Liu Qingzhu, Li Ke, Lv Gaochao, Li Xi, Peng Ying, Lin Jianguo, Qiu Ling
Key Laboratory of Nuclear Medicine, Ministry of Health, Jiangsu Key Laboratory of Molecular Nuclear Medicine, Jiangsu Institute of Nuclear Medicine, Wuxi, 214063, People's Republic of China.
J Mol Model. 2018 Oct 9;24(11):310. doi: 10.1007/s00894-018-3826-1.
A computational study was carried out to characterize the hydrogen-bonded dimers of Zoledronate (ZOL), which is used widely in treating skeletal diseases. The stable conformations, hydrogen bonding interactions, IR spectra, thermodynamic properties, and electronic characteristics of nine possible ZOL dimers were studied using density functional theory (DFT) at the B3LYP/6-311++G** level. The stability of dimers was determined according to the analyses of total electronic energies and hydrogen bonding interactions. The results showed that both the number and intensity of hydrogen bonds played an important role in determining the stability order of dimers, and the hydrogen bonding interactions in dimers resulted in a red shift of hydroxyl vibration with a corresponding increase in intensity. The calculated thermodynamic properties illustrated that the dimerization process can take place spontaneously at room temperature. Natural bond orbital and atoms in molecules analyses revealed that the nature of hydrogen bonding interactions was attributed to the interactions from lone pair orbital n(A) to the antibonding orbital σ*(D-H), and the interactions were closed-shell interactions in hydrogen-bonded dimers of ZOL. Graphical abstract Changes in Gibbs free energy and infrared spectra of ZL in the dimerization process.
开展了一项计算研究以表征唑来膦酸盐(ZOL)的氢键二聚体,ZOL广泛用于治疗骨骼疾病。使用密度泛函理论(DFT)在B3LYP/6-311++G*水平上研究了九种可能的ZOL二聚体的稳定构象、氢键相互作用、红外光谱、热力学性质和电子特性。根据总电子能量和氢键相互作用的分析确定二聚体的稳定性。结果表明,氢键的数量和强度在决定二聚体的稳定性顺序中都起着重要作用,并且二聚体中的氢键相互作用导致羟基振动发生红移,强度相应增加。计算得到的热力学性质表明二聚化过程在室温下可以自发进行。自然键轨道和分子中的原子分析表明,氢键相互作用的本质归因于孤对轨道n(A)到反键轨道σ(D-H)的相互作用,并且这些相互作用是ZOL氢键二聚体中的闭壳层相互作用。图形摘要ZL在二聚化过程中的吉布斯自由能和红外光谱变化。