Department of Chemistry, Washington State University, Pullman, WA 99164, USA.
Department of Pharmaceutical Sciences, Washington State University, Spokane, WA 99202, USA.
Biochem Pharmacol. 2024 Dec;230(Pt 1):116569. doi: 10.1016/j.bcp.2024.116569. Epub 2024 Oct 10.
To explore functional interconnections between multiple P450 enzymes and their manifestation in alcohol-induced changes in drug metabolism, we implemented a high-throughput study of correlations between the composition of the P450 pool and the substrate saturation profiles (SSP) of amitriptyline and ketamine demethylation in a series of 23 individual human liver microsomes preparations from donors with a known history of alcohol consumption. The SSPs were approximated with linear combinations of three Michaelis-Menten equations with globally optimized K (substrate affinity) values. This analysis revealed a strong correlation between the rate of ketamine metabolism and alcohol exposure. For both substrates, alcohol consumption caused a significant increase in the role of the low-affinity enzymes. The amplitudes of the kinetic components and the total rate were further analyzed for correlations with the abundance of 11 major P450 enzymes assessed by global proteomics. The maximal rate of metabolism of both substrates correlated with the abundance of CYP3A4, their predicted principal metabolizer. However, except for CYP2D6 and CYP2E1, responsible for the low-affinity metabolism of ketamine and amitriptyline, respectively, none of the other potent metabolizers of the drugs revealed a positive correlation. Instead, in the case of ketamine, we observed negative correlations with the abundances of CYP1A2, CYP2C9, and CYP3A5. For amitriptyline, the data suggest inhibitory effects of CYP1A2 and CYP2A6. Our results demonstrate the importance of functional interactions between multiple P450 species and their decisive role in the effects of alcohol exposure on drug metabolism.
为了探索多种 P450 酶之间的功能相互关系及其在酒精引起的药物代谢变化中的表现,我们在 23 个人肝微粒体制剂系列中进行了一项高通量研究,这些制剂来自有已知饮酒史的供体,以探索 P450 池的组成与阿米替林和氯胺酮去甲基化的底物饱和曲线(SSP)之间的相关性。SSP 用三个米氏方程的线性组合来近似,其中 K(底物亲和力)值经过全局优化。这项分析揭示了氯胺酮代谢率与酒精暴露之间的强相关性。对于这两种底物,酒精摄入导致低亲和力酶的作用显著增加。进一步分析动力学成分的幅度和总速率与通过全局蛋白质组学评估的 11 种主要 P450 酶的丰度之间的相关性。两种底物的最大代谢速率与 CYP3A4 的丰度相关,CYP3A4 是它们的主要代谢酶。然而,除了负责氯胺酮和阿米替林低亲和力代谢的 CYP2D6 和 CYP2E1 之外,没有一种药物的其他强效代谢酶与代谢率呈正相关。相反,在氯胺酮的情况下,我们观察到与 CYP1A2、CYP2C9 和 CYP3A5 的丰度呈负相关。对于阿米替林,数据表明 CYP1A2 和 CYP2A6 具有抑制作用。我们的结果表明了多种 P450 物种之间的功能相互作用的重要性及其在酒精暴露对药物代谢的影响中的决定性作用。