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Investigating Molecular Kinetics by Variationally Optimized Diffusion Maps

机译:用变分优化扩散图研究分子动力学

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摘要

Identification of the collective coordinates that describe rare events in complex molecular transitions such as protein folding has been a key challenge in the theoretical molecular sciences. In the Diffusion Map approach, one assumes that the molecular configurations sampled have been generated by a diffusion process, and one uses the eigenfunctions of the corresponding diffusion operator as reaction coordinates. While diffusion coordinates (DCs) appear to provide a good approximation to the true dynamical reaction coordinates, they are not parametrized using dynamical information. Thus, their approximation quality could not, as yet, be validated, nor could the diffusion map eigenvalues be used to compute relaxation rate constants of the system. Here we combine the Diffusion Map approach with the recently proposed Variational Approach for Conformation Dynamics (VAC). Diffusion Map coordinates are used as a basis set, and their optimal linear combination is sought using the VAC, which employs time-correlation information on the molecular dynamics (MD) trajectories. We have applied this approach to ultra-long MD simulations of the Fip35 WW domain and found that the first DCs are indeed a good approximation to the true reaction coordinates of the system, but they could be further improved using the VAC. Using the Diffusion Map basis, excellent approximations to the relaxation rates of the system are obtained. Finally, we evaluate the quality of different metric spaces and find that pairwise minimal root-mean-square deviation performs poorly, while operating in the recently introduced kinetic maps based on the time-lagged independent component analysis gives the best performance.
机译:鉴定描述复杂分子转变中稀有事件(例如蛋白质折叠)的集体坐标的识别一直是理论分子科学中的关键挑战。在扩散图方法中,人们假设采样的分子构型是通过扩散过程生成的,并且有人将相应扩散算子的本征函数用作反应坐标。尽管扩散坐标(DC)似乎提供了真实的动态反应坐标的良好近似值,但并未使用动力学信息对其进行参数化。因此,它们的近似质量目前尚未得到验证,扩散图特征值也不能用于计算系统的弛豫速率常数。在这里,我们将扩散图方法与最近提出的构象动力学(VAC)的变分方法结合起来。将扩散图坐标用作基础集,并使用VAC寻找其最佳线性组合,该VAC使用有关分子动力学(MD)轨迹的时间相关信息。我们已经将该方法应用于Fip35 WW域的超长MD仿真,并且发现第一个DC确实非常接近系统的真实反应坐标,但是可以使用VAC进一步加以改进。使用扩散图基础,可以获得系统弛豫率的极佳近似值。最后,我们评估了不同度量空间的质量,发现成对的最小均方根偏差表现不佳,而在最近引入的基于时滞独立分量分析的动力学图中操作时,则表现最佳。

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