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Coarse-Graining Provides Insights on the Essential Nature of Heterogeneity in Actin Filaments

机译:粗粒度提供了关于肌动蛋白丝异质性本质本质的见解

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摘要

Experiments have shown that actin is structurally polymorphic, but knowledge of the details of molecular level heterogeneity in both the dynamics of a single subunit and the interactions between subunits is still lacking. Here, using atomistic molecular dynamics simulations of the actin filament, we identify domains of atoms that move in a correlated fashion, quantify interactions between these domains using coarse-grained (CG) analysis methods, and perform CG simulations to explore the importance of filament heterogeneity. The persistence length and torsional stiffness calculated from molecular dynamics simulation data agree with experimental values. We additionally observe that distinct actin conformations coexist in actin filaments. The filaments also exhibit random twist angles that are broadly distributed. CG analysis reveals that interactions between equivalent CG pairs vary from one subunit to another. To explore the importance of heterogeneity on filament dynamics, we perform CG simulations using different methods of parameterization to show that only by including heterogeneous interactions can we reproduce the twist angles and related properties. Free energy calculations further suggest that in general the actin filament is best represented as a set of subunits with differing CG sites and interactions, and the incorporating heterogeneity into the CG interactions is more important than including that in the CG sites. Our work therefore presents a systematic method to explore molecular level detail in this large and complex biopolymer.
机译:实验表明肌动蛋白在结构上是多态的,但是仍然缺乏对单个亚基动力学和亚基之间相互作用的分子水平异质性细节的了解。在这里,使用肌动蛋白丝的原子分子动力学模拟,我们确定了以相关方式运动的原子域,使用粗粒(CG)分析方法量化了这些域之间的相互作用,并进行了CG模拟,以探索丝异质性的重要性。由分子动力学模拟数据计算得到的持久长度和抗扭刚度与实验值一致。我们还观察到,不同的肌动蛋白构象共存于肌动蛋白丝中。细丝还表现出分布广泛的随机扭曲角。 CG分析揭示,等效CG对之间的相互作用从一个亚基到另一个亚基有所不同。为了探究异质性对长丝动力学的重要性,我们使用不同的参数化方法进行了CG模拟,以表明只有通过包含异质性相互作用,我们才能再现捻角和相关特性。自由能的计算进一步表明,肌动蛋白丝一般最好表示为一组具有不同CG位点和相互作用的亚基,与CG位点相比,将异质性纳入CG相互作用更为重要。因此,我们的工作提出了一种系统的方法来探索这种大型而复杂的生物聚合物中分子水平的细节。

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