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Massive-Scale Binding Free Energy Simulations of HIV Integrase Complexes Using Asynchronous Replica Exchange Framework Implemented on the IBM WCG Distributed Network

机译:使用IBM WCG分布式网络上实现的异步副本交换框架对HIV整合酶复合物进行大规模绑定自由能模拟

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摘要

To perform massive-scale replica exchange molecular dynamics (REMD) simulations for calculating binding free energies of protein-ligand complexes, we implemented the asynchronous replica exchange (AsyncRE) framework of the binding energy distribution analysis method (BEDAM) in implicit solvent on the IBM World Community Grid (WCG) and optimized the simulation parameters to reduce the overhead and improve the prediction power of the WCG AsyncRE simulations. We also performed the first massive-scale binding free energy calculations using the WCG distributed computing gird and 301 ligands from the SAMPL4 challenge for large-scale binding free energy predictions of HIV-1 integrase complexes. In total there are ~10 thousand simulated complexes, ~1 million replicas, and ~2000 microseconds of aggregated MD simulations. Running AsyncRE MD simulations on the WCG requires accepting a tradeoff between the number of replicas that can be run (breadth) and the number of full RE cycles that can be completed per replica (depth). As compared with synchronous Replica Exchange (SyncRE) running on tightly coupled clusters like XSEDE, on the WCG many more replicas can be launched simultaneously on heterogeneous distributed hardware, but each full RE cycle requires more overhead. We compared the WCG results with that from AutoDock and more advanced RE simulations including the use of flattening potentials to accelerate sampling of selected degrees of freedom of ligands and/or receptors related to slow dynamics due to high energy barriers. We propose a suitable strategy of RE simulations to refine high throughput docking results which can be matched to corresponding computing resources: from HPC clusters, to small or median-size distributed campus grids, and finally to massivescale computing networks including millions of CPUs like the resources available on the WCG.
机译:为了执行大规模的副本交换分子动力学(REMD)模拟以计算蛋白质-配体复合物的结合自由能,我们在IBM的隐式溶剂中实现了结合能分布分析方法(BEDAM)的异步副本交换(AsyncRE)框架。世界社区网格(WCG)并优化了仿真参数,以减少开销并提高WCG AsyncRE仿真的预测能力。我们还使用WCG分布式计算网格和SAMPL4挑战中的301个配体,进行了首次大规模大规模的结合自由能计算,以预测HIV-1整合酶复合物的大规模结合自由能。总共有约1万个模拟复合体,约100万个副本和约2000微秒的汇总MD模拟。在WCG上运行AsyncRE MD模拟需要接受可以运行的副本数量(宽度)与每个副本可以完成的完整RE周期数量(深度)之间的折衷。与在紧密耦合的群集(例如XSEDE)上运行的同步副本交换(SyncRE)相比,在WCG上可以在异构分布式硬件上同时启动更多副本,但是每个完整的RE周期都需要更多开销。我们将WCG结果与AutoDock和更高级的RE模拟结果进行了比较,包括使用变平电位来加速与高能垒引起的慢动力学相关的配体和/或受体自由度的选定采样。我们提出了一种合适的RE模拟策略,以优化可与相应计算资源匹配的高吞吐量对接结果:从HPC集群到小型或中型分布式校园网格,最后到大规模计算网络,包括数百万个CPU(如资源)在WCG上可用。

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