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Simulating replica exchange simulations of protein folding with a kinetic network model

机译:使用动力学网络模型模拟蛋白质折叠的副本交换模拟

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摘要

Replica exchange (RE) is a generalized ensemble simulation method for accelerating the exploration of free-energy landscapes, which define many challenging problems in computational biophysics, including protein folding and binding. Although temperature RE (T-RE) is a parallel simulation technique whose implementation is relatively straightforward, kinetics and the approach to equilibrium in the T-RE ensemble are very complicated; there is much to learn about how to best employ T-RE to protein folding and binding problems. We have constructed a kinetic network model for RE studies of protein folding and used this reduced model to carry out “simulations of simulations” to analyze how the underlying temperature dependence of the conformational kinetics and the basic parameters of RE (e.g., the number of replicas, the RE rate, and the temperature spacing) all interact to affect the number of folding transitions observed. When protein folding follows anti-Arrhenius kinetics, we observe a speed limit for the number of folding transitions observed at the low temperature of interest, which depends on the maximum of the harmonic mean of the folding and unfolding transition rates at high temperature. The results shown here for the network RE model suggest ways to improve atomic-level RE simulations such as the use of “training” simulations to explore some aspects of the temperature dependence for folding of the atomic-level models before performing RE studies.
机译:复制副本交换(RE)是一种通用的集成仿真方法,用于加速对自由能景观的探索,它定义了计算生物物理学中的许多难题,包括蛋白质折叠和结合。尽管温度RE(T-RE)是一种并行模拟技术,其实现相对简单,但是动力学和T-RE系综中达到平衡的方法非常复杂。关于如何最好地利用T-RE解决蛋白质折叠和结合问题,还有很多东西需要学习。我们已经构建了用于蛋白质折叠的RE研究的动力学网络模型,并使用此简化模型进行“模拟模拟”,以分析构象动力学的潜在温度依赖性以及RE的基本参数(例如复制物的数量) ,RE速率和温度间隔)都相互作用,从而影响观察到的折叠转变的次数。当蛋白质折叠遵循抗阿累尼乌斯动力学时,我们观察到在感兴趣的低温下观察到的折叠转变数的速度极限,这取决于高温下折叠和展开转变速率的谐波均值的最大值。此处显示的针对网络RE模型的结果提出了改进原子级RE模拟的方法,例如在进行RE研究之前,使用“训练”模拟来探索温度依赖性的某些方面,以折叠原子级模型。

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