Pharmacokinetic interactions between monoamine oxidase A inhibitor harmaline and 5-methoxy-N,N-dimethyltryptamine, and the impact of CYP2D6 status.
Xi-Ling Jiang, Hong-Wu Shen, Donald E Mager, Ai-Ming Yu
Drug metabolism and disposition: the biological fate of chemicals May 1, 2013 DOI: 10.1124/dmd.112.050724 via PubMed
Summary
AI-generated from the abstractCoadministration of the MAO-A inhibitor harmaline sharply increases systemic and brain exposure to the designer drug 5-MeO-DMT and its active metabolite bufotenine in mice. The effect is stronger in wild-type mice than in CYP2D6-humanized mice, because CYP2D6 breaks down 5-MeO-DMT into bufotenine. Surprisingly, a higher harmaline dose (15 mg/kg) reduces bufotenine levels, an effect confirmed in vitro as harmaline also inhibits CYP2D6. A unified pharmacokinetic model describing these interactions was developed and may help predict drug interactions at various doses and in different CYP2D6 genotypes.
Study at a glance
| Characteristics | Preclinical pharmacokinetic study Peer reviewed |
|---|---|
| Population | Wild-type and CYP2D6-humanized (Tg-CYP2D6) mice |
| Interventions | harmaline 5-MeO-DMT |
| Dose | harmaline 2, 5, 15 mg/kg; 5-MeO-DMT 2, 10 mg/kg |
| Keywords | Pharmacokinetics Drug interactions Drug metabolism Designer drugs |
| Citations | 29 |
| Key finding | Harmaline inhibits both MAO-A and CYP2D6, leading to dose-dependent increases in systemic and brain exposure to 5-MeO-DMT and bufotenine, with higher harmaline doses paradoxically reducing bufotenine levels due to CYP2D6 inhibition. |
Abstract
5-Methoxy-N,N-dimethyltryptamine (5-MeO-DMT or street name "5-MEO") is a newer designer drug belonging to a group of naturally occurring indolealkylamines. Our recent study has demonstrated that coadministration of monoamine oxidase A (MAO-A) inhibitor harmaline (5 mg/kg) increases systemic exposure to 5-MeO-DMT (2 mg/kg) and active metabolite bufotenine. This study is aimed at delineating harmaline and 5-MeO-DMT pharmacokinetic (PK) interactions at multiple dose levels, as well as the impact of CYP2D6 that affects harmaline PK and determines 5-MeO-DMT O-demethylation to produce bufotenine. Our data revealed that inhibition of MAO-A-mediated metabolic elimination by harmaline (2, 5, and 15 mg/kg) led to a sharp increase in systemic and cerebral exposure to 5-MeO-DMT (2 and 10 mg/kg) at all dose combinations. A more pronounced effect on 5-MeO-DMT PK was associated with greater exposure to harmaline in wild-type mice than CYP2D6-humanized (Tg-CYP2D6) mice. Harmaline (5 mg/kg) also increased blood and brain bufotenine concentrations that were generally higher in Tg-CYP2D6 mice. Surprisingly, greater harmaline dose (15 mg/kg) reduced bufotenine levels. The in vivo inhibitory effect of harmaline on CYP2D6-catalyzed bufotenine formation was confirmed by in vitro study using purified CYP2D6. Given these findings, a unified PK model including the inhibition of MAO-A- and CYP2D6-catalyzed 5-MeO-DMT metabolism by harmaline was developed to describe blood harmaline, 5-MeO-DMT, and bufotenine PK profiles in both wild-type and Tg-CYP2D6 mouse models. This PK model may be further employed to predict harmaline and 5-MeO-DMT PK interactions at various doses, define the impact of CYP2D6 status, and drive harmaline-5-MeO-DMT pharmacodynamics.