Structure-based design of subtype-selective psychedelic analogs.
basic_science · Level V
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- Record sourced from PubMed, PMID 42754591.
- Also identified by DOI 10.1038/s41467-026-77658-y.
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Abstract
Classical psychedelics exert hallucinogenic and therapeutic effects primarily through activation of serotonin 2 A receptor (5-HT<sub>2A</sub>R), offering promise as transformative treatments for neuropsychiatric disorders. However, their concurrent activation of 5-HT<sub>2B</sub>R-associated with cardiac valvulopathy-raises serious safety concerns, underscoring the need for subtype-selective psychedelics. To address this, we determine the cryo-EM structure of 5-HT<sub>2A</sub>R and perform a comparative structural analysis of the orthosteric binding pockets (OBPs) of 5-HT<sub>2A</sub>R and 5-HT<sub>2B</sub>R. Guided by key residue differences, we develop a trigonal pharmacophore model to inform the design of 5-HT<sub>2A</sub>R-selective agonists that avoid 5-HT<sub>2B</sub>R activation. Using this model, we design and synthesize two compound series that selectively activate 5-HT<sub>2A</sub>R while antagonizing 5-HT<sub>2B</sub>R. Molecular basis of subtype selectivity is confirmed by five additional cryo-EM structures of receptor-ligand complexes. Selected compounds also exhibit antidepressant-like efficacy in animal models. Our findings provide a strategy for the development of safer, subtype-selective psychedelic analogs with therapeutic potential.
Medical subject headings
- Hallucinogens
- Receptor, Serotonin, 5-HT2A
- Drug Design
- Serotonin 5-HT2 Receptor Agonists
- Receptor, Serotonin, 5-HT2B