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控制空病毒衣壳稳定性和结构选择的物理因素。

Physical Ingredients Controlling Stability and Structural Selection of Empty Viral Capsids.

作者信息

Aznar María, Reguera David

机构信息

Statistical and Interdisciplinary Physics Section, Departament de Física de la Matèria Condensada, Universitat de Barcelona , Martí i Franquès 1, 08028 - Barcelona, Spain.

出版信息

J Phys Chem B. 2016 Jul 7;120(26):6147-59. doi: 10.1021/acs.jpcb.6b02150. Epub 2016 May 4.

Abstract

One of the crucial steps in the viral replication cycle is the self-assembly of its protein shell. Typically, each native virus adopts a unique architecture, but the coat proteins of many viruses have the capability to self-assemble in vitro into different structures by changing the assembly conditions. However, the mechanisms determining which of the possible capsid shapes and structures is selected by a virus are still not well-known. We present a coarse-grained model to analyze and understand the physical mechanisms controlling the size and structure selection in the assembly of empty viral capsids. Using this model and Monte Carlo simulations, we have characterized the phase diagram and stability of T = 1,3,4,7 and snub cube shells. In addition, we have studied the tolerance of different shells to changes in physical parameters related to ambient conditions, identifying possible strategies to induce misassembly or failure. Finally, we discuss the factors that select the shape of a capsid as spherical, faceted, elongated, or decapsidated. Our model sheds important light on the ingredients that control the assembly and stability of viral shells. This knowledge is essential to get capsids with well-defined size and structure that could be used for promising applications in medicine or bionanotechnology.

摘要

病毒复制周期中的关键步骤之一是其蛋白质外壳的自组装。通常,每种天然病毒都采用独特的结构,但许多病毒的衣壳蛋白能够通过改变组装条件在体外自组装成不同的结构。然而,决定病毒选择哪种可能的衣壳形状和结构的机制仍然不太清楚。我们提出了一个粗粒度模型,以分析和理解控制空病毒衣壳组装中尺寸和结构选择的物理机制。使用该模型和蒙特卡罗模拟,我们表征了T = 1、3、4、7和截顶立方体壳的相图和稳定性。此外,我们研究了不同壳对与环境条件相关的物理参数变化的耐受性,确定了诱导错误组装或失败的可能策略。最后,我们讨论了选择衣壳形状为球形、多面体形、细长形或解聚形的因素。我们的模型为控制病毒壳组装和稳定性的因素提供了重要线索。这些知识对于获得具有明确尺寸和结构的衣壳至关重要,这些衣壳可用于医学或生物纳米技术中的有前景的应用。

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