Novel propanamides as fatty acid amide hydrolase inhibitors

Fatty acid amide hydrolase (FAAH) has a key role in the control of the cannabinoid signaling, through the hydrolysis of the endocannabinoids anandamide and in some tissues 2-arachidonoylglycerol. FAAH inhibition represents a promising strategy to activate the cannabinoid system, since it does not re...

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Veröffentlicht in:European journal of medicinal chemistry 2017-08, Vol.136, p.523-542
Hauptverfasser: Deplano, Alessandro, Morgillo, Carmine Marco, Demurtas, Monica, Björklund, Emmelie, Cipriano, Mariateresa, Svensson, Mona, Hashemian, Sanaz, Smaldone, Giovanni, Pedone, Emilia, Luque, F. Javier, Cabiddu, Maria G., Novellino, Ettore, Fowler, Christopher J., Catalanotti, Bruno, Onnis, Valentina
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Sprache:eng
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Zusammenfassung:Fatty acid amide hydrolase (FAAH) has a key role in the control of the cannabinoid signaling, through the hydrolysis of the endocannabinoids anandamide and in some tissues 2-arachidonoylglycerol. FAAH inhibition represents a promising strategy to activate the cannabinoid system, since it does not result in the psychotropic and peripheral side effects characterizing the agonists of the cannabinoid receptors. Here we present the discovery of a novel class of profen derivatives, the N-(heteroaryl)-2-(4-((2-(trifluoromethyl)pyridin-4-yl)amino)phenyl)propanamides, as FAAH inhibitors. Enzymatic assays showed potencies toward FAAH ranging from nanomolar to micromolar range, and the most compounds lack activity toward the two isoforms of cyclooxygenase. Extensive structure-activity studies and the definition of the binding mode for the lead compound of the series are also presented. Kinetic assays in rat and mouse FAAH on selected compounds of the series demonstrated that slight modifications of the chemical structure could influence the binding mode and give rise to competitive (TPA1) or non-competitive (TPA14) inhibition modes. [Display omitted] •An efficient synthesis afforded new heteroarylpropanamides.•Synthesized compounds were assayed in vitro as FAAH inhibitors.•Enzymatic assays showed potencies toward FAAH in the nanomolar to micromolar range.•The binding mode for the lead compound of the series was proposed and discussed.
ISSN:0223-5234
1768-3254
1768-3254
DOI:10.1016/j.ejmech.2017.05.033