重塑正链RNA病毒反向遗传学。

2区 医学 Q1 Medicine
Brett D Lindenbach
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引用次数: 2

摘要

反向遗传学是对基因型如何决定表型的前瞻性分析。在一个典型的实验中,研究人员改变病毒基因组,然后观察表型结果。在RNA病毒中,该方法于20世纪70年代中期首次应用于正链RNA病毒,近50年来已成为一种强大而广泛应用的方法,用于解剖病毒复制和发病机制。在此期间,黄病毒属(黄病毒属,黄病毒科)和乙型冠状病毒属(乙型冠状病毒属,正冠状病毒亚科,冠状病毒科)这两类病毒对全球卫生的重要性急剧增加,但这些病毒的基因组在技术上难以操作。因此,已经开发了几种新技术来克服这些挑战。在这里,我简要回顾了正链RNA病毒反向遗传学的关键历史方面,描述了一些最近的反向遗传学创新,特别是应用于黄病毒和冠状病毒,并在严格的遗传分析的大背景下讨论了它们的优点和局限性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Reinventing positive-strand RNA virus reverse genetics.

Reinventing positive-strand RNA virus reverse genetics.

Reinventing positive-strand RNA virus reverse genetics.

Reinventing positive-strand RNA virus reverse genetics.

Reverse genetics is the prospective analysis of how genotype determines phenotype. In a typical experiment, a researcher alters a viral genome, then observes the phenotypic outcome. Among RNA viruses, this approach was first applied to positive-strand RNA viruses in the mid-1970s and over nearly 50 years has become a powerful and widely used approach for dissecting the mechanisms of viral replication and pathogenesis. During this time the global health importance of two virus groups, flaviviruses (genus Flavivirus, family Flaviviridae) and betacoronaviruses (genus Betacoronavirus, subfamily Orthocoronavirinae, family Coronaviridae), have dramatically increased, yet these viruses have genomes that are technically challenging to manipulate. As a result, several new techniques have been developed to overcome these challenges. Here I briefly review key historical aspects of positive-strand RNA virus reverse genetics, describe some recent reverse genetic innovations, particularly as applied to flaviviruses and coronaviruses, and discuss their benefits and limitations within the larger context of rigorous genetic analysis.

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来源期刊
CiteScore
7.10
自引率
0.00%
发文量
7
审稿时长
>12 weeks
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