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Species differences between rats and primates (humans and monkeys) in complex cleavage pathways of DS-8500a characterized by 14C-ADME studies in humans and monkeys after administration of two radiolabeled compounds and in vitro studies

代谢物 劈理(地质) 酰胺 化学 体外 体内 代谢途径 水解 新陈代谢 粪便 生物化学 兴奋剂 立体化学 生物 受体 古生物学 生物技术 断裂(地质)
作者
Chie Makino,Akiko Watanabe,Manabu Kato,Hideyuki Shiozawa,Hideo Takakusa,Daisuke Nakai,Tomoyo Honda,Nobuaki Watanabe
出处
期刊:Drug Metabolism and Pharmacokinetics [Elsevier BV]
卷期号:45: 100459-100459 被引量:3
标识
DOI:10.1016/j.dmpk.2022.100459
摘要

Our previous study in rats demonstrated that the metabolic pathways of DS-8500a, a novel GPR119 agonist, include cleavage pathways: reductive cleavage of the oxadiazole ring in the liver and hydrolysis of the amide side chain. In the present study, in vivo metabolic profiling in humans and monkeys after the oral administration of two 14C-labeled compounds was performed to investigate species differences of the cleavage pathways. In monkeys, the oxadiazole ring-cleaved metabolites were mainly detected in feces, but not observed in bile, unlike in rats, suggesting that the reductive ring-opening metabolism occurs in the gastrointestinal tract. In vitro incubation with enterobacterial culture media demonstrated that the reductive cleavage of the oxadiazole ring in humans and monkeys was considerably faster than that in rats. The other cleavage metabolite (M20), produced via hydrolysis of the amide side chain, was detected as the major plasma metabolite in humans and monkeys, and its subsequent metabolite (M21) was excreted in feces, whereas M21 was not a major component in rats, indicating a notable species difference in the amide hydrolysis. In conclusion, this study comprehensively revealed the pronounced species difference of the cleavage pathways: reductive ring-opening by intestinal microflora and liver, and amide hydrolysis.

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