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组氨酸和半胱氨酸锌(II)结合残基在具有四个蛋白质配体的位点中 AMBER 力场的升级和验证。

Upgrading and Validation of the AMBER Force Field for Histidine and Cysteine Zinc(II)-Binding Residues in Sites with Four Protein Ligands.

机构信息

Dipartimento di Chimica "Ugo Schiff" , Università degli Studi di Firenze , Via della Lastruccia 3 , 50019 Sesto Fiorentino , Italy.

Magnetic Resonance Center (CERM)-Università degli Studi di Firenze , Via L. Sacconi 6 , 50019 Sesto Fiorentino , Italy.

出版信息

J Chem Inf Model. 2019 Sep 23;59(9):3803-3816. doi: 10.1021/acs.jcim.9b00407. Epub 2019 Aug 21.

DOI:10.1021/acs.jcim.9b00407
PMID:31385702
Abstract

We developed and validated a novel force field in the context of the AMBER parameterization for the simulation of zinc(II)-binding proteins. The proposed force field assumes nonbonded spherical interactions between the central zinc(II) and the coordinating residues. A crucial innovative aspect of our approach is to account for the polarization effects of the cation by redefining the atomic charges of the coordinating residues and an adjustment of Lennard-Jones parameters of Zn-interacting atoms to reproduce mean distance distributions. The optimal transferable parametrization was obtained by performing accurate quantum mechanical calculations on a training set of high-quality protein structures, encompassing the most common folds of zinc(II) sites. The addressed sites contain a zinc(II) ion tetra-coordinated by histidine and cysteine residues and represent about 70% of all physiologically relevant zinc(II) sites in the Protein Data Bank. Molecular dynamics simulations with explicit solvent, carried out on several zinc(II)-binding proteins not included in the training set, show that our model for zinc(II) sites preserves the tetra-coordination of the metal site with remarkable stability, yielding zinc(II)-X mean distances similar to experimental data. Finally, the model was tested by evaluating the zinc(II)-binding affinities, using the alchemical free energy perturbation approach. The calculated dissociation constants correlate satisfactorily with the experimental counterpart demonstrating the validity and transferability of the proposed parameterization for zinc(II)-binding proteins.

摘要

我们在 AMBER 参数化的背景下开发并验证了一种新的力场,用于模拟锌(II)结合蛋白。所提出的力场假设中心锌(II)和配位残基之间存在非键球形相互作用。我们方法的一个关键创新之处是通过重新定义配位残基的原子电荷并调整与 Zn 相互作用的原子的 Lennard-Jones 参数来考虑阳离子的极化效应,以重现平均距离分布。通过对包含最常见锌(II)结合位点折叠的高质量蛋白质结构的训练集进行精确的量子力学计算,获得了最佳的可转移参数化。所涉及的位点包含由组氨酸和半胱氨酸残基四配位的锌(II)离子,约占蛋白质数据库中所有生理相关锌(II)位点的 70%。在不包括在训练集中的几个锌(II)结合蛋白上进行的带有显式溶剂的分子动力学模拟表明,我们的锌(II)位点模型以显著的稳定性保持金属位点的四配位,产生与实验数据相似的锌(II)-X 平均距离。最后,通过使用变分自由能扰动方法评估锌(II)结合亲和力来测试该模型。计算的离解常数与实验值相当吻合,证明了所提出的锌(II)结合蛋白参数化的有效性和可转移性。

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