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Simulation Study of the Contribution of Oligomer/Oligomer Binding to Capsid Assembly Kinetics

机译:低聚物/低聚物结合对衣壳装配动力学的贡献的模拟研究

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摘要

The process by which hundreds of identical capsid proteins self-assemble into icosahedral structures is complex and poorly understood. Establishing constraints on the assembly pathways is crucial to building reliable theoretical models. For example, it is currently an open question to what degree overall assembly kinetics are dominated by one or a few most efficient pathways versus the enormous number theoretically possible. The importance of this question, however, is often overlooked due to the difficulties of addressing it in either theoretical or experimental practice. We apply a computer model based on a discrete-event simulation method to evaluate the contributions of nondominant pathways to overall assembly kinetics. This is accomplished by comparing two possible assembly models: one allowing growth to proceed only by the accretion of individual assembly subunits and the other allowing the binding of sterically compatible assembly intermediates any sizes. Simulations show that the two models perform almost identically under low binding rate conditions, where growth is strongly nucleation-limited, but sharply diverge under conditions of higher association rates or coat protein concentrations. The results suggest the importance of identifying the actual binding pattern if one is to build reliable models of capsid assembly or other complex self-assembly processes.
机译:成百上千个相同的衣壳蛋白自组装为二十面体结构的过程是复杂的,人们对此知之甚少。在组装路径上建立约束对于建立可靠的理论模型至关重要。例如,当前是一个悬而未决的问题,总体组装动力学在多大程度上受一个或几个最有效的途径支配,而理论上可能是庞大的数目。但是,由于在理论或实验实践中都难以解决该问题,因此常常忽略了该问题的重要性。我们应用基于离散事件模拟方法的计算机模型来评估非主要途径对整体组装动力学的贡献。这是通过比较两种可能的装配模型来完成的:一种允许仅通过增加单个装配亚基来进行生长,另一种允许任意尺寸的空间相容装配中间体的结合。模拟显示,这两种模型在低结合速率条件下(生长受强成核作用限制)几乎表现相同,但在较高结合速率或外壳蛋白浓度条件下则急剧偏离。结果表明,如果要构建衣壳组装或其他复杂的自组装过程的可靠模型,则必须识别实际的结合模式。

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