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衣壳结构在球形病毒的弯曲和成熟中的相关性。

Relevance of capsid structure in the buckling and maturation of spherical viruses.

机构信息

Departament de Física Fonamental, Universitat de Barcelona, Martí i Franquès 1, 08028 Barcelona, Spain.

出版信息

Phys Biol. 2012 Jun;9(3):036003. doi: 10.1088/1478-3975/9/3/036003. Epub 2012 May 4.

Abstract

The shape and mechanical properties of viral capsids play an important role in several biological processes during the virus life cycle. In particular, to become infective, many viruses require a maturation stage where the capsid undergoes a buckling transition, from an initial spherical procapsid into a final icosahedral faceted shell. Here we study, using a minimal physical model, how the capsid shape and the buckling transition depend on the triangulation number T and the icosahedral class P of the virus structure. We find that, for small shells, capsids with P = 1 are most likely to produce polyhedral shapes that minimize their energy and accumulated stress, whereas viruses with P = 3 prefer to remain spherical. For big capsids, all shells are more stable adopting an icosahedral shape, in agreement with continuum elastic theory. Moreover, spherical viruses show a buckling transition to polyhedral shells under expansion, in consonance with virus maturation. The resulting icosahedral shell is mechanically stiffer, tolerates larger expansions and withstands higher internal pressures before failing, which could explain why some dsDNA viruses, which rely on the pressurization of their genetic material to facilitate the infection, undergo a buckling transition. We emphasize that the results are general and could also be applied to non-biological systems.

摘要

病毒衣壳的形状和力学性能在病毒生命周期中的几个生物学过程中起着重要作用。特别是,为了具有感染性,许多病毒需要经历一个成熟阶段,在此阶段衣壳经历一个屈曲转变,从初始的球形原衣壳转变为最终的二十面体有面壳。在这里,我们使用一个最小的物理模型来研究衣壳形状和屈曲转变如何取决于病毒结构的三角化数 T 和二十面体分类 P。我们发现,对于小壳,P = 1 的衣壳最有可能产生最小化其能量和累积应力的多面体形状,而 P = 3 的病毒则更喜欢保持球形。对于大壳,所有的壳在扩张下采用二十面体形状都更加稳定,这与连续体弹性理论一致。此外,球形病毒在扩张下会向多面体壳发生屈曲转变,这与病毒成熟过程一致。由此产生的二十面体壳具有更高的机械刚性,能够承受更大的膨胀和更高的内部压力,直到失效,这可以解释为什么一些依赖于遗传物质加压来促进感染的双链 DNA 病毒会发生屈曲转变。我们强调,这些结果是普遍的,也可以应用于非生物系统。

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