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ϕX174原衣壳组装:体外一种抑制性外部支架蛋白和抗性衣壳蛋白的作用

ϕX174 Procapsid Assembly: Effects of an Inhibitory External Scaffolding Protein and Resistant Coat Proteins In Vitro.

作者信息

Cherwa James E, Tyson Joshua, Bedwell Gregory J, Brooke Dewey, Edwards Ashton G, Dokland Terje, Prevelige Peter E, Fane Bentley A

机构信息

Department of Biology, Central Alabama Community College, Alexander City, Alabama, USA

Department of Biology, Central Alabama Community College, Alexander City, Alabama, USA.

出版信息

J Virol. 2016 Dec 16;91(1). doi: 10.1128/JVI.01878-16. Print 2017 Jan 1.

Abstract

UNLABELLED

During ϕX174 morphogenesis, 240 copies of the external scaffolding protein D organize 12 pentameric assembly intermediates into procapsids, a reaction reconstituted in vitro In previous studies, ϕX174 strains resistant to exogenously expressed dominant lethal D genes were experimentally evolved. Resistance was achieved by the stepwise acquisition of coat protein mutations. Once resistance was established, a stimulatory D protein mutation that greatly increased strain fitness arose. In this study, in vitro biophysical and biochemical methods were utilized to elucidate the mechanistic details and evolutionary trade-offs created by the resistance mutations. The kinetics of procapsid formation was analyzed in vitro using wild-type, inhibitory, and experimentally evolved coat and scaffolding proteins. Our data suggest that viral fitness is correlated with in vitro assembly kinetics and demonstrate that in vivo experimental evolution can be analyzed within an in vitro biophysical context.

IMPORTANCE

Experimental evolution is an extremely valuable tool. Comparisons between ancestral and evolved genotypes suggest hypotheses regarding adaptive mechanisms. However, it is not always possible to rigorously test these hypotheses in vivo We applied in vitro biophysical and biochemical methods to elucidate the mechanistic details that allowed an experimentally evolved virus to become resistant to an antiviral protein and then evolve a productive use for that protein. Moreover, our results indicate that the respective roles of scaffolding and coat proteins may have been redistributed during the evolution of a two-scaffolding-protein system. In one-scaffolding-protein virus assembly systems, coat proteins promiscuously interact to form heterogeneous aberrant structures in the absence of scaffolding proteins. Thus, the scaffolding protein controls fidelity. During ϕX174 assembly, the external scaffolding protein acts like a coat protein, self-associating into large aberrant spherical structures in the absence of coat protein, whereas the coat protein appears to control fidelity.

摘要

未标记

在ϕX174形态发生过程中,240个外部支架蛋白D拷贝将12个五聚体组装中间体组织成原衣壳,此反应可在体外重建。在先前的研究中,对实验进化出的对外源表达的显性致死D基因具有抗性的ϕX174菌株进行了研究。通过逐步获得衣壳蛋白突变实现了抗性。一旦建立抗性,就出现了一个极大提高菌株适应性的刺激性D蛋白突变。在本研究中,利用体外生物物理和生化方法来阐明抗性突变产生的机制细节和进化权衡。使用野生型、抑制性以及实验进化的衣壳蛋白和支架蛋白在体外分析了原衣壳形成的动力学。我们的数据表明病毒适应性与体外组装动力学相关,并证明体内实验进化可在体外生物物理背景下进行分析。

重要性

实验进化是一种极其有价值的工具。祖先基因型与进化后基因型之间的比较提出了关于适应机制的假设。然而,并非总是能够在体内严格检验这些假设。我们应用体外生物物理和生化方法来阐明机制细节,这些细节使实验进化的病毒对抗病毒蛋白产生抗性,然后又进化出对该蛋白的有效利用。此外,我们的结果表明,在双支架蛋白系统的进化过程中,支架蛋白和衣壳蛋白的各自作用可能已重新分配。在单支架蛋白病毒组装系统中,在没有支架蛋白的情况下,衣壳蛋白会杂乱地相互作用形成异质异常结构。因此,支架蛋白控制着装配保真度。在ϕX174组装过程中,外部支架蛋白的作用类似于衣壳蛋白,在没有衣壳蛋白的情况下自组装成大的异常球形结构,而衣壳蛋白似乎控制着装配保真度。

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