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Assembly of alphavirus replication complexes from RNA and protein components in a novel trans-replication system in mammalian cells.在哺乳动物细胞中的新型反式复制系统中,通过 RNA 和蛋白组分组装甲病毒复制复合物。
J Virol. 2011 May;85(10):4739-51. doi: 10.1128/JVI.00085-11. Epub 2011 Mar 9.
2
Functional Sindbis virus replicative complexes are formed at the plasma membrane.功能性辛德毕斯病毒复制复合物在质膜上形成。
J Virol. 2010 Nov;84(22):11679-95. doi: 10.1128/JVI.01441-10. Epub 2010 Sep 8.
3
Membrane-shaping host reticulon proteins play crucial roles in viral RNA replication compartment formation and function.膜重塑宿主 reticulon 蛋白在病毒 RNA 复制隔间的形成和功能中发挥着关键作用。
Proc Natl Acad Sci U S A. 2010 Sep 14;107(37):16291-6. doi: 10.1073/pnas.1011105107. Epub 2010 Aug 30.
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Cytoplasmic viral replication complexes.细胞质病毒复制复合物。
Cell Host Microbe. 2010 Jul 22;8(1):77-85. doi: 10.1016/j.chom.2010.06.010.
5
Optimization of formaldehyde cross-linking for protein interaction analysis of non-tagged integrin beta1.用于非标记整合素β1蛋白相互作用分析的甲醛交联优化
J Biomed Biotechnol. 2010;2010:927585. doi: 10.1155/2010/927585. Epub 2010 Jun 28.
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Cryo-EM model of the bullet-shaped vesicular stomatitis virus.子弹状口蹄疫病毒的冷冻电镜模型。
Science. 2010 Feb 5;327(5966):689-93. doi: 10.1126/science.1181766.
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NTPase and 5' to 3' RNA duplex-unwinding activities of the hepatitis E virus helicase domain.戊型肝炎病毒解旋酶结构域的 NTPase 和 5' 到 3' RNA 双链解旋活性。
J Virol. 2010 Apr;84(7):3595-602. doi: 10.1128/JVI.02130-09. Epub 2010 Jan 13.
8
Structure and assembly of immature HIV.未成熟HIV的结构与组装
Proc Natl Acad Sci U S A. 2009 Jul 7;106(27):11090-5. doi: 10.1073/pnas.0903535106. Epub 2009 Jun 22.
9
An amphipathic alpha-helix controls multiple roles of brome mosaic virus protein 1a in RNA replication complex assembly and function.一个两亲性α螺旋控制着雀麦花叶病毒蛋白1a在RNA复制复合体组装和功能中的多种作用。
PLoS Pathog. 2009 Mar;5(3):e1000351. doi: 10.1371/journal.ppat.1000351. Epub 2009 Mar 27.
10
SARS-coronavirus replication is supported by a reticulovesicular network of modified endoplasmic reticulum.严重急性呼吸综合征冠状病毒的复制由修饰内质网的网状囊泡网络支持。
PLoS Biol. 2008 Sep 16;6(9):e226. doi: 10.1371/journal.pbio.0060226.

Bromovirus RNA 复制隔间的形成需要 1a 自我相互作用的 RNA 加帽和解旋酶结构域的协同作用。

Bromovirus RNA replication compartment formation requires concerted action of 1a's self-interacting RNA capping and helicase domains.

机构信息

Institute for Molecular Virologya and Howard Hughes Medical Institute, Madison, Madison, Wisconsin 53706, USA.

出版信息

J Virol. 2012 Jan;86(2):821-34. doi: 10.1128/JVI.05684-11. Epub 2011 Nov 16.

DOI:10.1128/JVI.05684-11
PMID:22090102
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3255829/
Abstract

All positive-strand RNA viruses replicate their genomes in association with rearranged intracellular membranes such as single- or double-membrane vesicles. Brome mosaic virus (BMV) RNA synthesis occurs in vesicular endoplasmic reticulum (ER) membrane invaginations, each induced by many copies of viral replication protein 1a, which has N-terminal RNA capping and C-terminal helicase domains. Although the capping domain is responsible for 1a membrane association and ER targeting, neither this domain nor the helicase domain was sufficient to induce replication vesicle formation. Moreover, despite their potential for mutual interaction, the capping and helicase domains showed no complementation when coexpressed in trans. Cross-linking showed that the capping and helicase domains each form trimers and larger multimers in vivo, and the capping domain formed extended, stacked, hexagonal lattices in vivo. Furthermore, coexpressing the capping domain blocked the ability of full-length 1a to form replication vesicles and replicate RNA and recruited full-length 1a into mixed hexagonal lattices with the capping domain. Thus, BMV replication vesicle formation and RNA replication depend on the direct linkage and concerted action of 1a's self-interacting capping and helicase domains. In particular, the capping domain's strong dominant-negative effects showed that the ability of full-length 1a to form replication vesicles was highly sensitive to disruption by non-productively titrating lattice-forming self-interactions of the capping domain. These and other findings shed light on the roles and interactions of 1a domains in replication compartment formation and support prior results suggesting that 1a induces replication vesicles by forming a capsid-like interior shell.

摘要

所有正链 RNA 病毒都在重新排列的细胞内膜(如单或双层囊泡)的协助下复制基因组。雀麦花叶病毒 (BMV) 的 RNA 合成发生在囊泡内质网膜内陷处,每个内陷由多个病毒复制蛋白 1a 分子诱导,该蛋白具有 N 端 RNA 加帽和 C 端解旋酶结构域。虽然加帽结构域负责 1a 与膜的结合和内质网的靶向,但该结构域和解旋酶结构域都不足以诱导复制囊泡的形成。此外,尽管它们具有相互作用的潜力,但在转染共表达时,加帽和解旋酶结构域都没有互补作用。交联实验表明,加帽和解旋酶结构域在体内各自形成三聚体和更大的多聚体,加帽结构域在体内形成延伸的、堆叠的、六方晶格。此外,共表达加帽结构域会阻止全长 1a 形成复制囊泡和复制 RNA 的能力,并将全长 1a 募集到与加帽结构域形成的混合六方晶格中。因此,BMV 复制囊泡的形成和 RNA 复制依赖于 1a 自我相互作用的加帽和解旋酶结构域的直接连接和协同作用。特别是,加帽结构域的强显性负效应表明,全长 1a 形成复制囊泡的能力对加帽结构域非生产性地滴定晶格形成的自我相互作用的干扰非常敏感。这些和其他发现揭示了 1a 结构域在复制区室形成中的作用和相互作用,并支持先前的结果,表明 1a 通过形成类似衣壳的内部壳来诱导复制囊泡的形成。