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Accelerated molecular dynamics simulations of the octopamine receptor using GPUs: discovery of an alternate agonist-binding position

机译:使用GPU加速章鱼胺受体的分子动力学模拟:发现另一种激动剂结合位置

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Octopamine receptors (OARs) perform key biological functions in invertebrates, making this class of G-protein coupled receptors (GPCRs) worth considering for insecticide development. However, no crystal structures and very little research exists for OARs. Furthermore, GPCRs are large proteins, are suspended in a lipid bilayer, and are activated on the millisecond timescale, all of which make conventional molecular dynamics (MD) simulations infeasible, even if run on large supercomputers. However, accelerated Molecular Dynamics (aMD) simulations can reduce this timescale to even hundreds of nanoseconds, while running the simulations on graphics processing units (GPUs) would enable even small clusters of GPUs to have processing power equivalent to hundreds of CPUs. Our results show that aMD simulations run on GPUs can successfully obtain the active and inactive state conformations of a GPCR on this reduced timescale. Furthermore, we discovered a potential alternate active-state agonist-binding position in the octopamine receptor which has yet to be observed and may be a novel GPCR agonist-binding position. These results demonstrate that a complex biological system with an activation process on the millisecond timescale can be successfully simulated on the nanosecond timescale using a simple computing system consisting of a small number of GPUs. Proteins 2016; 84:1480-1489. (c) 2016 Wiley Periodicals, Inc.
机译:章鱼胺受体(OAR)在无脊椎动物中具有关键的生物学功能,因此这类G蛋白偶联受体(GPCR)值得考虑用于杀虫剂的开发。但是,没有晶体结构,而且对OAR的研究很少。此外,GPCR是大蛋白,悬浮在脂质双层中,并在毫秒级激活,即使在大型超级计算机上运行,​​所有这些也使得常规分子动力学(MD)模拟不可行。但是,加速的分子动力学(aMD)仿真可以将这一时间尺度缩短至数百纳秒,而在图形处理单元(GPU)上运行仿真将使即使是很小的GPU集群也具有相当于数百个CPU的处理能力。我们的结果表明,在GPU上运行的aMD仿真可以在此缩短的时间范围内成功获得GPCR的活动和非活动状态构象。此外,我们发现了章鱼胺受体中潜在的替代活性状态激动剂结合位置,尚未观察到,可能是新型的GPCR激动剂结合位置。这些结果表明,使用包含少量GPU的简单计算系统,可以在纳秒级时标上成功模拟具有毫秒级时标的激活过程的复杂生物系统。蛋白质2016; 84:1480-1489。 (c)2016年威利期刊有限公司

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