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Surface stresses in complex viral capsids and non-quasi-equivalent viral architectures

机译:复杂病毒衣壳和非准相同病毒架构的表面应力

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摘要

Many larger and more complex viruses deviate from the capsid layouts predicted in the seminal Caspar–Klug theory of icosahedral viruses. Instead of being built from one type of capsid protein (CP), they code for multiple distinct structural proteins that either break the local symmetry of the CP building blocks (capsomers) in specific positions or exhibit auxiliary proteins that stabilize the capsid shell. We investigate here the hypothesis that this occurs as a response to mechanical stress. For this, we construct a coarse-grained model of a viral capsid, derived from the experimentally determined atomistic positions of the CPs, that represents the basic features of protein organization in the viral capsid as described in Caspar–Klug theory. We focus here on viruses in the PRD1-adenovirus lineage. For T = 28 viruses in this lineage, which have capsids formed from two distinct structural proteins, we show that the tangential shear stress in the viral capsid concentrates at the sites of local symmetry breaking. In the T = 21, 25 and 27 capsids, we show that stabilizing proteins decrease the tangential stress. These results suggest that mechanical properties can act as selective pressures on the evolution of capsid components, offsetting the coding cost imposed by the need for such additional protein components.
机译:许多较大且更复杂的病毒偏离了ICOSaheStral病毒的OmoSpar-Klug理论中预测的衣壳布局。而不是由一种类型的衣壳蛋白(CP)构建,它们代码用于多种不同的结构蛋白,其在特定位置中断CP构建块(胶囊)的局部对称性或表现出稳定衣壳壳的辅助蛋白质。我们在这里调查这一点是作为对机械应力的反应发生的假设。为此,我们构建源自CPS的实验确定原子位置的病毒衣壳的粗粒模型,其表示病毒衣壳中的蛋白质组织的基本特征,如Caspar-Klug理论所述。我们专注于PRD1-Adenovirus谱系的病毒。对于这种谱系的T = 28病毒,该谱系具有由两个不同的结构蛋白形成的衣壳,我们表明病毒衣壳中的切向剪切应力在局部对称断裂的位点处浓缩。在T = 21,25和27粒衣壳中,我们表明稳定蛋白质降低了切向应力。这些结果表明,机械性能可以作为衣壳组分的演化的选择性压力,抵消需要对这种附加蛋白质组分的需要施加的编码成本。

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