首页> 外文期刊>Journal of Biological Physics >Conformational properties of interacting neurofilaments: Monte Carlo simulations of cylindrically grafted apposing neurofilament brushes
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Conformational properties of interacting neurofilaments: Monte Carlo simulations of cylindrically grafted apposing neurofilament brushes

机译:相互作用的神经丝的构象性质:圆柱形移植的并置神经丝刷的蒙特卡罗模拟

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摘要

Neurofilaments are essential cytoskeletal filaments that impart mechanical stability to axons. They are mostly assembled from three neurofilament proteins that form the core of the filament and its sidearms. Adjacent neurofilaments interact with each other through their apposing sidearms and attain unique conformations depending on the ionic condition, phosphorylation state, and interfilament separations. To understand the conformational properties of apposing sidearms under various conditions and gain insight into interfilament interactions, we performed Monte Carlo simulations of neurofilament pairs. We employed a sequence-based coarse-grained model of apposing NF sidearms that are end-tethered to cylindrical geometries according to the stoichiometry of the three neurofilament subunits. Monte Carlo simulations were conducted under different conditions such as phosphorylation state, ionic condition, and interfilament separations. Under salt-free conditions, apposing sidearms are found to adopt mutually excluding stretched but bent away conformations that are reminiscent of a repulsive type of interaction. Under physiological conditions, apposing sidearms are found to be in a coiled conformation, suggesting a short-range steric repulsive type of interaction. Increased sidearm mutual interpenetration and a simultaneous decrease in the individual brush heights were observed as the interfilament separation was reduced from 60 to 40 nm. The observed conformations suggest entropic interaction as a likely mechanism for sidearm-mediated interfilament interactions under physiological conditions.
机译:神经丝是必不可少的细胞骨架丝,可赋予轴突机械稳定性。它们主要由三种神经丝蛋白组装而成,这些蛋白形成了细丝及其侧臂的核心。相邻的神经丝通过其并置的侧臂彼此相互作用,并根据离子条件,磷酸化状态和丝间分离而获得独特的构象。为了了解在各种条件下并置侧臂的构象特性并深入了解丝间相互作用,我们进行了神经丝对的蒙特卡罗模拟。我们采用了基于序列的粗粒度模型,根据三个神经丝亚基的化学计量,将NF侧臂并列连接到圆柱几何体。蒙特卡罗模拟是在不同条件下进行的,例如磷酸化状态,离子条件和丝间分离。在无盐条件下,发现相对应的侧臂采用相互排斥的构图,但这些构图使人联想到排斥的相互作用。在生理条件下,发现相对的侧臂呈螺旋状构象,表明存在短距离的空间排斥型相互作用。观察到侧臂的相互渗透增加,并且各个刷的高度同时降低,这是因为细丝间距从60 nm减小到40 nm。观察到的构象表明熵相互作用是在生理条件下侧臂介导的丝间相互作用的可能机制。

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