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锌与氨基酸络合物中的相互作用能:从头算与基于力场计算的比较

Interaction Energies in Complexes of Zn and Amino Acids: A Comparison of Ab Initio and Force Field Based Calculations.

作者信息

Ahlstrand Emma, Hermansson Kersti, Friedman Ran

机构信息

Department of Chemistry and Biomedical Sciences, Linnæus University , 391 82 Kalmar, Sweden.

Linnæus University Centre for Biomaterials Chemistry , 391 82 Kalmar, Sweden.

出版信息

J Phys Chem A. 2017 Apr 6;121(13):2643-2654. doi: 10.1021/acs.jpca.6b12969. Epub 2017 Mar 24.

Abstract

Zinc plays important roles in structural stabilization of proteins, enzyme catalysis, and signal transduction. Many Zn binding sites are located at the interface between the protein and the cellular fluid. In aqueous solutions, Zn ions adopt an octahedral coordination, while in proteins zinc can have different coordinations, with a tetrahedral conformation found most frequently. The dynamics of Zn binding to proteins and the formation of complexes that involve Zn are dictated by interactions between Zn and its binding partners. We calculated the interaction energies between Zn and its ligands in complexes that mimic protein binding sites and in Zn complexes of water and one or two amino acid moieties, using quantum mechanics (QM) and molecular mechanics (MM). It was found that MM calculations that neglect or only approximate polarizability did not reproduce even the relative order of the QM interaction energies in these complexes. Interaction energies calculated with the CHARMM-Drude polarizable force field agreed better with the ab initio results, although the deviations between QM and MM were still rather large (40-96 kcal/mol). In order to gain further insight into Zn-ligand interactions, the free energies of interaction were estimated by QM calculations with continuum solvent representation, and we performed energy decomposition analysis calculations to examine the characteristics of the different complexes. The ligand-types were found to have high impact on the relative strength of polarization and electrostatic interactions. Interestingly, ligand-ligand interactions did not play a significant role in the binding of Zn. Finally, analysis of ligand exchange energies suggests that carboxylates could be exchanged with water molecules, which explains the flexibility in Zn binding dynamics. An exchange between carboxylate (Asp/Glu) and imidazole (His) is less likely.

摘要

锌在蛋白质的结构稳定、酶催化和信号转导中发挥着重要作用。许多锌结合位点位于蛋白质与细胞液的界面处。在水溶液中,锌离子采取八面体配位,而在蛋白质中锌可以有不同的配位方式,其中四面体构象最为常见。锌与蛋白质的结合动力学以及涉及锌的复合物的形成是由锌与其结合伙伴之间的相互作用决定的。我们使用量子力学(QM)和分子力学(MM)计算了模拟蛋白质结合位点的复合物以及锌与水和一个或两个氨基酸部分形成的复合物中锌与其配体之间的相互作用能。结果发现,忽略或仅近似极化率的分子力学计算甚至无法重现这些复合物中量子力学相互作用能的相对顺序。尽管量子力学和分子力学之间的偏差仍然相当大(40 - 96千卡/摩尔),但使用CHARMM - Drude极化力场计算的相互作用能与从头算结果更吻合。为了进一步深入了解锌 - 配体相互作用,通过具有连续溶剂表示的量子力学计算估计了相互作用自由能,并且我们进行了能量分解分析计算以研究不同复合物的特征。发现配体类型对极化和静电相互作用的相对强度有很大影响。有趣的是,配体 - 配体相互作用在锌的结合中没有起到重要作用。最后,配体交换能的分析表明羧酸盐可以与水分子交换,这解释了锌结合动力学的灵活性。羧酸盐(天冬氨酸/谷氨酸)和咪唑(组氨酸)之间的交换可能性较小。

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