ω-Quinazolinonylalkyl aryl ureas as reversible inhibitors of monoacylglycerol lipase

单酰甘油脂肪酶 化学 脂肪酸酰胺水解酶 丝氨酸水解酶 芳基 IC50型 丝氨酸 脂肪酶 尿素 对接(动物) 立体化学 水解酶 烷基 组合化学 生物化学 内大麻素系统 体外 兴奋剂 有机化学 受体 护理部 大麻素受体 医学
作者
Florian M. Dato,Jörg‐Martin Neudörfl,Michael Gütschow,Bernd Goldfuß,Markus Pietsch
出处
期刊:Bioorganic Chemistry [Elsevier BV]
卷期号:94: 103352-103352 被引量:8
标识
DOI:10.1016/j.bioorg.2019.103352
摘要

The serine hydrolase monoacylglycerol lipase (MAGL) is involved in a plethora of pathological conditions, in particular pain and inflammation, various types of cancer, metabolic, neurological and cardiovascular disorders, and is therefore a promising target for drug development. Although a large number of irreversible-acting MAGL inhibitors have been discovered over the past years, there are only few compounds known so far which inhibit the enzyme in a reversible manner. Therefore, much effort is put into the development of novel chemical entities showing reversible inhibitory behavior, which is thought to cause less undesired side effects. To explore a wide range of chemical structures as MAGL binders, we have applied a virtual screening approach by docking small molecules into the crystal structure of human MAGL (hMAGL) and envisaged a library of 45 selected compounds which were then synthesized. Biochemical investigations included the determination of the inhibitory potency on hMAGL and two related hydrolases, i.e. human fatty acid amide hydrolase (hFAAH) and murine cholesterol esterase (mCEase). The most promising candidates from theses analyses, i.e. three ω-quinazolinonylalkyl aryl ureas bearing alkyl spacers of three to five methylene groups, exhibited IC50 values of 20–41 µM and reversible, detergent-insensitive behavior towards hMAGL. Among these compounds, the inhibitor 1-(3,5-bis(trifluoromethyl)phenyl)-3-(4-(4-oxo-3,4-dihydroquinazolin-2-yl)butyl)urea (96) was selected for further kinetic characterization, yielding a dissociation constant Ki = 15.4 µM and a mixed-type inhibition with a pronounced competitive component (α = 8.94). This mode of inhibition was further supported by a docking experiment, which suggested that the inhibitor occupies the substrate binding pocket of hMAGL.

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