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塞尼卡谷病毒衣壳蛋白的冷冻电子显微镜结构。

Cryo-Electron Microscopy Structure of Seneca Valley Virus Procapsid.

机构信息

Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School, Boston, Massachusetts, USA.

Department of Microbiology and Immunology, University of Otago, Dunedin, New Zealand.

出版信息

J Virol. 2018 Feb 26;92(6). doi: 10.1128/JVI.01927-17. Print 2018 Mar 15.

Abstract

Seneca Valley virus (SVV), like some other members of the , forms naturally occurring empty capsids, known as procapsids. Procapsids have the same antigenicity as full virions, so they present an interesting possibility for the formation of stable virus-like particles. Interestingly, although SVV is a livestock pathogen, it has also been found to preferentially infect tumor cells and is being explored for use as a therapeutic agent in the treatment of small-cell lung cancers. Here we used cryo-electron microscopy to investigate the procapsid structure and describe the transition of capsid protein VP0 to the cleaved forms of VP4 and VP2. We show that the SVV receptor binds the procapsid, as evidence of its native antigenicity. In comparing the procapsid structure to that of the full virion, we also show that a cage of RNA serves to stabilize the inside surface of the virus, thereby making it more acid stable. Viruses are extensively studied to help us understand infection and disease. One of the by-products of some virus infections are the naturally occurring empty virus capsids (containing no genome), termed procapsids, whose function remains unclear. Here we investigate the structure and formation of the procapsids of Seneca Valley virus, to better understand how they form, what causes them to form, how they behave, and how we can make use of them. One potential benefit of this work is the modification of the procapsid to develop it for targeted delivery of therapeutics or to make a stable vaccine against SVV, which could be of great interest to the agricultural industry.

摘要

森那布病毒(SVV)与其他一些 成员一样,会自然形成空衣壳,称为前衣壳。前衣壳具有与完整病毒粒子相同的抗原性,因此它们为形成稳定的类似病毒颗粒提供了一个有趣的可能性。有趣的是,尽管 SVV 是一种家畜病原体,但它也被发现优先感染肿瘤细胞,并且正在探索将其用作治疗小细胞肺癌的治疗剂。在这里,我们使用冷冻电子显微镜研究了前衣壳的结构,并描述了衣壳蛋白 VP0 向切割形式 VP4 和 VP2 的转变。我们表明,SVV 受体结合前衣壳,证明其具有天然的抗原性。在将前衣壳结构与完整病毒粒子的结构进行比较时,我们还表明,RNA 笼有助于稳定病毒的内表面,从而使其更耐酸。病毒被广泛研究,以帮助我们了解感染和疾病。一些病毒感染的副产品是天然存在的空病毒衣壳(不含基因组),称为前衣壳,其功能尚不清楚。在这里,我们研究了森那布病毒的前衣壳的结构和形成,以更好地了解它们如何形成、是什么导致它们形成、它们的行为方式以及我们如何利用它们。这项工作的一个潜在好处是对前衣壳进行修饰,以开发针对 SVV 的靶向递药或制造稳定的 SVV 疫苗,这可能对农业行业具有很大的兴趣。

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