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Generation of Recombinant Oropouche Viruses Lacking the Nonstructural Protein NSm or NSs.缺乏非结构蛋白NSm或NSs的重组奥罗普切病毒的产生。
J Virol. 2015 Dec 23;90(5):2616-27. doi: 10.1128/JVI.02849-15.
2
Arenavirus stable signal peptide is the keystone subunit for glycoprotein complex organization.沙粒病毒稳定信号肽是糖蛋白复合体组装的关键亚基。
mBio. 2014 Oct 28;5(6):e02063. doi: 10.1128/mBio.02063-14.
3
Mechanism, specificity, and physiology of signal peptide peptidase (SPP) and SPP-like proteases.信号肽肽酶(SPP)及类信号肽肽酶的作用机制、特异性和生理学特性
Biochim Biophys Acta. 2013 Dec;1828(12):2828-39. doi: 10.1016/j.bbamem.2013.03.033.
4
New role of signal peptide peptidase to liberate C-terminal peptides for MHC class I presentation.信号肽肽酶释放 MHC Ⅰ类呈递的 C 端肽的新作用。
J Immunol. 2013 Oct 15;191(8):4020-8. doi: 10.4049/jimmunol.1301496. Epub 2013 Sep 18.
5
Orthobunyavirus ultrastructure and the curious tripodal glycoprotein spike.正粘病毒超微结构与奇特的三足糖蛋白刺突
PLoS Pathog. 2013;9(5):e1003374. doi: 10.1371/journal.ppat.1003374. Epub 2013 May 16.
6
Deep sequencing analysis of defective genomes of parainfluenza virus 5 and their role in interferon induction.副流感病毒 5 缺陷基因组的深度测序分析及其在干扰素诱导中的作用。
J Virol. 2013 May;87(9):4798-807. doi: 10.1128/JVI.03383-12. Epub 2013 Feb 28.
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Establishment of a reverse genetics system for Schmallenberg virus, a newly emerged orthobunyavirus in Europe.建立一个用于 Schmallenberg 病毒的反向遗传学系统,该病毒是在欧洲新出现的正布尼亚病毒。
J Gen Virol. 2013 Apr;94(Pt 4):851-859. doi: 10.1099/vir.0.049981-0. Epub 2012 Dec 19.
8
The biology and therapeutic targeting of the proprotein convertases.蛋白转化酶的生物学与治疗靶向。
Nat Rev Drug Discov. 2012 May;11(5):367-83. doi: 10.1038/nrd3699.
9
Silencing or stimulation? siRNA delivery and the immune system.沉默还是刺激?siRNA 递呈与免疫系统
Annu Rev Chem Biomol Eng. 2011;2:77-96. doi: 10.1146/annurev-chembioeng-061010-114133.
10
Signal peptidase I: cleaving the way to mature proteins.信号肽酶 I:切开成熟蛋白之路。
Protein Sci. 2012 Jan;21(1):13-25. doi: 10.1002/pro.757. Epub 2011 Nov 22.

布尼亚姆韦拉正布尼亚病毒糖蛋白前体由细胞信号肽酶和信号肽内肽酶加工处理。

Bunyamwera orthobunyavirus glycoprotein precursor is processed by cellular signal peptidase and signal peptide peptidase.

作者信息

Shi Xiaohong, Botting Catherine H, Li Ping, Niglas Mark, Brennan Benjamin, Shirran Sally L, Szemiel Agnieszka M, Elliott Richard M

机构信息

Medical Research Council-University of Glasgow Centre for Virus Research, University of Glasgow, Glasgow G61 1QH, United Kingdom;

Biomedical Sciences Research Complex, University of St. Andrews, St. Andrews KY16 9ST, United Kingdom.

出版信息

Proc Natl Acad Sci U S A. 2016 Aug 2;113(31):8825-30. doi: 10.1073/pnas.1603364113. Epub 2016 Jul 20.

DOI:10.1073/pnas.1603364113
PMID:27439867
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4978261/
Abstract

The M genome segment of Bunyamwera virus (BUNV)-the prototype of both the Bunyaviridae family and the Orthobunyavirus genus-encodes the glycoprotein precursor (GPC) that is proteolytically cleaved to yield two viral structural glycoproteins, Gn and Gc, and a nonstructural protein, NSm. The cleavage mechanism of orthobunyavirus GPCs and the host proteases involved have not been clarified. In this study, we investigated the processing of BUNV GPC and found that both NSm and Gc proteins were cleaved at their own internal signal peptides (SPs), in which NSm domain I functions as SP(NSm) and NSm domain V as SP(Gc) Moreover, the domain I was further processed by a host intramembrane-cleaving protease, signal peptide peptidase, and is required for cell fusion activities. Meanwhile, the NSm domain V (SP(Gc)) remains integral to NSm, rendering the NSm topology as a two-membrane-spanning integral membrane protein. We defined the cleavage sites and boundaries between the processed proteins as follows: Gn, from residue 17-312 or nearby residues; NSm, 332-477; and Gc, 478-1433. Our data clarified the mechanism of the precursor cleavage process, which is important for our understanding of viral glycoprotein biogenesis in the genus Orthobunyavirus and thus presents a useful target for intervention strategies.

摘要

布尼亚姆韦拉病毒(BUNV)的M基因组片段——布尼亚病毒科和正布尼亚病毒属的原型——编码糖蛋白前体(GPC),该前体经蛋白水解切割产生两种病毒结构糖蛋白Gn和Gc以及一种非结构蛋白NSm。正布尼亚病毒GPC的切割机制以及所涉及的宿主蛋白酶尚未阐明。在本研究中,我们研究了BUNV GPC的加工过程,发现NSm和Gc蛋白均在其自身的内部信号肽(SP)处被切割,其中NSm结构域I作为SP(NSm),NSm结构域V作为SP(Gc)。此外,结构域I进一步由宿主膜内切割蛋白酶信号肽肽酶进行加工,并且是细胞融合活性所必需的。同时,NSm结构域V(SP(Gc))与NSm保持完整,使NSm拓扑结构成为一种跨膜两次的整合膜蛋白。我们将加工后蛋白质之间的切割位点和边界定义如下:Gn,从第17至312位残基或附近残基;NSm,332 - 477;Gc,478 - 1433。我们的数据阐明了前体切割过程的机制,这对于我们理解正布尼亚病毒属中的病毒糖蛋白生物合成很重要,因此为干预策略提供了一个有用的靶点。