Toselli Francesca, Fredenwall Marlene, Svensson Peder, Li Xue-Qing, Johansson Anders, Weidolf Lars, Hayes Martin A
Cardiovascular and Metabolic Diseases, Innovative Medicines and Early Development, AstraZeneca, Mölndal, Sweden (F.T., M.F., X.-Q.L., A.J., L.W., M.A.H.); and Integrative Research Laboratories, Arvid Wallgrens Backe 20, Gothenburg, Sweden (P.S.).
Cardiovascular and Metabolic Diseases, Innovative Medicines and Early Development, AstraZeneca, Mölndal, Sweden (F.T., M.F., X.-Q.L., A.J., L.W., M.A.H.); and Integrative Research Laboratories, Arvid Wallgrens Backe 20, Gothenburg, Sweden (P.S.)
Drug Metab Dispos. 2017 Aug;45(8):966-973. doi: 10.1124/dmd.117.076489. Epub 2017 Jun 9.
Oxetanyl building blocks are increasingly used in drug discovery because of the improved drug-like properties they confer on drug candidates, yet little is currently known about their biotransformation. A series of oxetane-containing analogs was studied and we provide the first direct evidence of oxetane hydrolysis by human recombinant microsomal epoxide hydrolase (mEH). Incubations with human liver fractions and hepatocytes were performed with and without inhibitors of cytochrome P450 (P450), mEH and soluble epoxide hydrolase (sEH). Reaction dependence on NADPH was investigated in subcellular fractions. A full kinetic characterization of oxetane hydrolysis is presented, in both human liver microsomes and human recombinant mEH. In human liver fractions and hepatocytes, hydrolysis by mEH was the only oxetane ring-opening metabolic route, with no contribution from sEH or from cytochrome P450-catalyzed oxidation. Minimally altering the structural elements in the immediate vicinity of the oxetane can greatly modulate the efficiency of hydrolytic ring cleavage. In particular, higher p in the vicinity of the oxetane and an increased distance between the oxetane ring and the benzylic nitrogen improve reaction rate, which is further enhanced by the presence of methyl groups near or on the oxetane. This work defines oxetanes as the first nonepoxide class of substrates for human mEH, which was previously known to catalyze the hydrolytic ring opening of electrophilic and potentially toxic epoxide-containing drugs, drug metabolites, and exogenous organochemicals. These findings will be of value for the development of biologically active oxetanes and may be exploited for the biocatalytic generation of enantiomerically pure oxetanes and diols.
由于氧杂环丁烷基团赋予候选药物更好的类药性质,其在药物研发中的应用越来越广泛,但目前对其生物转化的了解还很少。我们研究了一系列含氧杂环丁烷的类似物,并首次提供了人重组微粒体环氧化物水解酶(mEH)催化氧杂环丁烷水解的直接证据。在有或没有细胞色素P450(P450)、mEH和可溶性环氧化物水解酶(sEH)抑制剂的情况下,用人肝组分和肝细胞进行孵育。在亚细胞组分中研究了反应对NADPH的依赖性。本文给出了人肝微粒体和人重组mEH中氧杂环丁烷水解的完整动力学特征。在人肝组分和肝细胞中,mEH催化的水解是唯一的氧杂环丁烷开环代谢途径,sEH或细胞色素P450催化的氧化没有作用。对氧杂环丁烷紧邻区域的结构元素进行最小程度的改变,就能极大地调节水解开环的效率。特别是,氧杂环丁烷附近较高的p值以及氧杂环丁烷环与苄基氮之间距离的增加会提高反应速率,氧杂环丁烷附近或其上甲基的存在会进一步增强反应速率。这项工作将氧杂环丁烷定义为人mEH的第一类非环氧化物底物,此前已知mEH可催化亲电且可能有毒的含环氧化物药物、药物代谢物和外源性有机化学物的水解开环。这些发现对于生物活性氧杂环丁烷的开发具有重要价值,并且可用于对映体纯的氧杂环丁烷和二醇的生物催化生成。