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The neural basis of psychedelic action.

Alex C. Kwan, David E. Olson, Katrin H. Preller, Bryan L. Roth

Nat Neurosci October 24, 2022 DOI: 10.1038/s41593-022-01177-4 via PubMed Central

Summary

AI-generated from the abstract

This review synthesizes the neurobiology of psychedelic drugs, which are serotonin 2A receptor agonists that alter perception, cognition, and mood. It covers the chemistry of diverse psychoactive molecules, their potency and pharmacokinetics, and the roles of serotonin receptors and downstream signaling pathways. The review describes effects on neuronal spiking in cortical and subcortical regions, transcriptional changes, and structural plasticity. Neuroimaging findings highlight impacts on association cortices and thalamocortical connectivity, informing theories of psychedelic action. The authors integrate knowledge across chemical, molecular, neuronal, and network levels to explain acute and enduring behavioral effects.

Study at a glance

Characteristics Review Peer reviewed
Citations 291
Key finding Psychedelics act as serotonin 2A receptor agonists, altering neural activity and connectivity across multiple brain levels, which underlies their acute and enduring behavioral effects.

Abstract

Psychedelics are serotonin 2A receptor agonists that can lead to profound changes in perception, cognition and mood. In this review, we focus on the basic neurobiology underlying the action of psychedelic drugs. We first discuss chemistry, highlighting the diversity of psychoactive molecules and the principles that govern their potency and pharmacokinetics. We describe the roles of serotonin receptors and their downstream molecular signaling pathways, emphasizing key elements for drug discovery. We consider the impact of psychedelics on neuronal spiking dynamics in several cortical and subcortical regions, along with transcriptional changes and sustained effects on structural plasticity. Finally, we summarize neuroimaging results that pinpoint effects on association cortices and thalamocortical functional connectivity, which inform current theories of psychedelic action. By synthesizing knowledge across the chemical, molecular, neuronal, and network levels, we hope to provide an integrative perspective on the neural mechanisms responsible for the acute and enduring effects of psychedelics on behavior.

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