冠状病毒生命周期中的转录动力学。

IF 6.4 2区 生物学 Q1 CELL BIOLOGY
Katarzyna Grelewska-Nowotko, Ahmed Eisa Elhag, Tomasz Wojciech Turowski
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引用次数: 0

摘要

冠状病毒利用正义单链RNA,同时作为mRNA和基因组发挥作用。RNA依赖性RNA聚合酶(RdRP)在转录基因和复制基因组中发挥双重作用,使RdRP成为治疗冠状病毒的关键靶点。这篇综述探讨了了解冠状病毒转录机制的最新进展,在病毒感染背景下讨论了它,并纳入了对RdRP活性的动力学考虑。我们还讨论了冠状病毒复制的空间限制,特别是在早期感染阶段,并概述了关于翻译-转录冲突的假设,假设存在解决这些问题的机制。在被冠状病毒感染的细胞中,亚基因组RNA片段(sgRNAs)通过不连续转录产生,合成了大量的结构蛋白。在延伸过程中,RdRP可以跳过病毒基因组的大部分,从而产生更短的sgrna,这反映了病毒结构蛋白的化学计量。尽管不连续转录的确切机制尚不清楚,但我们讨论了最近的假设,包括长距离RNA-RNA相互作用,解旋酶介导的RdRP回溯,RdRP的解离和重新结合以及RdRP二聚化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transcription Kinetics in the Coronavirus Life Cycle.

Coronaviruses utilize a positive-sense single-strand RNA, functioning simultaneously as mRNA and the genome. An RNA-dependent RNA polymerase (RdRP) plays a dual role in transcribing genes and replicating the genome, making RdRP a critical target in therapies against coronaviruses. This review explores recent advancements in understanding the coronavirus transcription machinery, discusses it within virus infection context, and incorporates kinetic considerations on RdRP activity. We also address steric limitations in coronavirus replication, particularly during early infection phases, and outline hypothesis regarding translation-transcription conflicts, postulating the existence of mechanisms that resolve these issues. In cells infected by coronaviruses, abundant structural proteins are synthesized from subgenomic RNA fragments (sgRNAs) produced via discontinuous transcription. During elongation, RdRP can skip large sections of the viral genome, resulting in the creation of shorter sgRNAs that reflects the stoichiometry of viral structural proteins. Although the precise mechanism of discontinuous transcription remains unknown, we discuss recent hypotheses involving long-distance RNA-RNA interactions, helicase-mediated RdRP backtracking, dissociation and reassociation of RdRP, and RdRP dimerization.

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来源期刊
CiteScore
14.80
自引率
4.10%
发文量
67
审稿时长
6-12 weeks
期刊介绍: WIREs RNA aims to provide comprehensive, up-to-date, and coherent coverage of this interesting and growing field, providing a framework for both RNA experts and interdisciplinary researchers to not only gain perspective in areas of RNA biology, but to generate new insights and applications as well. Major topics to be covered are: RNA Structure and Dynamics; RNA Evolution and Genomics; RNA-Based Catalysis; RNA Interactions with Proteins and Other Molecules; Translation; RNA Processing; RNA Export/Localization; RNA Turnover and Surveillance; Regulatory RNAs/RNAi/Riboswitches; RNA in Disease and Development; and RNA Methods.
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