Research Center for Modeling and Simulation (RCMS), National University of Sciences and Technology (NUST), Islamabad 44000, Pakistan.
Centre for Computational Chemistry, School of Chemistry, University of Bristol, Bristol BS8 1TS, UK.
Int J Mol Sci. 2019 Sep 10;20(18):4468. doi: 10.3390/ijms20184468.
The Cytochrome P450 family of heme-containing proteins plays a major role in catalyzing phase I metabolic reactions, and the CYP3A4 subtype is responsible for the metabolism of many currently marketed drugs. Additionally, CYP3A4 has an inherent affinity for a broad spectrum of structurally diverse chemical entities, often leading to drug-drug interactions mediated by the inhibition or induction of the metabolic enzyme. The current study explores the binding of selected highly efficient CYP3A4 inhibitors by docking and molecular dynamics (MD) simulation protocols and their binding free energy calculated using the WaterSwap method. The results indicate the importance of binding pocket residues including Phe57, Arg105, Arg106, Ser119, Arg212, Phe213, Thr309, Ser312, Ala370, Arg372, Glu374, Gly481 and Leu483 for interaction with CYP3A4 inhibitors. The residue-wise decomposition of the binding free energy from the WaterSwap method revealed the importance of binding site residues Arg106 and Arg372 in the stabilization of all the selected CYP3A4-inhibitor complexes. The WaterSwap binding energies were further complemented with the MM(GB/PB)SA results and it was observed that the binding energies calculated by both methods do not differ significantly. Overall, our results could guide towards the use of multiple computational approaches to achieve a better understanding of CYP3A4 inhibition, subsequently leading to the design of highly specific and efficient new chemical entities with suitable ADMETox properties and reduced side effects.
细胞色素 P450 家族的血红素蛋白在催化 I 相代谢反应中起着重要作用,CYP3A4 亚型负责代谢许多目前上市的药物。此外,CYP3A4 对广泛的结构多样的化学实体具有固有亲和力,通常导致代谢酶的抑制或诱导介导的药物相互作用。本研究通过对接和分子动力学 (MD) 模拟方案探索了选定的高效 CYP3A4 抑制剂的结合,并使用 WaterSwap 方法计算了它们的结合自由能。结果表明,结合口袋残基(包括 Phe57、Arg105、Arg106、Ser119、Arg212、Phe213、Thr309、Ser312、Ala370、Arg372、Glu374、Gly481 和 Leu483)对与 CYP3A4 抑制剂相互作用的重要性。从 WaterSwap 方法对结合自由能的残基分解表明,Arg106 和 Arg372 残基在稳定所有选定的 CYP3A4-抑制剂复合物中的重要性。WaterSwap 结合能进一步补充了 MM(GB/PB)SA 结果,观察到两种方法计算的结合能没有显著差异。总体而言,我们的结果可以指导使用多种计算方法来更好地理解 CYP3A4 抑制作用,从而导致设计具有合适 ADMETox 特性和减少副作用的高度特异性和高效新化学实体。