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冠状病毒复制酶非结构蛋白 14 核酸外切酶的蛋白水解加工对于病毒复制不是必需的,但会改变 RNA 合成和病毒适应性。

Proteolytic Processing of the Coronavirus Replicase Nonstructural Protein 14 Exonuclease Is Not Required for Virus Replication but Alters RNA Synthesis and Viral Fitness.

机构信息

Department of Pediatrics, Vanderbilt University Medical Centergrid.412807.8, Nashville, Tennessee, USA.

Department of Pathology, Microbiology, and Immunology, Vanderbilt University Medical Centergrid.412807.8, Nashville, Tennessee, USA.

出版信息

J Virol. 2022 Aug 24;96(16):e0084122. doi: 10.1128/jvi.00841-22. Epub 2022 Aug 4.

Abstract

Coronaviruses (CoVs) initiate replication by translation of the positive-sense RNA genome into the replicase polyproteins connecting 16 nonstructural protein domains (nsp1-16), which are subsequently processed by viral proteases to yield mature nsp. For the betacoronavirus murine hepatitis virus (MHV), total inhibition of translation or proteolytic processing of replicase polyproteins results in rapid cessation of RNA synthesis. The nsp5-3CLpro (Mpro) processes nsps7-16, which assemble into functional replication-transcription complexes (RTCs), including the enzymatic nsp12-RdRp and nsp14-exoribonuclease (ExoN)/N7-methyltransferase. The nsp14-ExoN activity mediates RNA-dependent RNA proofreading, high-fidelity RNA synthesis, and replication. To date, the solved partial RTC structures, biochemistry, and models use or assume completely processed, mature nsp. Here, we demonstrate that in MHV, engineered deletion of the cleavage sites between nsp13-14 and nsp14-15 allowed recovery of replication-competent virus. Compared to wild-type (WT) MHV, the nsp13-14 and nsp14-15 cleavage deletion mutants demonstrated delayed replication kinetics, impaired genome production, altered abundance and patterns of recombination, and impaired competitive fitness. Further, the nsp13-14 and nsp14-15 mutant viruses demonstrated mutation frequencies that were significantly higher than with the WT. The results demonstrate that cleavage of nsp13-14 or nsp14-15 is not required for MHV viability and that functions of the RTC/nsp14-ExoN are impaired when assembled with noncleaved intermediates. These data will inform future genetic, structural, biochemical, and modeling studies of coronavirus RTCs and nsp 13, 14, and 15 and may reveal new approaches for inhibition or attenuation of CoV infection. Coronavirus replication requires proteolytic maturation of the nonstructural replicase proteins to form the replication-transcription complex. Coronavirus replication-transcription complex models assume mature subunits; however, mechanisms of coronavirus maturation and replicase complex formation have yet to be defined. Here, we show that for the coronavirus murine hepatitis virus, cleavage between the nonstructural replicase proteins nsp13-14 and nsp14-15 is not required for replication but does alter RNA synthesis and recombination. These results shed new light on the requirements for coronavirus maturation and replication-transcription complex assembly, and they may reveal novel therapeutic targets and strategies for attenuation.

摘要

冠状病毒(CoV)通过将正链 RNA 基因组翻译为连接 16 个非结构蛋白域(nsp1-16)的复制酶多聚蛋白来启动复制,随后病毒蛋白酶将其加工为成熟的 nsp。对于β冠状病毒鼠肝炎病毒(MHV),复制酶多聚蛋白的翻译或蛋白水解加工的完全抑制会导致 RNA 合成的快速停止。nsp5-3CLpro(Mpro)加工 nsps7-16,这些 nsp 组装成功能性复制-转录复合物(RTC),包括酶 nsp12-RdRp 和 nsp14-外切核酸酶(ExoN)/N7-甲基转移酶。nsp14-ExoN 活性介导 RNA 依赖性 RNA 校对、高保真 RNA 合成和复制。迄今为止,已解决的部分 RTC 结构、生物化学和模型使用或假设完全加工的成熟 nsp。在这里,我们证明在 MHV 中,工程删除 nsp13-14 和 nsp14-15 之间的切割位点允许恢复具有复制能力的病毒。与野生型(WT)MHV 相比,nsp13-14 和 nsp14-15 切割缺失突变体显示出复制动力学延迟、基因组产生受损、重组丰度和模式改变以及竞争适应性受损。此外,nsp13-14 和 nsp14-15 突变病毒的突变频率明显高于 WT。结果表明,nsp13-14 或 nsp14-15 的切割对于 MHV 的存活不是必需的,并且当与未切割的中间产物组装时,RTC/nsp14-ExoN 的功能受损。这些数据将为冠状病毒 RTC 和 nsp13、14 和 15 的遗传、结构、生化和建模研究提供信息,并可能为抑制或减弱 CoV 感染提供新的方法。冠状病毒复制需要非结构复制酶蛋白的蛋白水解成熟才能形成复制-转录复合物。冠状病毒复制-转录复合物模型假设成熟的亚基;然而,冠状病毒成熟和复制酶复合物形成的机制尚未确定。在这里,我们表明对于冠状病毒鼠肝炎病毒,非结构复制酶蛋白 nsp13-14 和 nsp14-15 之间的切割对于复制不是必需的,但会改变 RNA 合成和重组。这些结果为冠状病毒成熟和复制-转录复合物组装的要求提供了新的见解,并且可能揭示了新型治疗靶标和减弱策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d4b7/9400476/8028afb941dc/jvi.00841-22-f001.jpg

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