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非洲马瘟病毒主要核心蛋白VP7细胞内定位、聚集及颗粒形成的双激光扫描共聚焦和透射电子显微镜分析

A Dual Laser Scanning Confocal and Transmission Electron Microscopy Analysis of the Intracellular Localization, Aggregation and Particle Formation of African Horse Sickness Virus Major Core Protein VP7.

作者信息

Wall Gayle V, Rutkowska Daria A, Mizrachi Eshchar, Huismans Henk, van Staden Vida

机构信息

Department of Genetics,University of Pretoria,Pretoria,0002,South Africa.

出版信息

Microsc Microanal. 2017 Feb;23(1):56-68. doi: 10.1017/S143192761601268X. Epub 2017 Jan 23.

DOI:10.1017/S143192761601268X
PMID:28112080
Abstract

The bulk of the major core protein VP7 in African horse sickness virus (AHSV) self-assembles into flat, hexagonal crystalline particles in a process appearing unrelated to viral replication. Why this unique characteristic of AHSV VP7 is genetically conserved, and whether VP7 aggregation and particle formation have an effect on cellular biology or the viral life cycle, is unknown. Here we investigated how different small peptide and enhanced green fluorescent protein (eGFP) insertions into the VP7 top domain affected VP7 localization, aggregation, and particle formation. This was done using a dual laser scanning confocal and transmission electron microscopy approach in conjunction with analyses of the solubility, aggregation, and fluorescence profiles of the proteins. VP7 top domain modifications did not prevent trimerization, or intracellular trafficking, to one or two discrete sites in the cell. However, modifications that resulted in a misfolded and insoluble VP7-eGFP component blocked trafficking, and precluded protein accumulation at a single cellular site, perhaps by interfering with normal trimer-trimer interactions. Furthermore, the modifications disrupted the stable layering of the trimers into characteristic AHSV VP7 crystalline particles. It was concluded that VP7 trafficking is driven by a balance between VP7 solubility, trimer forming ability, and trimer-trimer interactions.

摘要

非洲马瘟病毒(AHSV)的主要核心蛋白VP7大部分会自行组装成扁平的六边形晶体颗粒,这一过程似乎与病毒复制无关。AHSV VP7的这种独特特性为何在基因上得以保守,以及VP7的聚集和颗粒形成是否会对细胞生物学或病毒生命周期产生影响,目前尚不清楚。在此,我们研究了在VP7顶部结构域插入不同的小肽和增强型绿色荧光蛋白(eGFP)如何影响VP7的定位、聚集和颗粒形成。这是通过双激光扫描共聚焦和透射电子显微镜方法,并结合对蛋白质的溶解度、聚集和荧光谱分析来完成的。VP7顶部结构域的修饰并未阻止三聚化或细胞内运输至细胞内的一个或两个离散位点。然而,导致VP7-eGFP成分错误折叠和不溶的修饰会阻断运输,并阻止蛋白质在单个细胞位点积累,这可能是通过干扰正常的三聚体-三聚体相互作用实现的。此外,这些修饰破坏了三聚体稳定分层形成特征性AHSV VP7晶体颗粒。得出的结论是,VP7的运输是由VP7溶解度、三聚体形成能力和三聚体-三聚体相互作用之间的平衡驱动的。

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引用本文的文献

1
Generation of a Soluble African Horse Sickness Virus VP7 Protein Capable of Forming Core-like Particles.生成一种可溶的非洲马瘟病毒 VP7 蛋白,能够形成核心样颗粒。
Viruses. 2022 Jul 26;14(8):1624. doi: 10.3390/v14081624.