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在显式溶剂原子模拟和 pK(a)计算中,具有两个化学偶联滴定位点的氨基酸的精确三态模型。

Accurate Three States Model for Amino Acids with Two Chemically Coupled Titrating Sites in Explicit Solvent Atomistic Constant pH Simulations and pK(a) Calculations.

机构信息

Theoretical & Computational Biophysics Department, Max Planck Institute for Biophysical Chemistry , Am Fassberg 11, 37077 Göttingen, Germany.

出版信息

J Chem Theory Comput. 2017 Jan 10;13(1):147-160. doi: 10.1021/acs.jctc.6b00807. Epub 2016 Dec 14.

DOI:10.1021/acs.jctc.6b00807
PMID:27966355
Abstract

Correct protonation of titratable groups in biomolecules is crucial for their accurate description by molecular dynamics simulations. In the context of constant pH simulations, an additional protonation degree of freedom is introduced for each titratable site, allowing the protonation state to change dynamically with changing structure or electrostatics. Here, we extend previous approaches for an accurate description of chemically coupled titrating sites. A second reaction coordinate is used to switch between two tautomeric states of an amino acid with chemically coupled titratable sites, such as aspartate (Asp), glutamate (Glu), and histidine (His). To this aim, we test a scheme involving three protonation states. To facilitate charge neutrality as required for periodic boundary conditions and Particle Mesh Ewald (PME) electrostatics, titration of each respective amino acid is coupled to a "water" molecule that is charged in the opposite direction. Additionally, a force field modification for Amber99sb is introduced and tested for the description of carboxyl group protonation. Our three states model is tested by titration simulations of Asp, Glu, and His, yielding a good agreement, reproducing the correct geometry of the groups in their different protonation forms. We further show that the ion concentration change due to the neutralizing "water" molecules does not significantly affect the protonation free energies of the titratable groups, suggesting that the three states model provides a good description of biomolecular dynamics at constant pH.

摘要

准确描述生物分子中可滴定基团的质子化状态对于通过分子动力学模拟进行准确描述至关重要。在恒 pH 模拟中,为每个可滴定位点引入了额外的质子化自由度,允许质子化状态随着结构或静电变化而动态变化。在这里,我们扩展了以前用于准确描述化学偶联滴定位点的方法。使用第二个反应坐标在具有化学偶联滴定位点的氨基酸(如天冬氨酸(Asp)、谷氨酸(Glu)和组氨酸(His))的两种互变异构体状态之间切换。为此,我们测试了一种涉及三种质子化状态的方案。为了满足周期性边界条件和粒子网格 Ewald(PME)静电的电荷中性要求,每个相应氨基酸的滴定都与带相反电荷的“水分子”偶联。此外,引入了 Amber99sb 的力场修正,并对羧基质子化的描述进行了测试。我们的三种状态模型通过 Asp、Glu 和 His 的滴定模拟进行了测试,结果吻合良好,重现了这些基团在不同质子化形式下的正确几何形状。我们进一步表明,由于中和“水分子”而导致的离子浓度变化不会显著影响可滴定基团的质子化自由能,这表明三种状态模型为恒 pH 下的生物分子动力学提供了很好的描述。

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