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金属-乙酸盐相互作用的热力学

Thermodynamics of Metal-Acetate Interactions.

作者信息

Jafari Majid, Li Zhen, Song Lin Frank, Sagresti Luca, Brancato Giuseppe, Merz Kenneth M

机构信息

Department of Biochemistry and Molecular Biology, Michigan State University, East Lansing, Michigan 48824, United States.

Department of Chemistry, Michigan State University, East Lansing, Michigan 48824, United States.

出版信息

J Phys Chem B. 2024 Jan 25;128(3):684-697. doi: 10.1021/acs.jpcb.3c06567. Epub 2024 Jan 16.

Abstract

Metal ions play crucial roles in protein- and ligand-mediated interactions. They not only act as catalysts to facilitate biological processes but are also important as protein structural elements. Accurately predicting metal ion interactions in computational studies has always been a challenge, and various methods have been suggested to improve these interactions. One such method is the 12-6-4 Lennard-Jones (LJ)-type nonbonded model. Using this model, it has been possible to successfully reproduce the experimental properties of metal ions in aqueous solution. The model includes induced dipole interactions typically ignored in the standard 12-6 LJ nonbonded model. In this we expand the applicability of this model to metal ion-carboxylate interactions. Using 12-6-4 parameters that reproduce the solvation free energies of the metal ions leads to an overestimation of metal ion-acetate interactions, thus, prompting us to fine-tune the model to specifically handle the latter. We also show that the standard 12-6 LJ model significantly falls short in reproducing the experimental binding free energy between acetate and 11 metal ions (Ni(II), Mg(II), Cu(II), Zn(II), Co(II), Cu(I), Fe(II), Mn(II), Cd(II), Ca(II), and Ag(I)). In this study, we describe optimized C parameters for the 12-6-4 LJ nonbonded model to be used with three widely employed water models (Transferable Intermolecular Potential with 3 Points (TIP3P), Simple Point Charge Extended (SPC/E), and Optimal Point Charge (OPC) water models). These parameters can accurately match the experimental binding free energy between 11 metal ions and acetate. These parameters can be applied to the study of metalloproteins and transition metal ion channels and transporters, as acetate serves as a representative of the negatively charged amino acid side chains from aspartate and glutamate.

摘要

金属离子在蛋白质和配体介导的相互作用中起着至关重要的作用。它们不仅作为催化剂促进生物过程,而且作为蛋白质结构元件也很重要。在计算研究中准确预测金属离子相互作用一直是一项挑战,人们提出了各种方法来改善这些相互作用。一种这样的方法是12 - 6 - 4 Lennard - Jones(LJ)型非键模型。使用该模型,已能够成功再现金属离子在水溶液中的实验性质。该模型包括标准12 - 6 LJ非键模型中通常忽略的诱导偶极相互作用。在此,我们将该模型的适用性扩展到金属离子 - 羧酸盐相互作用。使用能再现金属离子溶剂化自由能的12 - 6 - 4参数会导致对金属离子 - 乙酸盐相互作用的高估,因此促使我们对模型进行微调以专门处理后者。我们还表明,标准12 - 6 LJ模型在再现乙酸盐与11种金属离子(Ni(II)、Mg(II)、Cu(II)、Zn(II)、Co(II)、Cu(I)、Fe(II)、Mn(II)、Cd(II)、Ca(II)和Ag(I))之间的实验结合自由能方面明显不足。在本研究中,我们描述了用于12 - 6 - 4 LJ非键模型的优化C参数,该模型可与三种广泛使用的水模型(三点可转移分子势(TIP3P)、简单点电荷扩展(SPC/E)和最佳点电荷(OPC)水模型)一起使用。这些参数可以准确匹配11种金属离子与乙酸盐之间的实验结合自由能。这些参数可应用于金属蛋白以及过渡金属离子通道和转运体的研究,因为乙酸盐可作为天冬氨酸和谷氨酸带负电荷氨基酸侧链的代表。

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