Literature DB >> 28885775

In vitro metabolism of the synthetic cannabinoids CUMYL-PINACA, 5F-CUMYL-PINACA, CUMYL-4CN-BINACA, 5F-CUMYL-P7AICA and CUMYL-4CN-B7AICA.

Sandra N Staeheli1, Michael Poetzsch1, Veronica P Veloso1, Michael Bovens2, Christian Bissig2, Andrea E Steuer1, Thomas Kraemer1.   

Abstract

Synthetic cannabinoid consumption trends underlie fast changes and provide several challenges to clinical and forensic toxicologists. Due to their extensive metabolism, parent compounds are hardly detectable in urine. Therefore, knowledge of the metabolism of synthetic cannabinoids is essential to allow their detection in biological matrices. The aim of the present study was the elucidation of the metabolism of CUMYL-PINACA, 5F-CUMYL-PINACA, CUMYL-4CN-BINACA, 5F-CUMYL-P7AICA, and CUMYL-4CN-B7AICA with a focus on the analytical and interpretational differentiation of the compounds. Microsomal assay mixtures containing co-substrates, 10 μg/mL substrate and 1 mg/mL pooled human liver microsomes were incubated for 1 hour at 37°C. Investigation of the metabolites was performed on a Thermo Fischer Ultimate 3000 UHPLC system coupled to a Sciex 6600 QTOF System. Hydroxylation was observed to be a major biotransformation step for all 5 cumyl-derivatives, followed by dihydroxylation. For CUMYL-PINACA, a major metabolic pathway was hydroxylation at the pentyl moiety, followed by a second hydroxylation at that pentyl moiety or oxidation to ketone. A major metabolic pathway for the compounds containing a nitrile function was nitrile hydrolysis followed by carboxylation and further hydroxylation. For the fluorinated compounds, oxidative defluorination and carboxylation were abundant metabolic steps. Some of the metabolic transformations lead to structurally identical metabolites, which should not be used as marker for the intake of a particular parent compound. In addition, several constitutional isomers containing either an indazole or azaindole core structure were detected, which should be differentiated by retention time rather than by their mass spectra alone.
Copyright © 2017 John Wiley & Sons, Ltd.

Entities:  

Keywords:  in vitro metabolism; new psychoactive substances NPS; synthetic cannabinoids

Mesh:

Substances:

Year:  2017        PMID: 28885775     DOI: 10.1002/dta.2298

Source DB:  PubMed          Journal:  Drug Test Anal        ISSN: 1942-7603            Impact factor:   3.345


  6 in total

Review 1.  Interpol review of toxicology 2016-2019.

Authors:  Wing-Sum Chan; George Fai Wong; Chi-Wai Hung; Yau-Nga Wong; Kit-Mai Fung; Wai-Kit Lee; Kwok-Leung Dao; Chung-Wing Leung; Kam-Moon Lo; Wing-Man Lee; Bobbie Kwok-Keung Cheung
Journal:  Forensic Sci Int       Date:  2020-05-23       Impact factor: 2.395

2.  Human phase I metabolism of the novel synthetic cannabinoid 5F-CUMYL-PEGACLONE.

Authors:  Lukas Mogler; Sebastian Halter; Maurice Wilde; Florian Franz; Volker Auwärter
Journal:  Forensic Toxicol       Date:  2018-10-05       Impact factor: 4.096

3.  CUMYL-4CN-BINACA Is an Efficacious and Potent Pro-Convulsant Synthetic Cannabinoid Receptor Agonist.

Authors:  Richard C Kevin; Lyndsey Anderson; Iain S McGregor; Rochelle Boyd; Jamie J Manning; Michelle Glass; Mark Connor; Samuel D Banister
Journal:  Front Pharmacol       Date:  2019-05-29       Impact factor: 5.810

4.  5F-Cumyl-PINACA in 'e-liquids' for electronic cigarettes: comprehensive characterization of a new type of synthetic cannabinoid in a trendy product including investigations on the in vitro and in vivo phase I metabolism of 5F-Cumyl-PINACA and its non-fluorinated analog Cumyl-PINACA.

Authors:  Verena Angerer; Florian Franz; Bjoern Moosmann; Philippe Bisel; Volker Auwärter
Journal:  Forensic Toxicol       Date:  2018-11-13       Impact factor: 4.096

Review 5.  New Synthetic Cannabinoids Metabolism and Strategies to Best Identify Optimal Marker Metabolites.

Authors:  Xingxing Diao; Marilyn A Huestis
Journal:  Front Chem       Date:  2019-03-04       Impact factor: 5.545

6.  Identification of the synthetic cannabinoid-type new psychoactive substance, CH-PIACA, in seized material.

Authors:  Daniel Pasin; Michael Nedahl; Christian Brinch Mollerup; Christian Tortzen; Lotte Ask Reitzel; Petur Weihe Dalsgaard
Journal:  Drug Test Anal       Date:  2022-06-16       Impact factor: 3.234

  6 in total

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