← hubDrugs

2 sources

← All substances
🔗 MergedComparePsychonautWikiPharmacology
Sections

Pharmacokinetics

Absorption

The limit for detecting fenethylline and its metabolite amphetamine in GLC with N-FID is in the range of nanograms. The elimination of these substances in urine was measured after giving different quantities of Captagon to six volunteers. The concentrations of fenethylline and amphetamine in urine allow to estimate with some limitations time and amount of consuming Captagon for forensic purposes
The incorporation tendency of fenethylline (FNT) and its metabolite into rat hair and the discrimination between FNT use and amphetamine (AP) use by hair analysis using gas chromatography-mass spectrometry with selected ion monitoring are described. After the intraperitoneal administrations of FNT to pigmented hairy rats (5 mg/kg/day, 10 days, n = 3), concentrations of FNT and its metabolite, AP, in the rat hair newly grown over 4 weeks were compared with area under the concentration versus time curves (AUCs) of the drugs in the rat plasma. The hair concentrations of FNT and AP were 52 +/- 1.4 and 4.9 +/- 0.6 ng/mg, whereas those of plasma AUCs were 55.9 +/- 23.1 and 22.3 +/- 4.9 micrograms.min/mL, respectively. The ratios of the hair concentrations to the AUCs of FNT and AP were 0.93 and 0.22, respectively. This suggests that FNT tends to be highly incorporated into hair from blood. The analytical method was applied to the determination of the metabolites in scalp hair of humans who were given FNT orally in multiple doses (50 mg/day, 3 days, n = 5) or in a single dose (50 mg/day, 1 day, n = 1). FNT and AP were detected at 0.51 +/- 0.23 and 0.35 +/- 0.12 ng/mg, respectively, in the proximal 1-cm hair segments from subjects given FNT orally for 3 days and 0.25 and 0.11 ng/mg, respectively, in the single-dose sample. In addition, it was found that the concentrations of FNT were 1.2 to 2.7 times greater than those of AP in the human hair samples, except for one sample, although FNT rapidly disappeared from the urine compared with AP. It was concluded that hair would be a good specimen for disclosure of drug history of FNT and for discrimination between FNT use and AP abuse.

Metabolism

Metabolic fate of 7-[2-(alpha-methylphenylethylamino)ethyl]theophylline hydrochloride (fenetylline) was investigated in male Sprague-Dawley rats and three male volunteers. Six metabolites were identified in the rat urine as amphetamine (AP), p-hydroxy-AP, acetylaminoethyl-theophylline(TP), aminoethyl-TP, hydroxyethyl-TP and carboxymethyl-TP by comparison of their spectral properties and H.P.L.C. and G.L.C. characteristics with those of authentic samples. All these metabolites was also detected in the urine of humans receiving fenetylline. Quantification of these metabolites using H.P.L.C. and G.L.C. showed that carboxymethyl-TP, p-hydroxy-AP and acetylaminoethyl-TP were the major metabolites in 0-24 hr rat urine at 13.7%, 11.2% and 9.3% of dose, respectively. In men, carboxymethyl-TP(39-43% dose) and AP(23-33% dose) were the major metabolites in 0-48 hr urine. These results suggest that fenetylline metabolism proceeds via oxidative cleavage at two different sites to produce aminoethyl-TP and AP, respectively. The pathway producing AP predominates, in both man and rat, but is more predominant in the former.
Fenetylline is metabolized in humans on two pathways. In addition to previously described degradation to amphetamine and 7-oxyethyltheophylline fenetylline undergoes moreover oxydative N-dealkylation to yield 7-aminoethyltheophylline and phenylacetone.
In the fenetylline molecule, theophylline is covalently linked with amphetamine via an alkyl chain. The inclusion of amphetamine and results from early metabolic studies have led to speculation that fenetylline may be merely a prodrug for amphetamine and/or theophylline. Although previous studies are not consistent with this hypothesis, additional studies were conducted to comparatively evaluate the profiles of activity exhibited by fenetylline and its two postulated primary metabolites, (+/-)-amphetamine and theophylline. Investigations were also initiated using newly developed high pressure liquid chromatography (HPLC) techniques to further characterize the metabolic pattern that fenetylline undergoes and to examine the relationship between plasma pharmacokinetics and the pharmacodynamic actions of the drug. Fenetylline inhibits activity associated with amphetamine in certain test systems, an effect similar to that previously observed with fenfluramine. Only small amounts of the amphetamine theoretically available in the fenetylline molecule are released. Pharmacodynamic activity associated with fenetylline administration is more closely tied to plasma levels of the parent compound than to any (+/-)-amphetamine produced.
The interpretation of methamphetamine and amphetamine positive test results in biological samples is a challenge to clinical and forensic toxicology for several reasons. The effects of pH and dilution of urine samples and the knowledge about legitimate and illicit sources have to be taken into account. Besides a potentially legal prescription of amphetamines, many substances metabolize to methamphetamine or amphetamine in the body: amphetaminil, benzphetamine, clobenzorex, deprenyl, dimethylamphetamine, ethylamphetamine, famprofazone, fencamine, fenethylline, fenproporex, furfenorex, mefenorex, mesocarb, and prenylamine. Especially the knowledge of potential origins of methamphetamine and amphetamine turns out to be very important to prevent a misinterpretation of the surrounding circumstances and to prove illegal drug abuse. In this review, potential precursor compounds are described, including their medical use and major clinical effects and their metabolic profiles, as well as some clues which help to identify the sources.
For more Metabolism/Metabolites (Complete) data for Fenetylline (6 total), please visit the HSDB record page.

Fact-sheets from PsychonautWiki. Harm-reduction reference only — not medical advice.