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结构基础:通过产生空洞或填充空间的突变,使病毒衣壳具有生物相关的机械增强刚性。

Structural basis for biologically relevant mechanical stiffening of a virus capsid by cavity-creating or spacefilling mutations.

机构信息

Structural Biology Unit, Institut de Biologia Molecular de Barcelona (CSIC). Parc Científic de Barcelona, Baldiri i Reixac 15, E-08028, Barcelona, Spain.

Centro de Biología Molecular "Severo Ochoa" (CSIC-UAM), Universidad Autónoma de Madrid, Madrid, 28049, Spain.

出版信息

Sci Rep. 2017 Jun 22;7(1):4101. doi: 10.1038/s41598-017-04345-w.

Abstract

Recent studies reveal that the mechanical properties of virus particles may have been shaped by evolution to facilitate virus survival. Manipulation of the mechanical behavior of virus capsids is leading to a better understanding of viral infection, and to the development of virus-based nanoparticles with improved mechanical properties for nanotechnological applications. In the minute virus of mice (MVM), deleterious mutations around capsid pores involved in infection-related translocation events invariably increased local mechanical stiffness and interfered with pore-associated dynamics. To provide atomic-resolution insights into biologically relevant changes in virus capsid mechanics, we have determined by X-ray crystallography the structural effects of deleterious, mechanically stiffening mutations around the capsid pores. Data show that the cavity-creating N170A mutation at the pore wall does not induce any dramatic structural change around the pores, but instead generates subtle rearrangements that propagate throughout the capsid, resulting in a more compact, less flexible structure. Analysis of the spacefilling L172W mutation revealed the same relationship between increased stiffness and compacted capsid structure. Implications for understanding connections between virus mechanics, structure, dynamics and infectivity, and for engineering modified virus-based nanoparticles, are discussed.

摘要

最近的研究表明,病毒粒子的机械性能可能是通过进化来塑造的,以促进病毒的生存。对病毒衣壳的机械性能的操纵导致了对病毒感染的更好理解,并开发了具有改进的机械性能的基于病毒的纳米颗粒,用于纳米技术应用。在微小鼠病毒 (MVM) 中,涉及感染相关易位事件的衣壳孔周围的有害突变总是增加局部机械硬度,并干扰与孔相关的动力学。为了提供对病毒衣壳力学中生物学相关变化的原子分辨率见解,我们通过 X 射线晶体学确定了衣壳孔周围有害的、机械变硬突变的结构影响。数据表明,在孔壁处产生空腔的 N170A 突变不会在孔周围引起任何剧烈的结构变化,而是产生贯穿衣壳传播的微妙重排,导致更紧凑、更灵活的结构。对空间填充的 L172W 突变的分析揭示了增加的刚度和紧凑的衣壳结构之间的相同关系。讨论了对理解病毒力学、结构、动力学和感染力之间的联系以及对工程化改良的基于病毒的纳米颗粒的意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e0de/5481337/bea059a6d7e5/41598_2017_4345_Fig1_HTML.jpg

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