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轮状病毒非结构蛋白的体内相互作用。

In vivo interactions among rotavirus nonstructural proteins.

作者信息

González R A, Torres-Vega M A, López S, Arias C F

机构信息

Departamento de Genética y Fisiología Molecular, Universidad Nacional Autónoma de México, Cuernavaca, Morelos, Mexico.

出版信息

Arch Virol. 1998;143(5):981-96. doi: 10.1007/s007050050347.

DOI:10.1007/s007050050347
PMID:9645203
Abstract

The rotavirus genome encodes six nonstructural (NS) proteins, five of which (NSP1, NSP2, NSP3, NSP5, and NSP6) have been suggested to be involved in a variety of events, such as genome replication, regulation of gene expression, and gene assortment. These NS proteins have been found to be associated with replication complexes that are precursors of the viral core, however, little information is available about the intermolecular interactions that may exist among them. Using the yeast two-hybrid system, which allows the detection of protein-protein interactions in vivo, all possible combinations among the rotavirus NS proteins were tested, and several interactions were observed. NSP1 interacted with the other four proteins tested; NSP3 associated with itself; and NSP5 was found to form homodimers and to interact with NSP6. Co-immunoprecipitation of proteins from rotavirus-infected cells, using hyperimmune sera monospecific for the NS proteins, showed the same interactions for NSP1 as those observed in yeast. Immunofluorescence co-localization analysis of virus-infected epithelial cells revealed that the intracellular distribution of proteins that were seen to interact in yeast had patterns of distribution that would allow such intermolecular interactions to occur. These findings should contribute to the understanding of the role these proteins play in different aspects of the virus replication cycle.

摘要

轮状病毒基因组编码六种非结构(NS)蛋白,其中五种(NSP1、NSP2、NSP3、NSP5和NSP6)被认为参与了多种活动,如基因组复制、基因表达调控和基因分类。已发现这些NS蛋白与作为病毒核心前体的复制复合体相关,然而,关于它们之间可能存在的分子间相互作用的信息却很少。利用酵母双杂交系统(该系统可在体内检测蛋白质-蛋白质相互作用),对轮状病毒NS蛋白之间的所有可能组合进行了测试,并观察到了几种相互作用。NSP1与所测试的其他四种蛋白相互作用;NSP3与自身结合;并且发现NSP5形成同二聚体并与NSP6相互作用。使用对NS蛋白具有单特异性的超免疫血清对轮状病毒感染细胞中的蛋白质进行免疫共沉淀,结果显示NSP1的相互作用与在酵母中观察到的相同。对病毒感染的上皮细胞进行免疫荧光共定位分析发现,在酵母中被观察到相互作用的蛋白质在细胞内的分布模式能够使这种分子间相互作用发生。这些发现应有助于理解这些蛋白在病毒复制周期不同方面所起的作用。

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