Hernández Belén, Pflüger Fernando, Dauchez Manuel, Ghomi Mahmoud
Laboratoire Matrice Extracellulaire et Dynamique Cellulaire (MEDyC), UMR 7369, Université de Reims, Pôle Sciences, Faculté des Sciences, Moulin de la Housse, 51687 Reims Cedex 2, France.
Phys Chem Chem Phys. 2017 Nov 1;19(42):28684-28695. doi: 10.1039/c7cp04685e.
Water interaction with peptide chains is one of the key structure stabilizing factors in an aqueous environment. Because of its strong polar character, water can bind to both anionic and cationic sites via electrostatic interactions. It can also act as a hydrogen-bond donor or acceptor according to its interactions with different polar groups in the backbone and side chains of peptides and proteins. Based on density functional theory calculations, the present report aims at illustrating the most energetically favorable interaction sites of aromatic side chains of phenylalanine, tyrosine, tryptophan, and histidine (neutral and protonated species) with surrounding water molecules. It was shown that beyond the strong interactions occurring between water and the aromatic ring acceptor/donor sites, such as O-H, N-H and -N[double bond, length as m-dash] groups, weaker interactions with π-electron clouds should also be considered. The latter type of binding, hereafter referred to as Hπ interaction, involves one of the water hydrogen atoms (H) pointing toward the aromatic ring. Upon comparison between the theoretical data obtained from a purely implicit hydration model, i.e. a polarized solvent continuum, and those collected from a mixture of implicit and explicit hydration models, it has been shown that the explicit water molecule binding to aromatic rings affects the relative energies of the rotamers generated by the two side chain torsion angles (χ and χ).
在水性环境中,水与肽链的相互作用是关键的结构稳定因素之一。由于水具有很强的极性,它可以通过静电相互作用与阴离子和阳离子位点结合。根据其与肽和蛋白质主链及侧链中不同极性基团的相互作用,水还可以充当氢键供体或受体。基于密度泛函理论计算,本报告旨在阐明苯丙氨酸、酪氨酸、色氨酸和组氨酸(中性和质子化形式)的芳香侧链与周围水分子之间能量上最有利的相互作用位点。结果表明,除了水与芳香环受体/供体位点(如O-H、N-H和-N=基团)之间发生的强相互作用外,还应考虑与π电子云的较弱相互作用。后一种结合类型,以下称为Hπ相互作用,涉及一个指向芳香环的水氢原子(H)。通过比较从纯隐式水合模型(即极化溶剂连续体)获得的理论数据与从隐式和显式水合模型混合物中收集的数据,已表明与芳香环结合的显式水分子会影响由两个侧链扭转角(χ和χ)产生的旋转异构体的相对能量。