Aldehyde oxidase mediated drug metabolism: an underpredicted obstacle in drug discovery and development.

IF 3.4 2区 医学 Q2 PHARMACOLOGY & PHARMACY
Siva Nageswara Rao Gajula, Tanaaz Navin Nathani, Rashmi Madhukar Patil, Sasikala Talari, Rajesh Sonti
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引用次数: 4

Abstract

Aldehyde oxidase (AO) has garnered curiosity as a non-CYP metabolizing enzyme in drug development due to unexpected consequences such as toxic metabolite generation and high metabolic clearance resulting in the clinical failure of new drugs. Therefore, poor AO mediated clearance prediction in preclinical nonhuman species remains a significant obstacle in developing novel drugs. Various isoforms of AO, such as AOX1, AOX3, AOX3L1, and AOX4 exist across species, and different AO activity among humans influences the AO mediated drug metabolism. Therefore, carefully considering the unique challenges is essential in developing successful AO substrate drugs. The in vitro to in vivo extrapolation underpredicts AO mediated drug clearance due to the lack of reliable representative animal models, substrate-specific activity, and the discrepancy between absolute concentration and activity. An in vitro tool to extrapolate in vivo clearance using a yard-stick approach is provided to address the underprediction of AO mediated drug clearance. This approach uses a range of well-known AO drug substrates as calibrators for qualitative scaling new drugs into low, medium, or high clearance category drugs. So far, in vivo investigations on chimeric mice with humanized livers (humanized mice) have predicted AO mediated metabolism to the best extent. This review addresses the critical aspects of the drug discovery stage for AO metabolism studies, challenges faced in drug development, approaches to tackle AO mediated drug clearance's underprediction, and strategies to decrease the AO metabolism of drugs.

醛氧化酶介导的药物代谢:药物发现和开发中一个被低估的障碍。
醛氧化酶(AO)作为一种非cyp代谢酶在药物开发中引起了人们的关注,由于其产生毒性代谢物和高代谢清除率等意想不到的后果导致新药临床失败。因此,临床前非人类物种中AO介导的清除率预测不佳仍然是开发新药的重大障碍。AO的多种亚型,如AOX1、AOX3、AOX3L1和AOX4存在于不同的物种中,人类不同的AO活性影响AO介导的药物代谢。因此,仔细考虑独特的挑战对于开发成功的AO底物药物至关重要。由于缺乏可靠的代表性动物模型、底物特异性活性以及绝对浓度和活性之间的差异,体外到体内的外推法低估了AO介导的药物清除。一个体外工具来推断体内清除使用标尺法提供,以解决低估的AO介导的药物清除。该方法使用一系列众所周知的AO药物底物作为定性标定新药为低、中或高清除率类别药物的校准器。到目前为止,对人源化肝脏嵌合小鼠(人源化小鼠)的体内研究已经在最大程度上预测了AO介导的代谢。本文综述了AO代谢研究中药物发现阶段的关键方面,药物开发中面临的挑战,解决AO介导的药物清除低估的方法,以及降低药物AO代谢的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Drug Metabolism Reviews
Drug Metabolism Reviews 医学-药学
CiteScore
11.10
自引率
1.70%
发文量
21
审稿时长
1 months
期刊介绍: Drug Metabolism Reviews consistently provides critically needed reviews of an impressive array of drug metabolism research-covering established, new, and potential drugs; environmentally toxic chemicals; absorption; metabolism and excretion; and enzymology of all living species. Additionally, the journal offers new hypotheses of interest to diverse groups of medical professionals including pharmacologists, toxicologists, chemists, microbiologists, pharmacokineticists, immunologists, mass spectroscopists, as well as enzymologists working in xenobiotic biotransformation.
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