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Using force-based adaptive resolution simulations to calculate solvation free energies of amino acid sidechain analogues

机译:使用基于力的自适应分辨率模拟来计算氨基酸侧链类似物的溶剂化能量

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The calculation of free energy differences is a crucial step in the characterization and understanding of the physical properties of biological molecules. In the development of efficient methods to compute these quantities, a promising strategy is that of employing a dual-resolution representation of the solvent, specifically using an accurate model in the proximity of a molecule of interest and a simplified description elsewhere. One such concurrent multi-resolution simulation method is the Adaptive Resolution Scheme (AdResS), in which particles smoothly change their resolution on-the-fly as they move between different subregions. Before using this approach in the context of free energy calculations, however, it is necessary to make sure that the dual-resolution treatment of the solvent does not cause undesired effects on the computed quantities. Here, we show how AdResS can be used to calculate solvation free energies of small polar solutes using Thermodynamic Integration (TI). We discuss how the potential-energy-based TI approach combines with the force-based AdResS methodology, in which no global Hamiltonian is defined. The AdResS free energy values agree with those calculated from fully atomistic simulations to within a fraction of kBT. This is true even for small atomistic regions whose size is on the order of the correlation length, or when the properties of the coarse-grained region are extremely different from those of the atomistic region. These accurate free energy calculations are possible because AdResS allows the sampling of solvation shell configurations which are equivalent to those of fully atomistic simulations. The results of the present work thus demonstrate the viability of the use of adaptive resolution simulation methods to perform free energy calculations and pave the way for large-scale applications where a substantial computational gain can be attained. Published by AIP Publishing.
机译:自由能差的计算是对生物分子物理性质的表征和理解的关键步骤。在发展这些数量的有效方法的发展中,有希望的策略是采用溶剂的双分辨率表示,具体使用在兴趣分子附近的准确模型和其他地方的简化描述。一种这样的并发多分辨率仿真方法是自适应分辨率方案(地址),其中粒子在不同的子区域之间移动时,粒子在飞行时平稳地改变它们的分辨率。然而,在使用这种方法在自由能量计算的背景下,必须确保溶剂的双分辨率处理不会对计算量造成不期望的影响。在这里,我们展示了使用热力学集成(TI)来如何使用地址计算小极性溶质的溶剂化能量。我们讨论如何与基于力的地址方法结合的基于潜在能量的TI方法,其中没有定义全球哈密顿人。地址自由能值与从完全原子模拟计算的人同意,以便在KBT的一小部分内。即使对于尺寸在相关长度的顺序的小原子区域,或者当粗粒区域的性质与原子区域的粗糙区域非常不同时,这也是如此。这些准确的自由能量计算是可能的,因为地址允许取样等同于完全原子模拟的溶剂化壳配置。因此,本作工作的结果证明了使用自适应分辨率模拟方法的可行性来执行自由能量计算,并为可以获得大量计算增益的大规模应用程序铺平道路。通过AIP发布发布。

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