Noori Tahneh Akram, Bagheri Novir Samaneh, Balali Ebrahim
Department of Pharmaceutical Chemistry, Faculty of Pharmaceutical Chemistry, Pharmaceutical Sciences Branch, Islamic Azad University, Tehran, Iran.
J Mol Model. 2017 Nov 25;23(12):356. doi: 10.1007/s00894-017-3522-6.
The geometrical structure, electronic and optical properties, electronic absorption spectra, vibrational frequencies, natural charge distribution, MEP analysis and thermodynamic properties of the trans and cis structures of the drug thiothixene were investigated using density functional theory (DFT) and time-dependent DFT (TDDFT) methods with the B3LYP hybrid functional and 6-311 + G(d,p) basis set. The results of the calculations demonstrate that the cis structure of thiothixene has appropriate quantum properties that can act as an active medicine. The relative energies of trans and cis structures of thiothixene shows that the cis structure is more stable than the trans structure, with a small energy difference. TDDFT calculations show that the cis structure of thiothixene has the best absorption properties. The calculated NLO properties show that the NLO properties of the cis structure of thiothixene are higher than the trans structure, and the fact that the chemical hardness of the cis structure is lower than that of the trans structure that indicates that the reactivity and charge transfer of the cis isomer of thiothixene is higher than that of trans thiothixene. The molecular electrostatic potential (MEP) maps of both structures of thiothixene demonstrate that the oxygen atoms of the molecule are appropriate areas for electrophilic reactions. The vibrational frequencies of the two conformations of thiothixene demonstrate that both structures of thiothixene have almost similar modes of vibrations. The calculated thermodynamic parameters show that these quantities increase with enhancing temperature due to the enhancement of molecular vibrational intensities with temperature. Graphical abstract Trans/Cis isomerization of thiothixene drug.
采用密度泛函理论(DFT)和含时密度泛函理论(TDDFT)方法,使用B3LYP杂化泛函和6-311+G(d,p)基组,对药物硫利达嗪的反式和顺式结构的几何结构、电子和光学性质、电子吸收光谱、振动频率、自然电荷分布、分子静电势(MEP)分析及热力学性质进行了研究。计算结果表明,硫利达嗪的顺式结构具有合适的量子性质,可作为活性药物。硫利达嗪反式和顺式结构的相对能量表明,顺式结构比反式结构更稳定,能量差较小。TDDFT计算表明,硫利达嗪的顺式结构具有最佳的吸收性能。计算得到的非线性光学(NLO)性质表明,硫利达嗪顺式结构的NLO性质高于反式结构,且顺式结构的化学硬度低于反式结构,这表明硫利达嗪顺式异构体的反应活性和电荷转移高于反式硫利达嗪。硫利达嗪两种结构的分子静电势(MEP)图表明,分子中的氧原子是亲电反应的合适区域。硫利达嗪两种构象的振动频率表明,硫利达嗪的两种结构具有几乎相似的振动模式。计算得到的热力学参数表明,由于分子振动强度随温度升高而增强,这些量随温度升高而增加。图形摘要 硫利达嗪药物的反式/顺式异构化。