Laboratory of Molecular Modelling, Department of Chemistry, Federal University of Lavras, /MG, Lavras, 37200-000, Brazil.
Institute of Chemistry, University of Campinas, /SP, Campinas, 13083-970, Brazil.
J Mol Model. 2023 Mar 30;29(4):123. doi: 10.1007/s00894-023-05530-7.
Autophagy has drawn attention from the scientific community, mainly because of its significant advantages over chemotherapeutic processes. One of these advantages is its direct action on cancer cells, avoiding possible side effects, unlike chemotherapy, which reaches tumor cells and affects healthy cells in the body, leading to a great loss in the quality of life of patients. In this way, it is known that vanadium complex (VC) [VO(oda)(phen)] has proven inhibition effect on autophagy process in pancreatic cancer cells. Keeping that in mind, molecular dynamics (MD) simulations can be considered excellent strategies to investigate the interaction of metal complexes and their biological targets. However, simulations of this type are strongly dependent on the appropriate choice of force field (FF). Therefore, this work proposes the development of AMBER FF parameters for VC, having a minimum energy structure as a starting point, obtained through DFT calculations with B3LYP/def2-TZVP level of theory plus ECP for the vanadium atom. An MD simulation in vacuum was performed to validate the developed FF. From the structural analyses, satisfying values of VC bond lengths and angles were obtained, where a good agreement with the experimental data and the quantum reference was found. The RMSD analysis showed an average of only 0.3%. Finally, we performed docking and MD (120 ns) simulations with explicit solvent between VC and PI3K. Overall, our findings encourage new parameterizations of metal complexes with significant biological applications, as well as allow to contribute to the elucidation of the complex process of autophagy.
自噬引起了科学界的关注,主要是因为它比化疗过程具有显著的优势。其中一个优点是它可以直接作用于癌细胞,避免了可能的副作用,不像化疗那样到达肿瘤细胞并影响体内的健康细胞,导致患者生活质量的巨大损失。在这种情况下,已经证明钒配合物(VC)[VO(oda)(phen)]对胰腺癌细胞的自噬过程具有抑制作用。考虑到这一点,可以认为分子动力学(MD)模拟是研究金属配合物及其生物靶标相互作用的优秀策略。然而,这种类型的模拟强烈依赖于力场(FF)的适当选择。因此,这项工作提出了为 VC 开发 AMBER FF 参数的建议,以最小能量结构作为起点,该结构通过使用 B3LYP/def2-TZVP 理论水平加 ECP 对钒原子进行 DFT 计算获得。在真空中进行了 MD 模拟以验证所开发的 FF。从结构分析中,得到了 VC 键长和键角的满意值,发现与实验数据和量子参考值吻合较好。RMSD 分析显示平均只有 0.3%。最后,我们在 PI3K 之间进行了 VC 和 PI3K 之间的对接和 MD(120 ns)模拟,使用了显式溶剂。总之,我们的研究结果鼓励对具有重要生物学应用的金属配合物进行新的参数化,并且有助于阐明自噬的复杂过程。