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Bioisosteric analogs of MDMA with improved pharmacological profile.

Ana Sofia Alberto-Silva, Selina Hemmer, Hailey A Bock, Leticia Alves da Silva, Kenneth R Scott, Nina Kastner, Manan Bhatt, Marco Niello, Kathrin Jäntsch, Oliver Kudlacek, Elena Bossi, Thomas Stockner, Markus R Meyer, John D McCorvy, Simon D Brandt, Pierce Kavanagh, Harald H Sitte

bioRxiv : the preprint server for biology April 11, 2024 preprint DOI: 10.1101/2024.04.08.588083 via PubMed

Summary

AI-generated from the abstract

Three new chemical variants of MDMA—ODMA, TDMA, and SeDMA—show similar activity at serotonin and dopamine transporters but reduced activity at serotonin 5-HT2A/2B/2C receptors, which may lower the risk of off-target side effects. They also differ from MDMA in how they are broken down by the liver, with fewer metabolic pathways and no phase II metabolites. The analogs interact more weakly with certain organic cation transporters. These findings suggest the new compounds could be promising therapeutic alternatives to MDMA for conditions like PTSD, though further research is needed to confirm whether they pose lower risks.

Study at a glance

Characteristics Preclinical in vitro and in silico study
Keywords Psychedelics Drug development Mental health therapy MDMA Research Neuroscience
Key finding Three new MDMA bioisosteres retain similar activity at serotonin and dopamine transporters but show reduced activity at 5-HT2A/2B/2C receptors and altered hepatic metabolism compared with MDMA.

Abstract

3,4-Methylenedioxymethamphetamine (MDMA, ' ecstasy' ) is re-emerging in clinical settings as a candidate for the treatment of specific psychiatric disorders (e.g. post-traumatic stress disorder) in combination with psychotherapy. MDMA is a psychoactive drug, typically regarded as an empathogen or entactogen, which leads to transporter-mediated monoamine release. Despite its therapeutic potential, MDMA can induce dose-, individual-, and context-dependent untoward effects outside safe settings. In this study, we investigated whether three new methylenedioxy bioisosteres of MDMA improve its off-target profile. In vitro methods included radiotracer assays, transporter electrophysiology, bioluminescence resonance energy transfer and fluorescence-based assays, pooled human liver microsome/S9 fraction incubation with isozyme mapping, and liquid chromatography coupled to high-resolution mass spectrometry. In silico methods included molecular docking. Compared with MDMA, all three MDMA bioisosteres (ODMA, TDMA, and SeDMA) showed similar pharmacological activity at human serotonin and dopamine transporters (hSERT and hDAT, respectively) but decreased activity at 5-HT 2A/2B/2C receptors. Regarding their hepatic metabolism, they differed from MDMA, with N -demethylation being the only metabolic route shared, and without forming phase II metabolites. Additional screening for their interaction with human organic cation transporters (hOCTs) and plasma membrane transporter (hPMAT) revealed a weaker interaction of the MDMA analogs with hOCT1, hOCT2, and hPMAT. Our findings suggest that these new MDMA analogs might constitute appealing therapeutic alternatives to MDMA, sparing the primary pharmacological activity at hSERT and hDAT, but displaying a reduced activity at 5-HT 2A/2B/2C receptors and reduced hepatic metabolism. Whether these MDMA bioisosteres may pose lower risk alternatives to the clinically re-emerging MDMA warrants further studies.

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