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生物结构中阳离子-π 相互作用的能量和物理化学性质。

Energies and physicochemical properties of cation-π interactions in biological structures.

机构信息

State Key Laboratory of Non-food Biomass Energy and Enzyme Technology, National Engineering Research Center for Non-food Biorefinery, Guangxi Academy of Sciences, 98 Daling Road, Nanning, Guangxi 530007, China.

出版信息

J Mol Graph Model. 2012 Apr;34:38-45. doi: 10.1016/j.jmgm.2011.12.002. Epub 2011 Dec 29.

Abstract

The cation-π interactions occur frequently within or between proteins due to six (Phe, Tyr, Trp, Arg, Lys, and His) of the twenty natural amino acids potentially interacting with metallic cations via these interactions. In this study, quantum chemical calculations and molecular orbital (MO) theory are used to study the energies and properties of cation-π interactions in biological structures. The cation-π interactions of H⁺ and Li⁺ are similar to hydrogen bonds and lithium bonds, respectively, in which the small, naked cations H⁺ and Li⁺ are buried deep within the π-electron density of aromatic molecules, forming stable cation-π bonds that are much stronger than the cation-π interactions of other alkali metal cations. The cation-π interactions of metallic cations with atomic masses greater than that of Li⁺ arise mainly from the coordinate bond comprising empty valence atomic orbitals (AOs) of metallic cations and π-MOs of aromatic molecules, though electrostatic interactions may also contribute to the cation-π interaction. The binding strength of cation-π interactions is determined by the charge and types of AOs in the metallic cations. Cation-π interaction energies are distance- and orientation-dependent; energies decrease with the distance (r) and the orientation angle (θ). In solution, the cation-π energies decrease with the increase of the dielectric constant (ɛ) of the solvent; however, solvation has less influence on the H⁺-π and H₃O⁺-π interactions than on interactions with other cations. The conclusions from this study provide useful theoretical insights into the nature of cation-π interactions and may contribute to the development of better force field parameters for describing the molecular dynamics of cation-π interactions within and between proteins.

摘要

由于二十种天然氨基酸中有六种(苯丙氨酸、色氨酸、酪氨酸、精氨酸、赖氨酸和组氨酸)可以通过这些相互作用与金属阳离子相互作用,因此阳离子-π 相互作用经常在蛋白质内部或之间发生。在这项研究中,使用量子化学计算和分子轨道(MO)理论研究了生物结构中阳离子-π 相互作用的能量和性质。H ⁺ 和 Li ⁺ 的阳离子-π 相互作用分别类似于氢键和锂离子键,其中小的裸露阳离子 H ⁺ 和 Li ⁺ 深深地埋藏在芳香族分子的π 电子密度中,形成比其他碱金属阳离子的阳离子-π 相互作用强得多的稳定阳离子-π 键。原子质量大于 Li ⁺ 的金属阳离子的阳离子-π 相互作用主要来自于包含金属阳离子空价原子轨道(AOs)和芳香族分子的π-MOs 的配位键,尽管静电相互作用也可能对阳离子-π 相互作用有贡献。阳离子-π 相互作用的结合强度取决于金属阳离子中的电荷和 AOs 类型。阳离子-π 相互作用能是距离和取向依赖性的;能量随距离(r)和取向角(θ)的增加而降低。在溶液中,随着溶剂介电常数(ɛ)的增加,阳离子-π 能量降低;然而,与其他阳离子的相互作用相比,溶剂化对 H ⁺-π 和 H₃O ⁺-π 相互作用的影响较小。这项研究的结论为阳离子-π 相互作用的性质提供了有用的理论见解,并可能有助于开发更好的力场参数来描述蛋白质内部和之间的阳离子-π 相互作用的分子动力学。

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