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Biotransformation and detectability of the new psychoactive substances N,N-diallyltryptamine (DALT) derivatives 5-fluoro-DALT, 7-methyl-DALT, and 5,6-methylenedioxy-DALT in urine using GC-MS, LC-MSn, and LC-HR-MS/MS.

Julian A Michely, Simon D Brandt, Markus R Meyer, Hans H Maurer

Analytical and bioanalytical chemistry February 1, 2017 DOI: 10.1007/s00216-016-0117-5 via PubMed

Summary

AI-generated from the abstract

Derivatives of N,N-diallyltryptamine (DALT) are new psychoactive substances. Their metabolism and detectability were studied in rat urine and human liver microsomes using liquid chromatography-high resolution-tandem mass spectrometry. Main metabolic pathways include aromatic and aliphatic hydroxylations, N-dealkylation, N-oxidation, and combinations; carboxylation was detected for 7-Me-DALT and O-demethylenation for 5,6-MD-DALT. Phase I metabolites were extensively glucuronidated or sulfated, catalyzed by several CYP isoenzymes. GC-MS could not reliably monitor consumption, but LC-MSn and LC-HR-MS/MS approaches were suitable, especially for detecting 5-F-DALT and 7-Me-DALT at low doses. The most abundant targets for each compound are specified.

Study at a glance

Characteristics Experimental study Peer reviewed
Population Rat urine and pooled human liver microsomes
Interventions 5-fluoro-DALT 7-methyl-DALT 5 6-methylenedioxy-DALT
Keywords 5,6-md-dalt 5-f-dalt 7-me-dalt Metabolism Tryptamine derivatives
Citations 23
Key finding LC-MSn and LC-HR-MS/MS approaches can detect intake of 5-F-DALT, 7-Me-DALT, and 5,6-MD-DALT mainly via their metabolites, with specific abundant targets identified for each compound.

Abstract

Derivatives of N,N-diallyltryptamine (DALT) can be classified as new psychoactive substances. Biotransformation and detectability of 5-fluoro-DALT (5-F-DALT), 7-methyl-DALT (7-Me-DALT), and 5,6-methylenedioxy-DALT (5,6-MD-DALT) are described here. Their metabolites detected in rat urine and pooled human liver microsomes were identified by liquid chromatography (LC)-high resolution (HR)-tandem mass spectrometry (MS/MS). In addition, the human cytochrome-P450 (CYP) isoenzymes involved in the main metabolic steps were identified and detectability tested in urine by the authors' urine screening approaches using GC-MS, LC-MSn, or LC-HR-MS/MS. Aromatic and aliphatic hydroxylations, N-dealkylation, N-oxidation, and combinations could be proposed for all compounds as main pathways. Carboxylation after initial hydroxylation of the methyl group could also be detected for 7-Me-DALT and O-demethylenation was observed for 5,6-MD-DALT. All phase I metabolites were extensively glucuronidated or sulfated. Initial phase I reactions were catalyzed by CYP1A2, CYP2B6, CYP2C9, CYP2C19, CYP2D6, CYP3A4, and CYP3A5. Rat urine samples were analyzed following two different low-dose administrations. GC-MS was not able to monitor consumption reliably, but all three compounds are predicted to be detectable in cases of overdose. The LC-MSn and LC-HR-MS/MS approaches were suitable for detecting an intake of all three compounds mainly via their metabolites. However, after the lowest dose, a reliable monitoring could only be achieved for 5-F-DALT via LC-MSn and LC-HR-MS/MS and for 7-Me-DALT via LC-HR-MS/MS. The most abundant targets in both LC-MS screenings were one of two hydroxy-aryl metabolites and both corresponding glucuronides for 5-F-DALT, one N-deallyl hydroxy-aryl, the carboxy, and one dihydroxy-aryl metabolite for 7-Me-DALT, and the demethylenyl metabolite, its oxo metabolite, and glucuronide for 5,6-MD-DALT.

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