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MDMA, methamphetamine, and CYP2D6 pharmacogenetics: what is clinically relevant?

Rafael de la Torre, Samanta Yubero‐lahoz, Ricardo Pardo‐lozano, Magı́ Farré

Frontiers in Genetics January 1, 2012 DOI: 10.3389/fgene.2012.00235 via OpenAlex

Summary

AI-generated from the abstract

The metabolism of amphetamine-like psychostimulants is regulated by the polymorphic enzyme CYP2D6. Methamphetamine acts as a weak substrate and competitive inhibitor of CYP2D6, while MDMA is a high-affinity substrate and potent mechanism-based inhibitor, causing all users to phenocopy the poor metabolizer phenotype regardless of genotype. The fraction of metabolic clearance regulated by CYP2D6 for both drugs is substantially lower than in vitro studies suggest, with other cytochrome P450 isoenzymes and renal excretion contributing significantly. Overall, the clinical relevance of CYP2D6 polymorphism is lower than predicted by in vitro findings.

Study at a glance

Characteristics Review Peer reviewed
Topics MDMA
Keywords Pharmacogenetics Cyp2d6 Methamphetamine Medicine
Citations 108
Key finding The clinical relevance of CYP2D6 polymorphism for methamphetamine and MDMA metabolism is lower than predicted by in vitro studies due to contributions from other clearance pathways and mechanism-based inhibition by MDMA.

Abstract

In vitro human studies show that the metabolism of most amphetamine-like psychostimulants is regulated by the polymorphic cytochrome P450 isozyme CYP2D6. Two compounds, methamphetamine and 3,4-methylenedioxymethamphetamine (MDMA), were selected as archetypes to discuss the translation and clinical significance of in vitro to in vivo findings. Both compounds were chosen based on their differential interaction with CYP2D6 and their high abuse prevalence in society. Methamphetamine behaves as both a weak substrate and competitive inhibitor of CYP2D6, while MDMA acts as a high affinity substrate and potent mechanism-based inhibitor (MBI) of the enzyme. The MBI behavior of MDMA on CYP2D6 implies that subjects, irrespective of their genotype/phenotype, are phenocopied to the poor metabolizer (PM) phenotype. The fraction of metabolic clearance regulated by CYP2D6 for both drugs is substantially lower than expected from in vitro studies. Other isoenzymes of cytochrome P450 and a relevant contribution of renal excretion play a part in their clearance. These facts tune down the potential contribution of CYP2D6 polymorphism in the clinical outcomes of both substances. Globally, the clinical relevance of CYP2D6 polymorphism is lower than that predicted by in vitro studies.

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