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Oxidation of methamphetamine and methylenedioxymethamphetamine by CYP2D6
L Y Lin1, E W Di Stefano, D A Schmitz
1Department of Molecular and Medical Pharmacology, University of California, Los Angeles, 90095-1735, USA.
Abstract:
Methamphetamine (MeAmp) abuse has recently experienced a resurgence and approaches to the treatment of its addiction similar to those used with cocaine have been considered. As the treatment regimes are likely to use drugs whose metabolism is related to that of MeAmp, studies were initiated to establish the enzymology of the fate of MeAmp. This report describes investigations of the role of CYP2D6, the human isoform of the enzyme that catalyzes debrisoquine hydroxylation, in the 4-hydroxylation and N-demethylation of MeAmp. The results of studies with human liver microsomes including those from a genetically poor metabolizer with respect to CYP2D6, showing correlation between MeAmp and metoprolol hydroxylation and MDMA demethylenation, were consistent with a major involvement of CYP2D6 in the aromatic 4-hydroxylation of MeAmp. This was confirmed by studies with recombinant CYP2D6 expressed in yeast, which was also shown to effect the N-demethylation of MeAmp. The rate of the 4-hydroxylation reaction was substantially slower than the demethylenation of MDMA. In contrast to MeAmp, MDMA was not N-demethylated by CYP2D6. Since CYP2D6 participates in the major steps of MeAmp metabolism, pharmacokinetic interactions are likely with other drug substrates proposed for the treatment of MeAmp addiction. Furthermore, the genetic polymorphism associated with the enzyme could manifest itself in abnormal responses to MeAmp.
Insights
Cytochrome P450 2D6 (CYP2D6) is crucial for methamphetamine (MeAmp) metabolism, including 4-hydroxylation and N-demethylation. This enzyme
Area of Science:
- Pharmacology and Toxicology
- Drug Metabolism
- Enzymology
Background:
- Methamphetamine (MeAmp) abuse is rising, necessitating effective addiction treatments.
- Treatment strategies may involve drugs metabolized by similar pathways as MeAmp.
- Understanding MeAmp metabolism is vital for predicting drug interactions and treatment responses.
Purpose of the Study:
- To investigate the role of Cytochrome P450 2D6 (CYP2D6) in methamphetamine metabolism.
- To determine if CYP2D6 catalyzes the 4-hydroxylation and N-demethylation of MeAmp.
- To assess potential pharmacokinetic interactions and genetic influences on MeAmp metabolism.
Main Methods:
- Studies using human liver microsomes, including those from CYP2D6 poor metabolizers.
- Correlation analysis between MeAmp metabolism and known CYP2D6 substrates (metoprolol, MDMA).
- Experiments with recombinant CYP2D6 expressed in yeast.
Main Results:
- CYP2D6 significantly contributes to the 4-hydroxylation of MeAmp.
- CYP2D6 also catalyzes the N-demethylation of MeAmp.
- The rate of MeAmp 4-hydroxylation by CYP2D6 is slower than MDMA demethylenation; MDMA is not N-demethylated by CYP2D6.
Conclusions:
- CYP2D6 plays a major role in methamphetamine metabolism.
- Pharmacokinetic interactions are likely with drugs sharing CYP2D6 metabolic pathways.
- Genetic variations in CYP2D6 could lead to altered responses to MeAmp.