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Probing microscopic conformational dynamics in folding reactions by measuring transition paths

机译:测量过渡路径探测微观构象动态

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Transition paths comprise those parts of a folding trajectory where the molecule passes through the high-energy transition states separating folded and unfolded conformations. The transition states determine the folding kinetics and mechanism but are difficult to observe because of their brief duration. Single-molecule experiments have in recent years begun to characterize transition paths in folding reactions, allowing the microscopic conformational dynamics that occur as a molecule traverses the energy barriers to be probed directly. Here we review single-molecule fluorescence and force spectroscopy measurements of transition-path properties, including the time taken to traverse the paths, the local velocity along them, the path shapes, and the variability within these measurements reflecting differences between individual barrier crossings. We discuss how these measurements have been related to theories of folding as diffusion over an energy landscape to deduce properties such as the diffusion coefficient, and how they are being combined with simulations to obtain enhanced atomistic understanding of folding. The richly detailed information available from transition path measurements holds great promise for improved understanding of microscopic mechanisms in folding.
机译:转换路径包括折叠轨迹的那些部分,其中分子通过高能过渡状态分离折叠和展开的构象。过渡状态确定折叠动力学和机制,但由于其简短的持续时间而难以观察。近年来单分子实验开始表征折叠反应中的过渡路径,允许作为分子发生的微观构象动态穿过直接探测的能量屏障。在这里,我们审查单分子荧光和转换路径性能的力量测量,包括横穿路径的时间,沿着它们的局部速度,路径形状和变异性反映各个屏障交叉之间的差异。我们讨论这些测量如何与折叠的理论相关,因为在能量景观上扩散,以推导诸如扩散系数的性质,以及它们如何与模拟相结合以获得对折叠的增强的原子理解。从过渡路径测量可获得的丰富详细信息,可以提高对折叠中的微观机制的理解。

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