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Protein-Water and Water-Water Long-Time Relaxations in Protein Hydration Water upon Cooling—A Close Look through Density Correlation Functions

机译:在冷却时蛋白水和水 - 水和水 - 水的长时间弛豫 - 通过密度相关函数闭合

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摘要

We report results on the translational dynamics of the hydration water of the lysozyme protein upon cooling obtained by means of molecular dynamics simulations. The self van Hove functions and the mean square displacements of hydration water show two different temperature activated relaxation mechanisms, determining two dynamic regimes where transient trapping of the molecules is followed by hopping phenomena to allow to the structural relaxations. The two caging and hopping regimes are different in their nature. The low-temperature hopping regime has a time scale of tenths of nanoseconds and a length scale on the order of 2–3 water shells. This is connected to the nearest-neighbours cage effect and restricted to the supercooling, it is absent at high temperature and it is the mechanism to escape from the cage also present in bulk water. The second hopping regime is active at high temperatures, on the nanoseconds time scale and over distances of nanometers. This regime is connected to water displacements driven by the protein motion and it is observed very clearly at high temperatures and for temperatures higher than the protein dynamical transition. Below this temperature, the suppression of protein fluctuations largely increases the time-scale of the protein-related hopping phenomena at least over 100 ns. These protein-related hopping phenomena permit the detection of translational motions of hydration water molecules longly persistent in the hydration shell of the protein.
机译:我们在通过分子动力学模拟获得的冷却时,报告溶菌酶蛋白水合水的翻译动力学。自动范围函数和水合水的均方位移显示出两种不同的温度激活的松弛机构,确定两个动态制度,其中瞬时捕获分子的跳跃现象,以允许结构松弛。这两个笼子和跳跃制度的性质是不同的。低温跳跃制度的时间标度为十分之一的纳秒和大约2-3个水壳的长度尺度。这与最近的邻居笼效果相连并限制在过冷上,它在高温下不存在,并且它是从散装水中的笼中逸出的机制。第二跳跃制度在高温下活跃,在纳秒时间尺度和纳米距离的距离上。该制度连接到由蛋白质运动驱动的水位移,并且在高温下非常清晰地观察到比蛋白质动态转变高的温度。低于该温度,抑制蛋白质波动的抑制在很大程度上增加了至少超过100ns的蛋白质相关跳跃现象的时间量表。这些蛋白质相关的跳跃现象允许在蛋白质的水合壳中持续地检测水合水分子的平移运动。

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