首页> 外文会议>2011 48th ACM/EDAC/IEEE Design Automation Conference (DAC) >A fast solver for nonlocal electrostatic theory in biomolecular science and engineering
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A fast solver for nonlocal electrostatic theory in biomolecular science and engineering

机译:生物分子科学与工程中非局部静电理论的快速求解器

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Biological molecules perform their functions surrounded by water and mobile ions, which strongly influence molecular structure and behavior. The electrostatic interactions between a molecule and solvent are particularly difficult to model theoretically, due to the forces' long range and the collective response of many thousands of solvent molecules. The dominant modeling approaches represent the two extremes of the trade-off between molecular realism and computational efficiency: all-atom molecular dynamics in explicit solvent, and macroscopic continuum theory (the Poisson or Poisson-Boltzmann equation). We present the first fast-solver implementation of an advanced nonlocal continuum theory that combines key advantages of both approaches. In particular, molecular realism is included by limiting solvent dielectric response on short length scales, using a model for nonlocal dielectric response allows the resulting problem (a linear integro-differential Poisson equation) to be reformulated as a system of coupled boundary-integral equations using double reciprocity. Whereas previous studies using the nonlocal theory had been limited to small model problems, owing to computational cost, our work opens the door to studying much larger problems including rational drug design, protein engineering, and nanofluidics
机译:生物分子在被水和移动离子包围的情况下执行其功能,这会严重影响分子的结构和行为。分子和溶剂之间的静电相互作用在理论上特别难于建模,这是由于力的作用范围很广以及成千上万个溶剂分子的集体响应所致。占主导地位的建模方法代表了分子真实性和计算效率之间权衡的两个极端:显式溶剂中的全原子分子动力学和宏观连续性理论(Poisson或Poisson-Boltzmann方程)。我们介绍了结合了两种方法的主要优点的高级非局部连续体理论的第一个快速求解器实现。尤其是,通过限制溶剂在短长度范围内的介电响应来包括分子真实性,使用非局部介电响应模型可以将结果问题(线性积分微分泊松方程)重新形成为耦合边界积分方程组,使用双重互惠。鉴于以前的研究,由于计算量大,使用非局部理论的研究仅限于小模型问题,但我们的工作为研究更大的问题(包括合理的药物设计,蛋白质工程和纳米流体)打开了大门

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