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马尔堡病毒的VP24影响感染性颗粒的形成。

VP24 of Marburg virus influences formation of infectious particles.

作者信息

Bamberg Sandra, Kolesnikova Larissa, Möller Peggy, Klenk Hans-Dieter, Becker Stephan

机构信息

Institut für Virologie der Philipps-Universität Marburg, Robert-Koch-Strasse 17, D-35037 Marburg, Germany.

出版信息

J Virol. 2005 Nov;79(21):13421-33. doi: 10.1128/JVI.79.21.13421-13433.2005.

DOI:10.1128/JVI.79.21.13421-13433.2005
PMID:16227263
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1262563/
Abstract

The highly pathogenic enveloped Marburg virus (MARV) is composed of seven structural proteins and the nonsegmented negative-sense viral RNA genome. Four proteins (NP, VP35, VP30, and L) make up the helical nucleocapsid, which is surrounded by a matrix that is composed of the viral proteins VP40 and VP24. VP40 is functionally homologous to the matrix proteins of other nonsegmented negative-strand RNA viruses. As yet, the function of VP24 remains elusive. In the present study we found that VP24 colocalized with inclusions in MARV-infected cells that contain preformed nucleocapsids and with nucleocapsids outside the inclusions. Coexpression studies revealed that VP24 is recruited into the inclusions by the presence of NP. Furthermore, VP24 displayed membrane-binding properties and was recruited into filamentous virus-like particles (VLPs) that are induced by VP40. The incorporation of VP24 altered neither the morphology of VLPs nor the budding efficiency of VLPs. When VP24 was silenced in MARV-infected cells by small interfering RNA technology, the release of viral particles was significantly reduced while viral transcription and replication were unimpaired. Our data support the idea that VP24 is essential for a process that takes place after replication and transcription and before budding of virus progeny. It is presumed that VP24 is necessary for the formation of transport-competent nucleocapsids and/or the interaction between the nucleocapsids and the budding sites at the plasma membrane.

摘要

高致病性包膜马尔堡病毒(MARV)由七种结构蛋白和非节段性负链病毒RNA基因组组成。四种蛋白(NP、VP35、VP30和L)构成螺旋核衣壳,其被由病毒蛋白VP40和VP24组成的基质所包围。VP40在功能上与其他非节段性负链RNA病毒的基质蛋白同源。目前,VP24的功能仍不清楚。在本研究中,我们发现VP24与马尔堡病毒感染细胞中含有预先形成的核衣壳的包涵体以及包涵体外的核衣壳共定位。共表达研究表明,NP的存在可将VP24募集到包涵体中。此外,VP24表现出膜结合特性,并被募集到由VP40诱导形成的丝状病毒样颗粒(VLP)中。VP24的掺入既不改变VLP的形态,也不改变VLP的出芽效率。当通过小干扰RNA技术使马尔堡病毒感染细胞中的VP24沉默时,病毒颗粒的释放显著减少,而病毒转录和复制未受影响。我们的数据支持这样一种观点,即VP24对于病毒子代复制和转录后、出芽前发生的一个过程至关重要。据推测,VP24对于形成具有运输能力的核衣壳和/或核衣壳与质膜出芽位点之间的相互作用是必需的。

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The matrix protein of Marburg virus is transported to the plasma membrane along cellular membranes: exploiting the retrograde late endosomal pathway.马尔堡病毒的基质蛋白沿着细胞膜被转运至质膜:利用逆向晚期内体途径。
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RNA interference of influenza virus production by directly targeting mRNA for degradation and indirectly inhibiting all viral RNA transcription.通过直接靶向mRNA进行降解并间接抑制所有病毒RNA转录来实现对流感病毒产生的RNA干扰。
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