe the pathogenesis of TSEs, but ultimately assist with future endeavors seeking to use these methods more broadly for other protein misfolding disorders, including Alzheimer's and Parkinson's disease.

摘要

传染性海绵状脑病的扩增检测方法已经研发了近15年,对人和动物朊病毒疾病的死后诊断和生前诊断具有关键意义。关于利用蛋白质错误折叠循环扩增(PMCA)和实时颤动诱导转化(RT-QuIC)进行实验的结构化开发、实施和解释,相关的发表内容较少。我们撰写这篇观点文章的目的是提供一个框架,使试点研究能够更有效地扩展到人类和动物受试者的诊断试验中。这个框架由诊断医学中常用的方法组成,包括对分析和诊断敏感性及特异性的透彻理解、扩增策略的预先制定以及有效的实验设计。我们希望,朊病毒扩增检测的结构化框架不仅将有益于旨在灵敏检测朊病毒疾病自然发生病例并描述传染性海绵状脑病发病机制的实验,而且最终有助于未来更广泛地将这些方法用于其他蛋白质错误折叠疾病(包括阿尔茨海默病和帕金森病)的研究。

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