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单纯疱疹病毒的病毒体宿主关闭蛋白(Vhs)的包装:Vhs多肽的两种形式与核内B型和C型衣壳相关,但只有一种与包膜病毒体相关。

Packaging of the virion host shutoff (Vhs) protein of herpes simplex virus: two forms of the Vhs polypeptide are associated with intranuclear B and C capsids, but only one is associated with enveloped virions.

作者信息

Read G Sullivan, Patterson Mary

机构信息

School of Biological Sciences, University of Missouri-Kansas City, 5007 Rockhill Road, Kansas City, MO 64110, USA.

出版信息

J Virol. 2007 Feb;81(3):1148-61. doi: 10.1128/JVI.01812-06. Epub 2006 Nov 8.

DOI:10.1128/JVI.01812-06
PMID:17093196
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1797492/
Abstract

The virion host shutoff (Vhs) protein (UL41) is a minor component of herpes simplex virus virions which, following penetration, accelerates turnover of host and viral mRNAs. Infected cells contain 58-kDa and 59.5-kDa forms of Vhs, which differ in the extent of phosphorylation, yet only a 58-kDa polypeptide is incorporated into virions. In pulse-chase experiments, the primary Vhs translation product comigrated in sodium dodecyl sulfate-polyacrylamide gel electrophoresis with the 58-kDa virion polypeptide, and could be chased to 59.5 kDa. While both 59.5-kDa and 58-kDa forms were found in nuclear and cytoplasmic fractions, the 59.5-kDa form was significantly enriched in the nucleus. Both forms were associated with intranuclear B and C capsids, yet only the 58-kDa polypeptide was found in enveloped cytoplasmic virions. A 58-kDa form, but not the 59.5-kDa form, was found in L particles, noninfectious particles that contain an envelope and tegument but no capsid. The data suggest that virions contain two populations of Vhs that are packaged by different pathways. In the first pathway, the primary translation product is processed to 59.5 kDa, is transported to the nucleus, binds intranuclear capsids, and is converted to 58 kDa at some stage prior to final envelopment. The second pathway does not involve the 59.5-kDa form or interactions between Vhs and capsids. Instead, the primary translation product is phosphorylated to the 58-kDa virion form and packaged through interactions with other tegument proteins in the cytoplasm or viral envelope proteins at the site of final envelopment.

摘要

病毒体宿主关闭(Vhs)蛋白(UL41)是单纯疱疹病毒病毒体的次要成分,在病毒穿透后,它会加速宿主和病毒mRNA的周转。受感染的细胞含有58 kDa和59.5 kDa两种形式的Vhs,它们的磷酸化程度不同,但只有58 kDa的多肽被整合到病毒体中。在脉冲追踪实验中,Vhs的主要翻译产物在十二烷基硫酸钠-聚丙烯酰胺凝胶电泳中与58 kDa的病毒体多肽迁移率相同,并且可以追踪到59.5 kDa。虽然在细胞核和细胞质组分中都发现了59.5 kDa和58 kDa两种形式,但59.5 kDa的形式在细胞核中显著富集。两种形式都与核内的B和C衣壳相关,但仅在包膜的细胞质病毒体中发现了58 kDa的多肽。在L颗粒(一种含有包膜和衣壳但无核衣壳的非感染性颗粒)中发现了58 kDa的形式,但未发现59.5 kDa的形式。这些数据表明,病毒体含有两种通过不同途径包装的Vhs群体。在第一条途径中,主要翻译产物被加工成59.5 kDa,转运到细胞核,与核内衣壳结合,并在最终包膜形成前的某个阶段转化为58 kDa。第二条途径不涉及59.5 kDa的形式或Vhs与衣壳之间的相互作用。相反,主要翻译产物被磷酸化为58 kDa的病毒体形式,并通过与细胞质中的其他衣壳蛋白或最终包膜形成部位的病毒包膜蛋白相互作用进行包装。

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1
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Biochim Biophys Acta. 2006 May-Jun;1761(5-6):599-617. doi: 10.1016/j.bbalip.2006.04.007. Epub 2006 May 6.
2
The U(L)41 protein of herpes simplex virus 1 degrades RNA by endonucleolytic cleavage in absence of other cellular or viral proteins.单纯疱疹病毒1型的U(L)41蛋白在没有其他细胞或病毒蛋白的情况下,通过核酸内切酶切割来降解RNA。
Proc Natl Acad Sci U S A. 2006 Feb 21;103(8):2827-32. doi: 10.1073/pnas.0510712103. Epub 2006 Feb 13.
3
Herpes simplex virus tegument protein VP16 is a component of primary enveloped virions.单纯疱疹病毒被膜蛋白VP16是初级包膜病毒体的一个组成部分。
J Virol. 2006 Mar;80(5):2582-4. doi: 10.1128/JVI.80.5.2582-2584.2006.
4
Egress of alphaherpesviruses.甲型疱疹病毒的释放
J Virol. 2006 Feb;80(3):1610-1; author reply 1611-2. doi: 10.1128/JVI.80.3.1610-1612.2006.
5
Movement of eukaryotic mRNAs between polysomes and cytoplasmic processing bodies.真核生物信使核糖核酸在多核糖体与细胞质加工小体之间的移动
Science. 2005 Oct 21;310(5747):486-9. doi: 10.1126/science.1115791. Epub 2005 Sep 1.
6
mRNA decay during herpes simplex virus (HSV) infections: protein-protein interactions involving the HSV virion host shutoff protein and translation factors eIF4H and eIF4A.单纯疱疹病毒(HSV)感染期间的mRNA衰变:涉及HSV病毒体宿主关闭蛋白以及翻译因子eIF4H和eIF4A的蛋白质-蛋白质相互作用
J Virol. 2005 Aug;79(15):9651-64. doi: 10.1128/JVI.79.15.9651-9664.2005.
7
Structural basis for the physiological temperature dependence of the association of VP16 with the cytoplasmic tail of herpes simplex virus glycoprotein H.单纯疱疹病毒糖蛋白H胞质尾与VP16结合的生理温度依赖性的结构基础。
J Virol. 2005 May;79(10):6134-41. doi: 10.1128/JVI.79.10.6134-6141.2005.
8
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9
Budding events in herpesvirus morphogenesis.疱疹病毒形态发生中的出芽事件。
Virus Res. 2004 Dec;106(2):167-80. doi: 10.1016/j.virusres.2004.08.013.
10
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Biochem Soc Trans. 2004 Nov;32(Pt 5):697-701. doi: 10.1042/BST0320697.