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哺乳动物呼肠孤病毒聚合酶复合物的原位结构阐明了 RdRp 的激活和转录调控。

In situ structures of polymerase complex of mammalian reovirus illuminate RdRp activation and transcription regulation.

机构信息

National Laboratory of Biomacromolecules, CAS Center for Excellence in Biomacromolecules, Institute of Biophysics, Chinese Academy of Sciences, Beijing 100101, China.

University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Proc Natl Acad Sci U S A. 2022 Dec 13;119(50):e2203054119. doi: 10.1073/pnas.2203054119. Epub 2022 Dec 5.

Abstract

Mammalian reovirus (reovirus) is a multilayered, turreted member of characterized by transcription of dsRNA genome within the innermost capsid shell. Here, we present high-resolution in situ structures of reovirus transcriptase complex in an intact double-layered virion, and in the uncoated single-layered core particles in the unloaded, reloaded, pre-elongation, and elongation states, respectively, obtained by cryo-electron microscopy and sub-particle reconstructions. At the template entry of RNA-dependent RNA polymerase (RdRp), the RNA-loading region gets flexible after uncoating resulting in the unloading of terminal genomic RNA and inactivity of transcription. However, upon adding transcriptional substrates, the RNA-loading region is recovered leading the RNAs loaded again. The priming loop in RdRp was found to play a critical role in regulating transcription, which hinders the elongation of transcript in virion and triggers the rearrangement of RdRp C-terminal domain (CTD) during elongation, resulting in splitting of template-transcript hybrid and opening of transcript exit. With the integration of these structures, a transcriptional model of reovirus with five states is proposed. Our structures illuminate the RdRp activation and regulation of the multilayered turreted reovirus.

摘要

哺乳动物呼肠孤病毒(reovirus)是一种具有多层塔式结构的病毒,其双链 RNA 基因组在最内层衣壳壳体内转录。在这里,我们通过冷冻电镜和亚颗粒重建,分别展示了完整双层病毒体中呼肠孤病毒转录酶复合物的高分辨率原位结构,以及未包被的单层核心颗粒在空载、再装载、预延伸和延伸状态下的结构。在 RNA 依赖的 RNA 聚合酶(RdRp)的模板进入部位,脱壳后 RNA 加载区域变得灵活,导致末端基因组 RNA 卸载和转录失活。然而,在添加转录底物后,RNA 加载区域得到恢复,导致再次加载 RNA。RdRp 中的引发环被发现在调节转录中起着关键作用,它阻碍了病毒体内转录物的延伸,并在延伸过程中触发 RdRp C 末端结构域(CTD)的重排,导致模板-转录物杂交体的分裂和转录物出口的打开。通过整合这些结构,提出了一个具有五个状态的呼肠孤病毒转录模型。我们的结构阐明了多层塔式呼肠孤病毒中 RdRp 的激活和调节。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d812/9897473/8849145eb347/pnas.2203054119fig01.jpg

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