Malik Magdalena, Wysokiński Rafał, Zierkiewicz Wiktor, Helios Katarzyna, Michalska Danuta
Faculty of Chemistry, Wrocław University of Technology , Smoluchowskiego 23, 50-370 Wrocław, Poland.
J Phys Chem A. 2014 Aug 28;118(34):6922-34. doi: 10.1021/jp5056254. Epub 2014 Aug 12.
Picoplatin, cis-[PtCl2(NH3)(2-picoline)], is a new promising anticancer agent undergoing clinical trials, which reveals high efficacy against many tumors and greatly reduced toxicity, in comparison to cisplatin. In this work, we present for the first time the Fourier-transform Raman and infrared spectra of picoplatin, in the region of 3500-50 cm(-1). The comprehensive theoretical studies on the molecular structure, the nature of Pt-ligand bonding, vibrational frequencies, and intensities were performed by employing different DFT methods, including hybrid (PBE0, mPW1PW, and B3LYP) and long-range-corrected hybrid density functionals (LC-ωPBE, CAM-B3LYP). Various effective core potentials (ECP) and basis sets have been used. In the prediction of the molecular structure of picoplatin, the best results have been obtained by LC-ωPBE, followed by PBE0, mPW1PW, and CAM-B3LYP density functionals, while the least accurate is B3LYP. The use of the LanL2TZ(f) ECP/basis set for Pt, in conjunction with all tested DFT methods, improves the calculated geometry of the title complex. The PBE0, mPW1PW, and CAM-B3LYP methods have shown the best performance in the calculations of the frequencies of Pt-ligand vibrations. A clear-cut assignment of all the bands in the IR and Raman spectra have been made on the basis of the calculated potential energy distribution (PED). The nature of the "vibrational signatures" of picoplatin have been determined. These results are indispensable for further investigation on drug-target interactions using vibrational spectroscopy.
吡铂,顺式-[PtCl₂(NH₃)(2-甲基吡啶)],是一种正在进行临床试验的、前景广阔的新型抗癌药物,与顺铂相比,它对多种肿瘤显示出高效性且毒性大大降低。在本研究中,我们首次展示了吡铂在3500 - 50 cm⁻¹区域的傅里叶变换拉曼光谱和红外光谱。通过采用不同的密度泛函理论(DFT)方法,包括杂化泛函(PBE0、mPW1PW和B3LYP)以及长程校正杂化密度泛函(LC-ωPBE、CAM-B3LYP),对分子结构、Pt-配体键合性质、振动频率和强度进行了全面的理论研究。使用了各种有效核势(ECP)和基组。在预测吡铂的分子结构时,LC-ωPBE得到了最佳结果,其次是PBE0、mPW1PW和CAM-B3LYP密度泛函,而最不准确的是B3LYP。对于Pt使用LanL2TZ(f) ECP/基组,并结合所有测试的DFT方法,改善了标题配合物的计算几何结构。PBE0、mPW1PW和CAM-B3LYP方法在计算Pt-配体振动频率方面表现最佳。基于计算的势能分布(PED),对红外和拉曼光谱中的所有谱带进行了明确的归属。确定了吡铂“振动特征”的性质。这些结果对于使用振动光谱进一步研究药物-靶点相互作用是必不可少的。