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水溶液中盐桥的结构与稳定性。

Structures and stability of salt-bridge in aqueous solution.

作者信息

Sagarik Kritsana, Chaiyapongs Supaporn

机构信息

School of Chemistry, Institute of Science, Suranaree University of Technology, Nakhon Ratchasima 30000, Thailand.

出版信息

Biophys Chem. 2005 Sep 1;117(2):119-40. doi: 10.1016/j.bpc.2005.04.012.

Abstract

Structures and stability of salt-bridges in aqueous solutions were investigated using a complex formed from the guanidinium (Gdm+) and formate (FmO-) ions as a model system. The Test-particle model (T-model) potentials to describe the interactions in the Gdm+-H2O, FmO(-)-H2O and Gdm+-FmO- complexes were constructed, tested and applied in molecular dynamics (MD) simulations of the aqueous solutions at 298 K. The three-dimensional structures and energetic of the hydrogen bond (H-bond) networks of water in the first hydration shells of the Gdm+ and FmO- ions, as well as the Gdm+-FmO- complex, were visualized and analyzed using various probability distribution (PD) maps. The structures of the average potential energy landscapes at the H-bond networks were employed to characterize the stability and dynamic behavior of water molecules in the first hydration shells of the solutes. It was observed that water molecules in the first hydration shell of the close-contact Gdm+-FmO- complex form associated H-bond networks, which introduce a net stabilization effect to the ion-pair, whereas those in the interstitial H-bond network destabilize and break the solvent-separated Gdm+-FmO- complex. The present results showed that, in order to provide complete insights into the structures and stability of ion-pairs in aqueous solutions, explicit water molecules have to be included in the model calculations.

摘要

使用由胍鎓(Gdm⁺)和甲酸根(FmO⁻)离子形成的配合物作为模型系统,研究了水溶液中盐桥的结构和稳定性。构建、测试了用于描述Gdm⁺-H₂O、FmO⁻-H₂O和Gdm⁺-FmO⁻配合物中相互作用的测试粒子模型(T模型)势,并将其应用于298K水溶液的分子动力学(MD)模拟。使用各种概率分布(PD)图对Gdm⁺和FmO⁻离子以及Gdm⁺-FmO⁻配合物的第一水合壳层中水分子的氢键(H键)网络的三维结构和能量进行了可视化和分析。利用氢键网络处的平均势能景观结构来表征溶质第一水合壳层中水分子的稳定性和动态行为。观察到紧密接触的Gdm⁺-FmO⁻配合物的第一水合壳层中的水分子形成相关的氢键网络,这对离子对引入了净稳定作用,而间隙氢键网络中的水分子则使溶剂分离的Gdm⁺-FmO⁻配合物不稳定并使其断裂。目前的结果表明,为了全面了解水溶液中离子对的结构和稳定性,在模型计算中必须包含明确的水分子。

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