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Microscopic theory of protein folding rates. II. Local reaction coordinates and chain dynamics

机译:蛋白质折叠率的微观理论。二。局部反应坐标和链动力学

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The motions involved in barrier crossing for protein folding are investigated in terms of the chain dynamics of the polymer backbone, completing the microscopic description of protein folding presented in the preceding paper. Local reaction coordinates are identified as collective growth modes of the unstable fluctuations about the saddle points in the free en~rgy surface. The description of the chain dynamics incorporates internal friction (independent of the solvent viscosity) arising from the elementary isomerization of the backbone dihedral angles. We find that the folding rate depends linearly on the solvent friction for high viscosity, but saturates at low viscosity because of internal friction. For A-repressor, the calculated folding rate prefactor, along with the free energy barrier from the variational theory , gives a folding rate that agrees well with the experimentally determined rate under highly stabilizing conditions, but the theory predicts too large a folding rate at the transition midpoint. This discrepancy obtained using a fairly complete quantitative theory inspires anew set of questions about chain dynamics, specifically detailed motions in individual contact formation.
机译:根据聚合物主链的链动力学研究了蛋白质折叠的障碍穿越过程,完成了先前论文中蛋白质折叠的微观描述。局部反应坐标被确定为自由能量表面中鞍点周围不稳定波动的集体增长模式。链动力学的描述包含了由骨架二面角的基本异构化引起的内部摩擦(与溶剂粘度无关)。我们发现对于高粘度,折叠速率线性依赖于溶剂摩擦,但是由于内摩擦,在低粘度下饱和速率饱和。对于A阻遏物,计算出的折叠速率前因子以及变分理论的自由能垒提供的折叠速率与在高度稳定的条件下实验确定的速率非常吻合,但该理论预测在A阻遏剂下折叠速率太大。过渡中点。使用相当完整的定量理论获得的差异激发了关于链动力学的一系列新问题,尤其是单个接触形成中的详细运动。

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