双氯芬酸生成有毒喹诺亚胺代谢物:量子化学研究。

Muthusamy Ramesh, Prasad V Bharatam
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引用次数: 5

摘要

背景:双氯芬酸是一种非甾体抗炎药。它主要由CYP2C9代谢。4'-羟基双氯芬酸及其喹奈亚胺是双氯芬酸的代谢物。然而,由于双氯芬酸代谢引起的严重的特殊肝毒性病例很少报道。发现喹奈亚胺代谢物的形成是造成这种特殊毒性的原因。喹诺亚胺是双氯芬酸的过度氧化代谢物。方法:在这项工作中,计算研究进行了详细的形成从双氯芬酸喹奈亚胺代谢物。此外,我们还利用量子化学分析方法研究了喹奈亚胺因其反应性而产生的特异性毒性。结果与结论:双氯芬酸代谢过程中有多种因素参与,可能形成喹诺亚胺代谢物。本研究可为药物开发过程中避免代谢导向的特异性毒性提供结构视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Formation of a Toxic Quinoneimine Metabolite from Diclofenac: A Quantum Chemical Study.

Background: Diclofenac is a non-steroidal antiinflammatory drug. It is predominantly metabolized by CYP2C9. 4'-hydroxydiclofenac and its quinoneimine are the metabolites of diclofenac. However, few numbers of serious cases of idiosyncratic hepatotoxicity due to diclofenac metabolism were reported. The formation of the quinoneimine metabolite was found to be responsible for this idiosyncratic toxicity. Quinoneimine is an over-oxidized metabolite of diclofenac.

Method: In this work, computational studies were conducted to detail the formation of a quinoneimine metabolite from diclofenac. Further, the idiosyncratic toxicity of quinoneimine due to its reactivity was also investigated by quantum chemical analysis.

Results & conclusion: The results demonstrate the possibility of formation of quinoneimine metabolite due to various factors that are involved in the metabolism of diclofenac. The present study may provide the structural in-sights during the drug development processes to avoid the metabolism directed idiosyncratic toxicity.

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来源期刊
Drug metabolism letters
Drug metabolism letters Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
自引率
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发文量
12
期刊介绍: Drug Metabolism Letters publishes letters and research articles on major advances in all areas of drug metabolism and disposition. The emphasis is on publishing quality papers very rapidly by taking full advantage of the Internet technology both for the submission and review of manuscripts. The journal covers the following areas: In vitro systems including CYP-450; enzyme induction and inhibition; drug-drug interactions and enzyme kinetics; pharmacokinetics, toxicokinetics, species scaling and extrapolations; P-glycoprotein and transport carriers; target organ toxicity and interindividual variability; drug metabolism and disposition studies; extrahepatic metabolism; phase I and phase II metabolism; recent developments for the identification of drug metabolites.
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