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Atomistic-based continuum constitutive relation for microtubules: elastic modulus prediction

机译:基于原子的微管连续体本构关系:弹性模量预测

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摘要

Mechanical behavior of cells is primarily governed by the cytoskeleton (CSK), a remarkable system of filaments consisting of microtubules, actin filaments and intermediate filaments. This system defines the shape and bulk mechanical properties of the cell. In order to understand how the CSK network influences the mechanical behavior of living cells from a theoretical perspective, the mechanical properties of an individual CSK filament must first be properly described. Existing atomistic simulation methods have computational size limitations; conversely, conventional continuum mechanics lack fundamental nanoscale information. Here a new simulation method is developed that bridges the gap between these two simulation regimes using an atomistic-based continuum constitutive relation for microtubules based on the interatomic potential for proteins and specific atomic structures. This theory is used to predict the elastic modulus of microtubules, which agrees with the range of experimentally measured values without any parameter fitting. The proposed method is applicable to other biopolymers if the subunits are bonded through noncovalent bonds.
机译:细胞的机械行为主要由细胞骨架(CSK)决定,细胞骨架是由微管,肌动蛋白丝和中间丝组成的显着细丝系统。该系统定义了电池的形状和整体机械性能。为了从理论角度理解CSK网络如何影响活细胞的机械行为,必须首先正确描述单个CSK灯丝的机械性能。现有的原子模拟方法有计算量的限制。相反,常规连续体力学缺乏基本的纳米级信息。在这里,开发了一种新的模拟方法,该方法使用基于原子的蛋白质和特定原子结构的原子间微管基于原子的连续性本构关系来弥合这两种模拟方案之间的差距。该理论用于预测微管的弹性模量,该弹性模量与没有任何参数拟合的实验测量值的范围一致。如果亚基通过非共价键结合,则建议的方法适用于其他生物聚合物。

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