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Dynamic neutron scattering from conformational dynamics. II. Application using molecular dynamics simulation and Markov modeling

机译:来自构象动力学的动态中子散射。二。分子动力学模拟和马尔可夫模型的应用

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Neutron scattering experiments directly probe the dynamics of complex molecules on the sub pico- to microsecond time scales. However, the assignment of the relaxations seen experimentally to specific structural rearrangements is difficult, since many of the underlying dynamical processes may exist on similar timescales. In an accompanying article, we present a theoretical approach to the analysis of molecular dynamics simulations with a Markov State Model (MSM) that permits the direct identification of structural transitions leading to each contributing relaxation process. Here, we demonstrate the use of the method by applying it to the configurational dynamics of the well-characterized alanine dipeptide. A practical procedure for deriving the MSM from an MD is introduced. The result is a 9-state MSM in the space of the backbone dihedral angles and the side-chain methyl group. The agreement between the quasielastic spectrum calculated directly from the atomic trajectories and that derived from the Markov state model is excellent. The dependence on the wavevector of the individual Markov processes is described. The procedure means that it is now practicable to interpret quasielastic scattering spectra in terms of well-defined intramolecular transitions with minimal a priori assumptions as to the nature of the dynamics taking place.
机译:中子散射实验直接在亚皮秒到微秒的时间尺度上探测复杂分子的动力学。然而,由于许多潜在的动力学过程可能存在于相似的时间尺度上,因此很难将通过实验观察到的弛豫分配给特定的结构重排。在随附的文章中,我们介绍了一种利用马尔可夫状态模型(MSM)进行分子动力学模拟分析的理论方法,该方法可直接识别导致每个促成弛豫过程的结构转变。在这里,我们通过将其应用于已充分表征的丙氨酸二肽的构型动力学来证明该方法的使用。介绍了从MD派生MSM的实际过程。结果是在骨架二面角和侧链甲基的空间中形成了9状态的MSM。从原子轨迹直接计算出的准弹性谱与从马尔可夫状态模型得出的准弹性谱之间的一致性非常好。描述了各个马尔可夫过程对波矢的依赖性。该程序意味着,现在可以用定义明确的分子内跃迁解释准弹性散射光谱,而无需对发生的动力学性质进行最小的先验假设。

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