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Theoretical and computational validation of the Kuhn barrier friction mechanism in unfolded proteins

机译:展开蛋白中库恩屏障摩擦机理的理论和计算验证

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摘要

A long time ago, Kuhn predicted that long polymers should approach a limit where their global motion is controlled by solvent friction alone, with ruggedness of their energy landscapes having no consequences for their dynamics. In contrast, internal friction effects are important for polymers of modest length. Internal friction in proteins, in particular, affects how fast they fold or find their binding targets and, as such, has attracted much recent attention. Here we explore the molecular origins of internal friction in unfolded proteins using atomistic simulations, coarse-grained models and analytic theory. We show that the characteristic internal friction timescale is directly proportional to the timescale of hindered dihedral rotations within the polypeptide chain, with a proportionality coefficient b that is independent of the chain length. Such chain length independence of b provides experimentally testable evidence that internal friction arises from concerted, crankshaft-like dihedral rearrangements. In accord with phenomenological models of internal friction, we find the global reconfiguration timescale of a polypeptide to be the sum of solvent friction and internal friction timescales. At the same time, the time evolution of inter-monomer distances within polypeptides deviates both from the predictions of those models and from a simple, one-dimensional diffusion model.
机译:很久以前,库恩(Kuhn)预测,长聚合物应达到一个极限,即仅通过溶剂摩擦即可控制其整体运动,而其能量分布的坚固性对其动力学没有影响。相反,内部摩擦效应对于中等长度的聚合物很重要。尤其是蛋白质中的内部摩擦会影响蛋白质折叠或找到其结合靶点的速度,因此最近引起了很多关注。在这里,我们使用原子模拟,粗粒度模型和解析理论探索未折叠蛋白质内部摩擦的分子起源。我们表明,特征性内部摩擦时标与多肽链内受阻碍的二面角旋转的时标成正比,比例系数b与链长无关。 b的这种链长独立性提供了可通过实验检验的证据,表明内部摩擦是由一致的曲轴状二面角重排引起的。根据内部摩擦的现象学模型,我们发现多肽的整体重构时间尺度是溶剂摩擦和内部摩擦时间尺度的总和。同时,多肽内单体间距离的时间演变既偏离那些模型的预测,也偏离简单的一维扩散模型。

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