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Receptor Interaction Profiles of 4-Alkoxy-Substituted 2,5-Dimethoxyphenethylamines and Related Amphetamines

Karolina E. Kolaczynska, Dino Luethi, Daniel Trachsel, Marius C. Hoener, Matthias E. Liechti

Frontiers in Pharmacology November 28, 2019 DOI: 10.3389/fphar.2019.01423 via OpenAlex

Summary

AI-generated from the abstract

A series of 4-alkyloxy-substituted 2,5-dimethoxyamphetamines and their phenethylamine congeners (2C-O derivatives) were tested for binding and activation at serotonin, adrenergic, dopamine, and trace amine receptors, as well as monoamine transporters. Both amphetamine and phenethylamine derivatives bound with moderate to high affinity to the 5-HT2A receptor, with preference over 5-HT1A and 5-HT2C receptors. Extending the 4-alkoxy group generally increased binding affinities at 5-HT2A and 5-HT2C receptors but had mixed effects on activation. Phenethylamines bound more strongly to TAAR1 than their amphetamine analogs. The authors suggest that, based on high 5-HT2A binding, some compounds may produce psychedelic-like effects in humans.

Study at a glance

Characteristics In vitro receptor binding and activation study Peer reviewed
Topics Serotonin
Keywords 5-HT Receptor Pharmacology Intrinsic activity Phenethylamines 5-ht2 receptor
Citations 24
Key finding 4-alkyloxy-substituted 2,5-dimethoxyamphetamines and phenethylamines bind with moderate to high affinity to the 5-HT2A receptor, with preference over 5-HT1A and 5-HT2C receptors, and extending the 4-alkoxy group generally increases binding affinities at 5-HT2A and 5-HT2C receptors.

Abstract

Background: 2,4,5-Trimethoxyamphetamine (TMA-2) is a potent psychedelic compound. Structurally related 4-alkyloxy-substituted 2,5-dimethoxyamphetamines and phenethylamine congeners (2C-O derivatives) have been described but their pharmacology is mostly undefined. Therefore, we examined receptor binding and activation profiles of these derivatives at monoamine receptors and transporters. Methods: Receptor binding affinities were determined at the serotonergic 5-HT1A, 5-HT2A, and 5-HT2C receptors, trace amine-associated receptor 1 (TAAR1), adrenergic α1 and α2 receptors, dopaminergic D2 receptor, and at monoamine transporters, using target-transfected cells. Additionally, activation of 5-HT2A and 5-HT2B receptors and TAAR1 was determined. Furthermore, we assessed monoamine transporter inhibition. Results: Both the phenethylamine and amphetamine derivatives (K i = 8-1700 nM and 61-4400 nM, respectively) bound with moderate to high affinities to the 5-HT2A receptor with preference over the 5-HT1A and 5-HT2C receptors (5-HT2A/5-HT1A = 1.4-333 and 5-HT2A/5-HT2C = 2.1-14, respectively). Extending the 4-alkoxy-group generally increased binding affinities at 5-HT2A and 5-HT2C receptors but showed mixed effects in terms of activation potency and efficacy at these receptors. Introduction of a terminal fluorine atom into the 4-ethoxy substituent by trend decreased, and with progressive fluorination increased affinities at the 5-HT2A and 5-HT2C receptors. Little or no effect was observed at the 5-HT1A receptor for any of the substances tested (K i ≥ 2700 nM). Phenethylamines bound more strongly to the TAAR1 (K i = 21-3300 nM) compared with their amphetamine analogs (K i = 630-3100 nM). Conclusion: As seen with earlier series investigated, the 4-alkyloxy-substituted 2,5-dimethoxyamphetamines and phenethylamines share some trends with the many other phenethylamine pharmacophore containing compounds, such as when increasing the size of the 4-substituent and increasing the lipophilicity, the affinities at the 5-HT2A/C subtype also increase, and only weak 5-HT2A/C subtype selectivities were achieved. At least from the binding data available (i.e., high affinity binding at the 5-HT2A receptor) one may predict mainly psychedelic-like effects in humans, at least for some of the compound investigated herein.

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