Sun Min-Zhang, Lyu Ling-Shan, Zheng Qing-Chuan
Institute of Theoretical Chemistry, College of Chemistry, Jilin University, Changchun, 130023, China.
School of Pharmaceutical Sciences, Jilin University, Changchun, 130023, China.
Phys Chem Chem Phys. 2023 Feb 8;25(6):5164-5173. doi: 10.1039/d2cp05634h.
CYP2D6 is one of the most important metalloenzymes involved in the biodegradation of many drug molecules in the human body. It has been found that multiple substrate binding can lead to substrate inhibition of CYP2D6 metabolizing dextromethorphan (DM), but the corresponding theoretical mechanism is rarely reported. Therefore, we chose DM as the probe and performed molecular dynamics simulations and quantum mechanical calculations on CYP2D6-DM systems to investigate the mechanism of how the multiple substrate binding leads to the substrate inhibition of CYP2D6 metabolizing substrates. According to our results, three gate residues (Arg221, Val374, and Phe483) for the catalytic pocket are determined. We also found that the multiple substrate binding can lead to substrate inhibition by reducing the stability of CYP2D6 binding DM and increasing the reactive activation energy of the rate-determining step. Our findings would help to understand the substrate inhibition of CYP2D6 metabolizing the DM and enrich the knowledge of the drug-drug interactions for the cytochrome P450 superfamily.
细胞色素P450 2D6(CYP2D6)是参与人体许多药物分子生物降解的最重要金属酶之一。研究发现,多种底物结合可导致CYP2D6对右美沙芬(DM)代谢产生底物抑制作用,但相应的理论机制鲜有报道。因此,我们选择DM作为探针,对CYP2D6-DM系统进行分子动力学模拟和量子力学计算,以研究多种底物结合导致CYP2D6对底物代谢产生底物抑制作用的机制。根据我们的结果,确定了催化口袋的三个门控残基(精氨酸221、缬氨酸374和苯丙氨酸483)。我们还发现,多种底物结合可通过降低CYP2D6与DM结合的稳定性以及增加限速步骤的反应活化能,导致底物抑制。我们的研究结果将有助于理解CYP2D6对DM代谢的底物抑制作用,并丰富细胞色素P450超家族药物相互作用的知识。