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Langevin dynamics of molecules with internal rigid fragments in the harmonic regime

机译:具有内部刚性片段的分子的Langevin动力学

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摘要

An approximation scheme is developed to compute Brownian motion according to the Langevin equation for a molecular system moving in a harmonic force field (corresponding to a quadratic potential energy surface) and characterized by one or more rigid internal fragments. This scheme, which relies on elements of the rotation translation block (RTB) method for computing vibrational normal modes of large molecules developed by Sanejouand and co-workers [Biopolymers 34, 759 (1994); Proteins: Struct., Funct., Genet. 41, 1 (2000)], provides a natural and efficient way to freeze out the small amplitude, high frequency motions within each rigid fragment. The number of dynamical degrees of freedom in the problem is thereby reduced, often dramatically. To illustrate the method, the relaxation kinetics of the small membrane-bound ion channel protein gramicidin-A, subjected to an externally imposed impulse, is computed. The results obtained from all-atom dynamics are compared to those obtained using the RTB-Langevin dynamics approximation (treating eight indole moieties as internal rigid fragments): good agreement between the two treatments is found.
机译:针对在谐动力场(对应于二次势能面)中移动的分子系统,开发了一种近似方案来根据Langevin方程计算布朗运动,并以一个或多个刚性内部片段为特征。该方案依赖于旋转平移块(RTB)方法的元素,该方法可以计算由Sanejouand和他的同事开发的大分子的振动法线模[Biopolymers 34,759(1994);蛋白质:结构,功能,基因。 41,1(2000)],提供了一种自然有效的方法来冻结每个刚性片段内的小幅度,高频运动。因此,问题中的动态自由度的数量通常会大大减少。为了说明该方法,计算了受到外部施加的脉冲的,与膜结合的小离子通道蛋白gramicidin-A的弛豫动力学。从全原子动力学得到的结果与使用RTB-兰格文动力学近似得到的结果进行比较(将8个吲哚部分作为内部刚性片段进行处理):两种处理之间发现了很好的一致性。

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