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首页> 外文期刊>Journal of chemical theory and computation: JCTC >ProMetCS: An Atomistic Force Field for Modeling Protein-Metal Surface Interactions in a Continuum Aqueous Solvent
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ProMetCS: An Atomistic Force Field for Modeling Protein-Metal Surface Interactions in a Continuum Aqueous Solvent

机译:ProMetCS:原子力场,用于在连续水溶液中模拟蛋白质-金属表面相互作用

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摘要

In order to study protein-inorganic surface association processes, we have developed a physics-based energy model, the ProMetCS model, which describes protein-surface interactions at the atomistic level while treating the solvent as a continuum. Here, we present an approach to modeling the interaction of a protein with an atomically flat Au(111) surface in an aqueous solvent. Protein-gold interactions are modeled as the sum of van der Waals, weak chemisorption, and electrostatic interactions, as well as the change in free energy due to partial desolvation of the protein and the metal surface upon association. This desolvation energy includes the effects of water-protein, water-surface, and water-water interactions and has been parametrized using molecular dynamics (MD) simulations of water molecules and a test atom at a gold-water interface. The proposed procedure for computing the energy terms is mostly grid-based and is therefore efficient for application to long-time simulations of protein binding processes. The approach was tested for capped amino acid residues whose potentials of mean force for binding to a gold surface were computed and compared with those obtained previously in MD simulations with water treated explicitly. Calculations show good quantitative agreement with the results from MD simulations for all but one amino acid (Trp), as well as correspondence with available experimental data on the adhesion properties of amino acids.
机译:为了研究蛋白质-无机表面缔合过程,我们开发了基于物理学的能量模型ProMetCS模型,该模型描述了原子级的蛋白质-表面相互作用,同时将溶剂视为连续体。在这里,我们提出了一种方法来模拟蛋白质与水性溶剂中原子平坦的Au(111)表面的相互作用。蛋白质-金的相互作用被建模为范德华,弱化学吸附和静电相互作用的总和,以及由于缔合后蛋白质和金属表面的部分去溶剂化而产生的自由能变化。去溶剂化能量包括水-蛋白质,水-表面和水-水相互作用的影响,并且已经使用水分子和金-水界面处的测试原子的分子动力学(MD)模拟进行了参数化。所提出的计算能量项的程序主要基于网格,因此对于应用于蛋白质结合过程的长期模拟非常有效。测试了该方法的封端氨基酸残基,计算了其与金表面结合的平均力的潜力,并将其与先前在MD模拟中经过明确处理的水所获得的平均值进行了比较。计算结果表明,除一种氨基酸(Trp)以外,所有氨基酸的MD模拟结果均与定量结果吻合良好,并且与可用的氨基酸粘附性能实验数据相符。

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