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Solvent hydrogen-bond occlusion: a new model of polar desolvation for biomolecular energetics

机译:溶剂氢键闭塞:极性去溶剂化生物分子能学的新模型

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摘要

Water engages in two important types of interactions near biomolecules: it forms ordered “cages” around exposed hydrophobic regions, and it participates in hydrogen bonds with surface polar groups. Both types of interaction are critical to biomolecular structure and function, but explicitly including an appropriate number of solvent molecules makes many applications computationally intractable. A number of implicit solvent models have been developed to address this problem, many of which treat these two solvation effects separately. Here we describe a new model to capture polar solvation effects, called SHO (“solvent hydrogen-bond occlusion”); our model aims to directly evaluate the energetic penalty associated with displacing discrete first-shell water molecules near each solute polar group. We have incorporated SHO into the Rosetta energy function, and find that scoring protein structures with SHO provides superior performance in loop modeling, virtual screening, and protein structure prediction benchmarks. These improvements stem from the fact that SHO accurately identifies and penalizes polar groups that do not participate in hydrogen bonds, either with solvent or with other solute atoms (“unsatisfied” polar groups). We expect that in future, SHO will enable higher-resolution predictions for a variety of molecular modeling applications.
机译:水在生物分子附近参与两种重要的相互作用类型:水在暴露的疏水区域周围形成有序的“笼”,并且与表面极性基团参与氢键。两种类型的相互作用对于生物分子的结构和功能都是至关重要的,但是明确包括适当数量的溶剂分子使得许多应用在计算上难以实现。已经开发出许多隐式溶剂模型来解决该问题,其中许多模型分别处理了这两种溶剂化作用。在这里,我们描述了一种捕获极性溶剂化效应的新模型,称为SHO(“溶剂氢键闭塞”);我们的模型旨在直接评估与置换每个溶质极性基团附近的离散第一壳水分子相关的能量损失。我们已经将SHO纳入Rosetta能量函数中,并且发现使用SHO评分蛋白质结构在循环建模,虚拟筛选和蛋白质结构预测基准方面提供了卓越的性能。这些改进源于以下事实:SHO可以准确识别并惩罚不参与氢键的极性基团,无论是溶剂还是其他溶质原子(“不满意”的极性基团)。我们希望将来,SHO将为各种分子建模应用程序提供更高分辨率的预测。

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  • 年(卷),期 -1(38),16
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  • 页码 1321–1331
  • 总页数 24
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