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How a Virus Circumvents Energy Barriers to Form Symmetric Shells

机译:病毒如何避免能量屏障形成对称壳

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Previous self-assembly experiments on a model icosahedral plant virus have shown that, under physiological conditions, capsid proteins initially bind to the genome through an en masse mechanism and form nucleoprotein complexes in a disordered state, which raises the question as to how virions are assembled into a highly ordered structure in the host cell. Using small-angle X-ray scattering, we find out that a disorder-order transition occurs under physiological conditions upon an increase in capsid protein concentrations. Our cryo-transmission electron microscopy reveals closed spherical shells containing in vitro transcribed viral RNA even at pH 7.5, in marked contrast with the previous observations. We use Monte Carlo simulations to explain this disorder-order transition and find that, as the shell grows, the structures of disordered intermediates in which the distribution of pentamers does not belong to the icosahedral subgroups become energetically so unfavorable that the caps can easily dissociate and reassemble, overcoming the energy barriers for the formation of perfect icosahedral shells. In addition, we monitor the growth of capsids under the condition that the nucleation and growth is the dominant pathway and show that the key for the disorder-order transition in both en masse and nucleation and growth pathways lies in the strength of elastic energy compared to the other forces in the system including protein-protein interactions and the chemical potential of free subunits. Our findings explain, at least in part, why perfect virions with icosahedral order form under different conditions including physiological ones.
机译:之前的自组装实验已经表明,在生理条件下,衣壳蛋白质最初通过enmasse机制与基因组结合,并在无序状态下形成核蛋白络合物,这提出了迄今为止种植动物的问题进入宿主细胞中的高度有序结构。使用小角度X射线散射,我们发现在衣壳蛋白浓度增加时,在生理条件下发生无序顺序转变。我们的冷冻透射电子显微镜显示闭合球形壳,即使在pH 7.5中,也均显示在pH7.5中,与先前的观察结果标记相反。我们使用Monte Carlo模拟来解释这种紊乱的过渡,发现,随着壳体的增长,排斥性的紊乱中间体的结构不属于ICOSAHEDRAL子组的分布变得非常不利地,帽子可以轻易解散和重新组装,克服完美ICOSAH面向壳的形成能源障碍。此外,我们在核心和生长的条件下监测衣壳的生长,并且表明,与...相比,enmasse和成核和生长途径的无序秩序过渡的关键在于系统中的其他力包括蛋白质 - 蛋白质相互作用和自由亚基的化学潜力。我们的研究结果至少部分地解释了为什么在不同条件下具有ICOSaheDral订单形式的完美病毒群体,包括生理学。

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