Pharmacological characterization of 3,4-methylenedioxyamphetamine (MDA) analogs and two amphetamine-based compounds: ,α-DEPEA and DPIA
Karolina E. Kolaczynska, Paula Ducret, Daniel Trachsel, Marius C. Hoener, Matthias E. Liechti, Dino Luethi
European Neuropsychopharmacology April 1, 2022 DOI: 10.1016/j.euroneuro.2022.03.006 via OpenAlex
Summary
AI-generated from the abstractMDA and related amphetamine-based compounds found in street drugs and sport supplements vary in their effects on monoamine transporters and receptors. Most compounds inhibited norepinephrine uptake most potently and preferentially blocked serotonin over dopamine uptake, except 3C-BOH and N,α-DEPEA, which favored dopamine uptake. Several compounds triggered monoamine release, and most bound to serotonin 5-HT2A and 5-HT2C receptors with micromolar affinity, acting as partial or full agonists at 5-HT2A and 5-HT2B. Some also interacted with adrenergic receptors and TAAR1. Fluorinated MDA analogs resembled MDMA's profile, while 3C-BOH and N,α-DEPEA showed amphetamine-like dopaminergic activity. Further pharmacokinetic and pharmacodynamic studies are needed to assess risks and therapeutic potential.
Study at a glance
| Characteristics | In vitro pharmacological study Peer reviewed |
|---|---|
| Population | Human embryonic kidney 293 cells stably transfected with human monoamine transporters |
| Topics | MDMA Serotonin |
| Keywords | Pharmacology Monoamine neurotransmitter Amphetamine Chemistry |
| Citations | 7 |
| Key finding | MDA analogs and related compounds show distinct pharmacological profiles: most inhibit norepinephrine uptake most potently and preferentially block serotonin over dopamine uptake, while 3C-BOH and N,α-DEPEA favor dopamine uptake and resemble amphetamine. |
Abstract
3,4-methylenedioxyamphetamine (MDA) is a psychoactive compound chemically related to the entactogen MDMA. MDA shares some of the entactogenic effects of MDMA but also exerts stimulant effects and psychedelic properties at higher doses. Here, we examined the pharmacological properties of MDA analogs and related amphetamine-based compounds detected in street drug samples or in sport supplements. We examined the key pharmacological mechanisms including monoamine uptake inhibition and release using human embryonic kidney 293 cells stably transfected with the respective human transporters. Additionally, we assessed monoamine transporter and receptor binding and activation properties. MDA, its fluorinated analogs, as well as the α-ethyl containing BDB and the dimeric amphetamine DPIA inhibited NET with the greatest potency and preferentially inhibited 5-HT vs. dopamine uptake. The β‑methoxy MDA analog 3C-BOH and the amphetamine-based N,α-DEPEA inhibited NET and preferentially inhibited dopamine vs. 5-HT uptake. The test drugs mediated efflux of at least one monoamine with the exception of DPIA. Most compounds bound to 5-HT2A and 5-HT2C receptors (Ki ≤ 10 µM) and several substances activated the 5-HT2A and 5-HT2B receptor as partial or full agonists. Furthermore, several compounds interacted with adrenergic receptors and the trace amine-associated receptor 1 (TAAR1) in the micromolar range. The pharmacological profiles of some fluorinated and nonfluorinated MDA analogs resemble the profile of MDMA. In contrast, 3C-BOH and N,α-DEPEA displayed more pronounced dopaminergic activity similar to amphetamine. Pharmacokinetics and pharmacodynamics studies are necessary to better establish the risks and therapeutic potential of the tested drugs.