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Effects of monoamine oxidase inhibitor and cytochrome P450 2D6 status on 5-methoxy-N,N-dimethyltryptamine metabolism and pharmacokinetics.

Hong-Wu Shen, Chao Wu, Xi-Ling Jiang, Ai-Ming Yu

Biochemical pharmacology July 1, 2010 DOI: 10.1016/j.bcp.2010.02.020 via PubMed

Summary

AI-generated from the abstract

The metabolism and pharmacokinetics of the natural psychoactive compound 5-MeO-DMT are strongly influenced by both CYP2D6 genetic variation and monoamine oxidase inhibitors (MAOIs). Compared to the wild-type CYP2D6.1 enzyme, the CYP2D6.2 variant showed 2.6-fold lower catalytic efficiency and CYP2D6.10 showed 40-fold lower efficiency in producing the active metabolite bufotenine. In human liver microsomes treated with the MAOI pargyline, 5-MeO-DMT O-demethylation correlated strongly with CYP2D6 activity. In mice with the human CYP2D6 gene, systemic exposure to bufotenine was 60% higher than in wild-type mice. Pretreatment with the MAOI harmaline increased systemic exposure to 5-MeO-DMT by 3.6- to 4.4-fold and to bufotenine by 6.1- to 9.9-fold, depending on mouse genotype. MAOIs substantially alter 5-MeO-DMT processing and bufotenine formation, with CYP2D6 genotype determining the extent of these effects.

Study at a glance

Characteristics Experimental study with in vitro and in vivo components Peer reviewed
Population Recombinant CYP2D6 enzymes, human liver microsomes, human hepatocytes, and wild-type and CYP2D6-humanized mice
Interventions 5-MeO-DMT pargyline harmaline
Dose 20 mg/kg (i.p.) for 5-MeO-DMT in mice; 5 mg/kg (i.p.) for harmaline; 2 mg/kg (i.p.) for 5-MeO-DMT in harmaline-pretreated mice
Keywords Drug metabolism Biotransformation Pharmacokinetics Drug processing Pharmacogenetics
Citations 40
Key finding MAOIs greatly increase systemic exposure to 5-MeO-DMT and its active metabolite bufotenine, with CYP2D6 genetic variants reducing bufotenine formation by up to 40-fold compared to the wild-type enzyme.

Abstract

5-Methoxy-N,N-dimethyltryptamine (5-MeO-DMT) is a natural psychoactive indolealkylamine drug that has been used for recreational purpose. Our previous study revealed that polymorphic cytochrome P450 2D6 (CYP2D6) catalyzed 5-MeO-DMT O-demethylation to produce active metabolite bufotenine, while 5-MeO-DMT is mainly inactivated through deamination pathway mediated by monoamine oxidase (MAO). This study, therefore, aimed to investigate the impact of CYP2D6 genotype/phenotype status and MAO inhibitor (MAOI) on 5-MeO-DMT metabolism and pharmacokinetics. Enzyme kinetic studies using recombinant CYP2D6 allelic isozymes showed that CYP2D6.2 and CYP2D6.10 exhibited 2.6- and 40-fold lower catalytic efficiency (V(max)/K(m)), respectively, in producing bufotenine from 5-MeO-DMT, compared with wild-type CYP2D6.1. When co-incubated with MAOI pargyline, 5-MeO-DMT O-demethylation in 10 human liver microsomes showed significantly strong correlation with bufuralol 1'-hydroxylase activities (R(2)=0.98; P<0.0001) and CYP2D6 contents (R(2)=0.77; P=0.0007), whereas no appreciable correlations with enzymatic activities of other P450 enzymes. Furthermore, concurrent MAOI harmaline sharply reduced 5-MeO-DMT depletion and increased bufotenine formation in human CYP2D6 extensive metabolizer hepatocytes. In vivo studies in wild-type and CYP2D6-humanized (Tg-CYP2D6) mouse models showed that Tg-CYP2D6 mice receiving the same dose of 5-MeO-DMT (20mg/kg, i.p.) had 60% higher systemic exposure to metabolite bufotenine. In addition, pretreatment of harmaline (5mg/kg, i.p.) led to 3.6- and 4.4-fold higher systemic exposure to 5-MeO-DMT (2mg/kg, i.p.), and 9.9- and 6.1-fold higher systemic exposure to bufotenine in Tg-CYP2D6 and wild-type mice, respectively. These findings indicate that MAOI largely affects 5-MeO-DMT metabolism and pharmacokinetics, as well as bufotenine formation that is mediated by CYP2D6.

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