细胞色素 P450 3A4 介导的 SCO-267 代谢活化的证据。

IF 1.7 4区 医学 Q3 PHARMACOLOGY & PHARMACY Biopharmaceutics & Drug Disposition Pub Date : 2024-01-18 DOI:10.1002/bdd.2381
Cui Li, Xiaokun Li, Ali Fan, Ning He, Dongmei Wu, Hongyan Yu, Kun Wang, Weijie Jiao, Xu Zhao
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引用次数: 0

摘要

SCO-267 是一种强效的 G 蛋白偶联受体 40 激动剂,目前正在用于治疗 2 型糖尿病的临床开发。目前的工作是研究 SCO-267 在体外和体内的生物活化潜力。在补充了谷胱甘肽和烟酰胺腺嘌呤二核苷酸磷酸盐的大鼠和人类肝脏微粒体培养液中发现了三种 SCO-267 衍生的谷胱甘肽(GSH)共轭物(M1-M3)。在服用 10 毫克/千克 SCO-267 的大鼠胆汁中检测到两种 GSH 结合物(M1-M2)和两种 N-乙酰-半胱氨酸结合物(M4-M5)。已确定的共轭物表明生成了醌-亚胺和邻醌中间体。研究表明,CYP3A4 主要催化 SCO-267 的生物活化。此外,以睾酮为探针底物,SCO-267 可在浓度、时间和 NADPH 依赖性条件下灭活人体肝脏微粒体中的 CYP3A,其 KI 和 kinact 值分别为 4.91 μM 和 0.036 min-1。酮康唑(CYP3A 的竞争性抑制剂)对 SCO-267 诱导的 CYP3A 失活没有明显的保护作用。然而,加入 GSH 则显示出明显的保护作用。这些研究结果表明,SCO-267 在 CYP3A4 催化下很容易发生生物灭活,生成醌-亚胺和邻醌中间体,这些中间体被认为参与了 SCO-267 诱导的 CYP3A 灭活。这些发现进一步揭示了 SCO-267 生成反应性、潜在毒性代谢物的生物活化途径。要评估 SCO-267 代谢对这种药物在体内安全性的影响,还需要进一步的研究。
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Evidence for cytochrome P450 3A4-mediated metabolic activation of SCO-267

SCO-267 is a potent G-protein-coupled receptor 40 agonist that is undergoing clinical development for the treatment of type 2 diabetes mellitus. The current work was undertaken to investigate the bioactivation potential of SCO-267 in vitro and in vivo. Three SCO-267-derived glutathione (GSH) conjugates (M1–M3) were found both in rat and human liver microsomal incubations supplemented with GSH and nicotinamide adenine dinucleotide phosphate. Two GSH conjugates (M1–M2) together with two N-acetyl-cysteine conjugates (M4–M5) were detected in the bile of rats receiving SCO-267 at 10 mg/kg. The identified conjugates suggested the generation of quinone-imine and ortho-quinone intermediates. CYP3A4 was demonstrated to primarily catalyze the bioactivation of SCO-267. In addition, SCO-267 concentration-, time-, and NADPH-dependently inactivated CYP3A in human liver microsomes using testosterone as a probe substrate, along with KI and kinact values of 4.91 μM and 0.036 min−1, respectively. Ketoconazole (a competitive inhibitor of CYP3A) displayed no significant protective effect on SCO-267-induced CYP3A inactivation. However, inclusion of GSH showed significant protection. These findings revealed that SCO-267 undergoes a facile CYP3A4-catalyzed bioactivation with the generation of quinone-imine and ortho-quinone intermediates, which were assumed to be involved in SCO-267 induced CYP3A inactivation. These findings provide further insight into the bioactivation pathways involved in the generation of reactive, potentially toxic metabolites of SCO-267. Further studies are needed to evaluate the influence of SCO-267 metabolism on the safety of this drug in vivo.

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来源期刊
CiteScore
3.60
自引率
0.00%
发文量
35
审稿时长
6-12 weeks
期刊介绍: Biopharmaceutics & Drug Dispositionpublishes original review articles, short communications, and reports in biopharmaceutics, drug disposition, pharmacokinetics and pharmacodynamics, especially those that have a direct relation to the drug discovery/development and the therapeutic use of drugs. These includes: - animal and human pharmacological studies that focus on therapeutic response. pharmacodynamics, and toxicity related to plasma and tissue concentrations of drugs and their metabolites, - in vitro and in vivo drug absorption, distribution, metabolism, transport, and excretion studies that facilitate investigations related to the use of drugs in man - studies on membrane transport and enzymes, including their regulation and the impact of pharmacogenomics on drug absorption and disposition, - simulation and modeling in drug discovery and development - theoretical treatises - includes themed issues and reviews and exclude manuscripts on - bioavailability studies reporting only on simple PK parameters such as Cmax, tmax and t1/2 without mechanistic interpretation - analytical methods
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