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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Accelerated Molecular Dynamics Simulations with the AMOEBA Polarizable Force Field on Graphics Processing Units
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Accelerated Molecular Dynamics Simulations with the AMOEBA Polarizable Force Field on Graphics Processing Units

机译:在图形处理单元上使用AMOEBA可极化力场进行的加速分子动力学模拟

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The accelerated molecular dynamics (aMD) method has recently been shown to enhance the sampling of biomolecules in molecular dynamics (MD) simulations, often by several orders of magnitude. Here, we describe an implementation of the aMD method for the OpenMM application layer that takes full advantage of graphics processing units (GPUs) computing. The aMD method is shown to work in combination with the AMOEBA polarizable force field (AMOEBA-aMD), allowing the simulation of long time-scale events with a polarizable force field. Benchmarks are provided to show that the AMOEBA-aMD method is efficiently implemented and produces accurate results in its standard parametrization. For the BPTI protein, we demonstrate that the protein structure described with AMOEBA remains stable even on the extended time scales accessed at high levels of accelerations. For the DNA repair metalloenzyme endonuclease IV, we show that the use of the AMOEBA force field is a significant improvement over fixed charged models for describing the enzyme active-site. The new AMOEBA-aMD method is publicly available (http://wiki.simtk. org/openmm/VirtualRepository) and promises to be interesting for studying complex systems that can benefit from both the use of a polarizable force field and enhanced sampling.
机译:最近已证明,加速分子动力学(aMD)方法通常可以将分子动力学(MD)模拟中的生物分子采样提高几个数量级。在这里,我们描述了OpenMM应用程序层的aMD方法的实现,该方法充分利用了图形处理单元(GPU)的计算能力。显示了aMD方法与AMOEBA极化力场(AMOEBA-aMD)结合使用,从而可以模拟具有极化力场的长时间事件。提供的基准表明AMOEBA-aMD方法得到了有效实施,并在其标准参数化中产生了准确的结果。对于BPTI蛋白,我们证明了AMOEBA描述的蛋白结构即使在高加速水平下获得的延长时间尺度上也保持稳定。对于DNA修复金属酶内切核酸酶IV,我们表明AMOEBA力场的使用相对于固定的带电模型描述了酶活性位点,具有显着的改进。新的AMOEBA-aMD方法是公开可用的(http://wiki.simtk.org/openmm/VirtualRepository),并有望成为研究复杂系统的有趣方法,这些系统既可以使用极化力场,也可以使用增强采样技术。

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