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New designer drug 4-iodo-2,5-dimethoxy-beta-phenethylamine (2C-I): studies on its metabolism and toxicological detection in rat urine using gas chromatographic/mass spectrometric and capillary electrophoretic/mass spectrometric techniques.

Denis S Theobald, Michael Pütz, Erhard Schneider, Hans H Maurer

Journal of mass spectrometry : JMS July 1, 2006 DOI: 10.1002/jms.1045 via PubMed

Summary

AI-generated from the abstract

The designer drug 2C-I is metabolized in rats through O-demethylation, deamination, oxidation, and reduction pathways, producing multiple metabolites that are partly excreted in conjugated form. A systematic toxicological analysis using gas chromatography/mass spectrometry after acid hydrolysis, liquid-liquid extraction, and microwave-assisted acetylation reliably detected a dose of 2C-I in rat urine equivalent to a common human drug user's dose. Assuming similar metabolism in humans, this detection method should be suitable for proving 2C-I intake in human urine.

Study at a glance

Characteristics Experimental study Peer reviewed
Population Rat urine
Intervention 2C-I
Keywords Toxicology: human toxicology Drug detection Detecting Reliably detected 2c-i intake
Citations 51
Key finding The described systematic toxicological analysis procedure using GC/MS can detect an intake of 2C-I in rat urine at a dose corresponding to a common drug user's dose and should be suitable for human urine testing.

Abstract

Studies are described on the metabolism and the toxicological analysis of the phenethylamine-derived designer drug 4-iodo-2,5-dimethoxy-beta-phenethylamine (2C-I) in rat urine using gas chromatographic/mass spectrometric (GC/MS) techniques, and for a particular question, using capillary electrophoretic/mass spectrometric (CE/MS) techniques. The identified metabolites indicated that 2C-I was metabolized on the one hand by O-demethylation in position 2 and 5, respectively, followed either by N-acetylation or by deamination with subsequent oxidation to the corresponding acid or reduction to the corresponding alcohol, respectively. The latter metabolite was hydroxylated in beta-position and further oxidized to the corresponding oxo metabolite. On the other hand, 2C-I was metabolized by deamination with subsequent oxidation to the corresponding acid or reduction to the corresponding alcohol, respectively. 2C-I and most of its metabolites were partially excreted in conjugated form. The authors' systematic toxicological analysis (STA) procedure using full-scan GC/MS after acid hydrolysis, liquid-liquid extraction and microwave-assisted acetylation allowed the detection of an intake of a dose of 2C-I in rat urine that corresponds to a common drug users' dose. Assuming similar metabolism, the described STA procedure should be suitable for proof of an intake of 2C-I in human urine.

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