Allen Reeshemah N, Shukla M K, Burda Jaroslav V, Leszczynski Jerzy
Computational Center for Molecular Structure and Interactions, Department of Chemistry, Jackson State University, Jackson, Mississippi 39217, USA.
J Phys Chem A. 2006 May 11;110(18):6139-44. doi: 10.1021/jp0603379.
The geometries and energetics of complexes of Li(+), Na(+), K(+), Be(2+), Mg(2+), and Ca(2+)metal cations with different possible uric acid anions (urate) were studied. The complexes were optimized at the B3LYP level and the 6-311++G(d,p) basis set. Complexes of urate with Mg(2+), and Ca(2+)metal cations were also optimized at the MP2/6-31+G(d) level. Single point energy calculations were performed at the MP2/6-311++G(d,p) level. The interactions of the metal cations at different nucleophilic sites of various possible urate were considered. It was revealed that metal cations would interact with urate in a bi-coordinate manner. In the gas phase, the most preferred position for the interaction of Li(+), Na(+), and K(+) cations is between the N(3) and O(2) sites, while all divalent cations Be(2+), Mg(2+), and Ca(2+) prefer binding between the N(7) and O(6) sites of the corresponding urate. The influence of aqueous solvent on the relative stability of different complexes has been examined using the Tomasi's polarized continuum model. The basis set superposition error (BSSE) corrected interaction energy was also computed for complexes. The AIM theory has been applied to analyze the properties of the bond critical points (electron densities and their Laplacians) involved in the coordination between urate and the metal cations. It was revealed that aqueous solvation would have significant effect on the relative stability of complexes obtained by the interaction of urate with Mg(2+) and Ca(2+)cations. Consequently, several complexes were found to exist in the water solution. The effect of metal cations on different NH and CO stretching vibrational modes of uric acid has also been discussed.
研究了Li(+)、Na(+)、K(+)、Be(2+)、Mg(2+)和Ca(2+)金属阳离子与不同可能的尿酸阴离子(尿酸盐)形成的配合物的几何结构和能量。配合物在B3LYP水平和6-311++G(d,p)基组下进行优化。尿酸盐与Mg(2+)和Ca(2+)金属阳离子形成的配合物也在MP2/6-31+G(d)水平下进行优化。单点能量计算在MP2/6-311++G(d,p)水平下进行。考虑了金属阳离子在各种可能尿酸盐的不同亲核位点的相互作用。结果表明,金属阳离子将以双配位方式与尿酸盐相互作用。在气相中,Li(+)、Na(+)和K(+)阳离子相互作用的最优选位置在N(3)和O(2)位点之间,而所有二价阳离子Be(2+)、Mg(2+)和Ca(2+)更倾向于在相应尿酸盐的N(7)和O(6)位点之间结合。使用Tomasi的极化连续介质模型研究了水溶剂对不同配合物相对稳定性的影响。还计算了配合物的基组叠加误差(BSSE)校正相互作用能。应用AIM理论分析了尿酸盐与金属阳离子配位中涉及的键临界点(电子密度及其拉普拉斯算子)的性质。结果表明,水溶剂化对尿酸盐与Mg(2+)和Ca(2+)阳离子相互作用形成的配合物的相对稳定性有显著影响。因此,发现几种配合物存在于水溶液中。还讨论了金属阳离子对尿酸不同NH和CO伸缩振动模式的影响。