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肌动蛋白丝的生物力学:计算多尺度研究。

Biomechanics of actin filaments: a computational multi-level study.

机构信息

Department of Mechanics, Politecnico di Torino, Italy.

出版信息

J Biomech. 2011 Feb 24;44(4):630-6. doi: 10.1016/j.jbiomech.2010.11.014. Epub 2010 Dec 4.

DOI:10.1016/j.jbiomech.2010.11.014
PMID:21130998
Abstract

The actin microfilament (F-actin) is a structural and functional component of the cell cytoskeleton. Notwithstanding the primary role it plays for the mechanics of the cell, the mechanical behaviour of F-actin is still not totally explored. In particular, the relationship between the mechanics of F-actin and its molecular architecture is not completely understood. In this study, the mechanical properties of F-actin were related to the molecular topology of its building monomers (G-actin) by employing a computational multi-level approach. F-actins with lengths up to 500 nm were modelled and characterized, using a combination of equilibrium molecular dynamics (MD) simulations and normal mode analysis (NMA). MD simulations were performed to analyze the molecular rearrangements of G-actin in physiological conditions; NMA was applied to compute the macroscopic properties of F-actin from its vibrational modes of motion. Results from this multi-level approach showed that bending stiffness, bending modulus and persistence length are independent from the length of F-actin. On the contrary, the orientations and motions of selected groups of residues of G-actin play a primary role in determining the filament flexibility. In conclusion, this study (i) demonstrated that a combined computational approach of MD and NMA allows to investigate the biomechanics of F-actin taking into account the molecular topology of the filament (i.e., the molecular conformations of G-actin) and (ii) that this can be done using only crystallographic G-actin, without the need of introducing experimental parameters nor of reducing the number of residues.

摘要

肌动蛋白微丝(F-肌动蛋白)是细胞细胞骨架的结构和功能组成部分。尽管它在细胞力学中起着主要作用,但 F-肌动蛋白的力学行为仍未完全探索。特别是,F-肌动蛋白的力学与其分子结构之间的关系尚未完全理解。在这项研究中,通过采用计算多层次方法,将 F-肌动蛋白的力学性质与其构建单体(G-肌动蛋白)的分子拓扑结构联系起来。使用平衡分子动力学(MD)模拟和正常模式分析(NMA)的组合,对长度达 500nm 的 F-肌动蛋白进行了建模和表征。MD 模拟用于分析生理条件下 G-肌动蛋白的分子重排;NMA 用于从其运动的振动模式计算 F-肌动蛋白的宏观性质。这种多层次方法的结果表明,弯曲刚度、弯曲模量和持久长度与 F-肌动蛋白的长度无关。相反,G-肌动蛋白的选定基团的取向和运动在确定纤维的柔韧性方面起着主要作用。总之,这项研究(i)证明了 MD 和 NMA 的组合计算方法可以考虑到纤维的分子拓扑结构(即 G-肌动蛋白的分子构象)来研究 F-肌动蛋白的生物力学,(ii)仅使用晶体学 G-肌动蛋白就可以做到这一点,无需引入实验参数,也无需减少残基数量。

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