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卷曲螺旋对机械力的响应:整体稳定性与局部断裂。

Coiled-coil response to mechanical force: global stability and local cracking.

机构信息

Department of Mechanical Engineering, University of Texas, Austin, TX, USA.

出版信息

Biophys J. 2013 Aug 20;105(4):951-61. doi: 10.1016/j.bpj.2013.05.064.

Abstract

Coiled coils are important structural motifs formed by two or more amphipathic α-helices that twist into a supercoil. These motifs are found in a wide range of proteins, including motor proteins and structural proteins, that are known to transmit mechanical loads. We analyze atomically detailed simulations of coiled-coil cracking under load with Milestoning. Milestoning is an approach that captures the main features of the process in a network, quantifying kinetics and thermodynamics. A 112-residue segment of the β-myosin S2 domain was subjected to constant-magnitude (0-200 pN) and constant-direction tensile forces in molecular dynamics simulations. Twenty 20 ns straightforward simulations at several load levels revealed that initial single-residue cracking events (Ψ > 90°) at loads <100 pN were accompanied by rapid refolding without either intra- or interhelix unfolding propagation. Only initial unfolding events at the highest load (200 pN) regularly propagated along and between helices. Analysis of hydrophobic interactions and of interhelix hydrogen bonds did not show significant variation as a function of load. Unfolding events were overwhelmingly located in the vicinity of E929, a charged residue in a hydrophobic position of the heptad repeat. Milestoning network analysis of E929 cracking determined that the mean first-passage time ranges from 20 ns (200 pN) to 80 ns (50 pN), which is ∼20 times the mean first-passage time of an isolated helix with the same sequence.

摘要

螺旋线圈是由两个或多个两亲性α-螺旋扭曲形成的重要结构基序。这些基序存在于广泛的蛋白质中,包括马达蛋白和结构蛋白,已知这些蛋白能够传递机械载荷。我们使用 Milestoning 分析了在载荷下螺旋线圈断裂的原子细节模拟。Milestoning 是一种方法,它在网络中捕捉过程的主要特征,量化动力学和热力学。β-肌球蛋白 S2 结构域的 112 个残基片段在分子动力学模拟中受到恒定幅度(0-200 pN)和恒定方向拉伸力的作用。在几个载荷水平下进行了 20 次 20 ns 的直接模拟,结果表明,在载荷<100 pN 时,最初的单个残基断裂事件(Ψ>90°)伴随着快速折叠,没有发生螺旋内或螺旋间展开。只有在最高载荷(200 pN)下的初始展开事件才会沿着和之间的螺旋规则地传播。对疏水相互作用和螺旋间氢键的分析表明,它们的变化与载荷无关。展开事件主要位于 E929 附近,E929 是一个带电荷的残基,位于七肽重复的疏水位置。E929 断裂的 Milestoning 网络分析确定,平均首次通过时间范围从 20 ns(200 pN)到 80 ns(50 pN),这是相同序列的孤立螺旋的平均首次通过时间的 20 倍左右。

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