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Acceleration of biomolecular kinetics in Gaussian accelerated molecular dynamics

机译:高斯加速分子动力学的生物分子动力学加速

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Recent studies demonstrated that Gaussian accelerated molecular dynamics (GaMD) is a robust computational technique, which provides simultaneous unconstrained enhanced sampling and free energy calculations of biomolecules. However, the exact acceleration of biomolecular dynamics or speedup of kinetic rates in GaMD simulations and, more broadly, in enhanced sampling methods, remains a challenging task to be determined. Here, the GaMD acceleration is examined using alanine dipeptide in explicit solvent as a biomolecular model system. Relative to long conventional molecular dynamics simulation, GaMD simulations exhibited similar to 36-67 times speedup for sampling of the backbone dihedral transitions. The acceleration depended on level of the GaMD boost potential. Furthermore, Kramers' rate theory was applied to estimate GaMD acceleration using simulation-derived diffusion coefficients, curvatures and barriers of free energy profiles. In most cases, the calculations also showed significant speedup of dihedral transitions in GaMD, although the GaMD acceleration factors tended to be underestimated by similar to 3-96 fold. Because greater boost potential can be applied in GaMD simulations of systems with increased sizes, which potentially leads to higher acceleration, it is subject to future studies on accelerating the dynamics and recovering kinetic rates of larger biomolecules such as proteins and protein-protein/nucleic acid complexes. Published by AIP Publishing.
机译:最近的研究表明,高斯加速的分子动力学(GAMD)是一种稳健的计算技术,它提供了同时无约束的增强的增强型采样和生物分子的自由能计算。然而,在GAMD模拟中的生物分子动力学或加速动力学的精确加速和加速,更广泛地,在增强的采样方法中,仍然是有挑战性的任务。这里,使用明确的溶剂中的丙氨酸二肽作为生物分子模型系统检查GAMD加速度。相对于长常规分子动力学模拟,GAMD模拟表现出类似于36-67倍的加速,用于骨干二面的过渡采样。加速度取决于GAMD提升潜力的水平。此外,应用克拉姆斯的速率理论来利用自由能谱的模拟衍生的扩散系数,曲率和屏障来估计GAMD加速度。在大多数情况下,计算也显示出GAMD中的二面过渡的显着加速,尽管GAMD加速因子倾向于低于3-96倍。由于可以在增加尺寸的系统的GAMD模拟中应用更大的增压势,这可能导致更高的加速度,因此有关加速动力学和恢复较大生物分子的动力学和蛋白质 - 蛋白/核酸的动力学率的未来研究。复合物。通过AIP发布发布。

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