Analytical Biochemistry and Mass Spectrometry Core Facility, Department of Pharmacy, University of Groningen, A. Deusinglaan 1, 9713 AV Groningen, The Netherlands.
Anal Chem. 2010 Sep 15;82(18):7625-33. doi: 10.1021/ac101364s.
The study of oxidative drug metabolism by Cytochrome P450s (P450) is important in the earlier stages of drug development. For this purpose, automated analytical techniques are needed for fast and accurate estimation of oxidative drug metabolism. Previous studies have shown that electrochemistry in combination with mass spectrometry is a versatile analytical technique to generate drug metabolites that result from direct electron transfer. Here we show that electrochemical generation of reactive oxygen species (ROS), a process reminiscent of the catalytic cycle of P450, extends the applicability of electrochemistry in drug metabolism research. Oxidation products of lidocaine from one and two-compartment electrochemical cells, operated under various conditions were analyzed by LC-MS and metabolite structures were elucidated by collision-induced (LC-MS/MS), and thermally induced (APCI) fragmentation. Direct oxidation of lidocaine at the anode resulted in N-dealkylation, whereas reaction with H(2)O(2), generated at the cathode, produced the N-oxide, both known in vivo lidocaine metabolites. Catalytic activation of hydrogen peroxide, using the Fenton reaction, resulted in benzylic and aromatic hydroxylations thus covering all of the known in vivo phase-I metabolites of lidocaine. This study extends the applicability of electrochemistry combined with mass spectrometry as a valuable technique in assessing oxidative drug metabolism related to P450.
细胞色素 P450(CYP)氧化药物代谢的研究在药物开发的早期阶段非常重要。为此,需要自动化分析技术来快速准确地估计氧化药物代谢。先前的研究表明,电化学与质谱联用是一种通用的分析技术,可以生成直接电子转移产生的药物代谢物。在这里,我们表明,活性氧(ROS)的电化学生成,类似于 P450 催化循环的过程,扩展了电化学在药物代谢研究中的适用性。通过 LC-MS 分析了在各种条件下操作的一室和两室电化学电池中利多卡因的氧化产物,并通过碰撞诱导(LC-MS/MS)和热诱导(APCI)碎裂阐明了代谢物结构。在阳极处直接氧化利多卡因导致 N-脱烷基化,而在阴极处产生的 H2O2 与 N-氧化物反应,两者均为体内已知的利多卡因代谢物。使用芬顿反应催化激活过氧化氢,导致苄基和芳族羟化,从而涵盖了利多卡因的所有已知体内 I 相代谢物。这项研究扩展了电化学与质谱联用作为评估与 CYP 相关的氧化药物代谢的有价值技术的适用性。