Physical Chemistry Division, Department of Chemistry, National Institute of Technology Karnataka, Surathkal, Mangalore-575025, India.
J Phys Chem B. 2010 Dec 16;114(49):16632-40. doi: 10.1021/jp108376j. Epub 2010 Nov 18.
Molecular dynamics (MD) simulations of glycylglycine dipeptide with transition metal ions (Mn(2+), Fe(2+), Co(2+), Ni(2+), Cu(2+), and Zn(2+)) in aqueous solutions have been carried out to get an insight into the solvation structure, intermolecular interactions, and salt effects in these systems. The solvation structure and hydrogen bonding were described in terms of radial distribution function (RDF) and spatial distribution function (SDF). The dynamical properties of the solvation structure were also analyzed in terms of diffusion and residence times. The simulation results show the presence of a well-defined first hydration shell around the dipeptide, with water molecules forming hydrogen bonds to the polar groups of the dipeptide. This shell is, however, affected by the strong electric field of divalent metal ions, which at higher ion concentrations lead to the shift in the dipeptide-water RDFs. Higher salt concentrations lead also to increased residence times and slower diffusion rates. In general, smaller ions (Cu(2+), Zn(2+)) demonstrate stronger binding to dipeptide than the larger ones (Fe(2+), Mn(2+)). Simulations do not show any stronger association of peptide molecules indicating their dissolution in water. The above results may be of potential interest to future researchers on these molecular interactions.
已对甘氨酰甘氨酸二肽与过渡金属离子(Mn(2+)、Fe(2+)、Co(2+)、Ni(2+)、Cu(2+)和 Zn(2+))在水溶液中的分子动力学(MD)模拟进行了研究,以深入了解这些体系中的溶剂化结构、分子间相互作用和盐效应。溶剂化结构和氢键通过径向分布函数(RDF)和空间分布函数(SDF)来描述。还根据扩散和停留时间分析了溶剂化结构的动力学特性。模拟结果表明,在二肽周围存在一个明确的第一水合壳,水分子与二肽的极性基团形成氢键。然而,这个壳受到二价金属离子强电场的影响,在较高的离子浓度下,导致二肽-水 RDF 的偏移。较高的盐浓度还导致停留时间延长和扩散速率减慢。一般来说,较小的离子(Cu(2+)、Zn(2+))比较大的离子(Fe(2+)、Mn(2+))与二肽的结合更强。模拟结果表明肽分子没有更强的缔合,表明它们在水中溶解。这些结果可能对未来关于这些分子相互作用的研究人员具有潜在的兴趣。