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Coordinate-dependent diffusion in protein folding

机译:蛋白质折叠中依赖坐标的扩散

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摘要

Diffusion on a low-dimensional free-energy surface is a remarkably successful model for the folding dynamics of small single-domain proteins. Complicating the interpretation of both simulations and experiments is the expectation that the effective diffusion coefficient D will in general depend on the position along the folding coordinate, and this dependence may vary for different coordinates. Here we explore the position dependence of D, its connection to protein internal friction, and the consequences for the interpretation of single-molecule experiments. We find a large decrease in D from unfolded to folded, for reaction coordinates that directly measure fluctuations in Cartesian configuration space, including those probed in single-molecule experiments. In contrast, D is almost independent of Q, the fraction of native amino acid contacts: Near the folded state, small fluctuations in position cause large fluctuations in Q, and vice versa for the unfolded state. In general, position-dependent free energies and diffusion coefficients for any two good reaction coordinates that separate reac-tant, product, and transition states, are related by a simple transformation, as we demonstrate. With this transformation, we obtain reaction coordinates with position-invariant D. The corresponding free-energy surfaces allow us to justify the assumptions used in estimating the speed limit for protein folding from experimental measurements of the reconfiguration time in the unfolded state, and also reveal intermediates hidden in the original free-energy projection. Lastly, we comment on the design of future single-molecule experiments that probe the position dependence of D directly.
机译:低维自由能表面的扩散是小型单结构域蛋白折叠动力学的非常成功的模型。期望将有效的扩散系数D通常取决于沿折叠坐标的位置,并且对于不同的坐标可能会有所不同,这使得模拟和实验的解释复杂化。在这里,我们探讨了D的位置依赖性,其与蛋白质内部摩擦的关系以及解释单分子实验的结果。对于直接测量笛卡尔配置空间中的波动(包括在单分子实验中探测到的波动)的反应坐标,我们发现D从展开到折叠大大减小。相反,D几乎不依赖于Q,即天然氨基酸接触的一部分:在折叠状态附近,位置的小波动会导致Q的大波动,而在展开状态下反之亦然。通常,正如我们证明的那样,对于任何两个区分反应物,产物和过渡态的良好反应坐标,与位置相关的自由能和扩散系数都通过简单的变换来关联。通过这种转换,我们获得了位置不变D的反应坐标。相应的自由能面使我们能够根据在折叠状态下重新配置时间的实验测量估算蛋白质折叠速度极限时所用的假设是合理的,并且还揭示了隐藏在原始自由能投影中的中间体。最后,我们评论了直接探测D的位置依赖性的未来单分子实验的设计。

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