首页> 外文期刊>Journal of chemical theory and computation: JCTC >Accelerating Rare Dissociative Processes in Biomolecules Using Selectively Scaled MD Simulations
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Accelerating Rare Dissociative Processes in Biomolecules Using Selectively Scaled MD Simulations

机译:使用选择性缩放MD模拟加速生物分子中的稀有解离过程

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Molecular dynamics (MD) simulations can be a powerful tool for modeling complex dissociative processes such as ligand unbinding. However, many biologically relevant dissociative processes occur on timescales that far exceed the timescales of typical MD simulations. Here, we implement and apply an enhanced sampling method in which specific energy terms in the potential energy function are selectively “scaled” to accelerate dissociative events during simulations. Using ligand unbinding as an example of a complex dissociative process, we selectively scaled up ligand–water interactions in an attempt to increase the rate of ligand unbinding. After applying our selectively scaled MD (ssMD) approach to several cyclin-dependent kinase–inhibitor complexes, we discovered that we could accelerate ligand unbinding, thereby allowing, in some cases, unbinding events to occur within as little as 2 ns. Moreover, we found that we could make realistic estimates of the initial unbinding times (τ unbind) sim)) as well as the accompanying change in free energy (ΔG ~(sim)) of the inhibitors from our ssMD simulation data. To accomplish this, we employed a previously described Kramers’-based rate extrapolation method and a newly described free energy extrapolation method. Because our ssMD approach is general, it should find utility as an easy-to-deploy, enhanced sampling method for modeling other dissociative processes.
机译:分子动力学(MD)模拟可以是用于建模复杂解离过程的强大工具,例如配体解开。然而,许多生物学上相关的分离过程发生在远远超过典型MD模拟的时间尺度。这里,我们实施并应用增强的采样方法,其中潜在能量函数中的特定能量术语选择性地“缩放”以在仿真期间加速分离事件。使用配体剥离作为复杂的解离过程的一个例子,我们选择性地扩大了配体 - 水相互作用,以增加配体解除率的速率。在将我们的选择性缩放的MD(SSMD)方法施用于几个周细胞周期蛋白依赖性激酶抑制剂复合物后,我们发现我们可以加速配体解开,从而在某些情况下允许在几乎没有2ns内发生未绑定事件。此外,我们发现我们可以制造初始解除措施(τ取消燃烧)SIM)的现实估计,以及来自我们SSMD仿真数据的抑制剂的自由能(Δ G〜(SIM))的随附变化。为了实现这一点,我们使用先前描述的基于克拉姆的速率外推方法和新描述的自由能外推方法。由于我们的SSMD方法是普遍的,它应该找到效用作为易于部署,增强的采样方法,用于建模其他分离过程。

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