Skip to content

Molecular and Functional Imaging Studies of Psychedelic Drug Action in Animals and Humans

Paul Cumming, Milan Scheidegger, Dario Dornbierer, Mikael Palner, Boris B. Quednow, Chantal Martin‐soelch

Molecules April 22, 2021 DOI: 10.3390/molecules26092451 via OpenAlex

Summary

AI-generated from the abstract

Hallucinogens such as LSD, psilocybin, and mescaline are being re-evaluated for their psychotherapeutic potential. This narrative review covers in vitro and ex vivo binding studies and molecular imaging using PET or SPECT. Early PET work with [11C]-MBL showed that most specific binding is to serotonin 5-HT2A receptors, but interactions with 5-HT1A receptors and other pathways may contribute to the unique experiences. Other important factors include blood-brain barrier permeability, metabolism, and active metabolites. Only a few PET or SPECT studies of radiolabeled hallucinogens exist, most recently using [11C]Cimbi-36. Hybrid imaging combining PET with fMRI is expected to advance future research.

Study at a glance

Characteristics Narrative review Peer reviewed
Keywords Neuroscience Action physics Drug action Pharmacology Psychology
Citations 45
Key finding Molecular imaging shows that hallucinogens primarily bind to serotonin 5-HT2A receptors, but interactions with other receptors and pathways likely contribute to their effects.

Abstract

Hallucinogens are a loosely defined group of compounds including LSD, N,N-dimethyltryptamines, mescaline, psilocybin/psilocin, and 2,5-dimethoxy-4-methamphetamine (DOM), which can evoke intense visual and emotional experiences. We are witnessing a renaissance of research interest in hallucinogens, driven by increasing awareness of their psychotherapeutic potential. As such, we now present a narrative review of the literature on hallucinogen binding in vitro and ex vivo, and the various molecular imaging studies with positron emission tomography (PET) or single photon emission computer tomography (SPECT). In general, molecular imaging can depict the uptake and binding distribution of labelled hallucinogenic compounds or their congeners in the brain, as was shown in an early PET study with N1-([11C]-methyl)-2-bromo-LSD ([11C]-MBL); displacement with the non-radioactive competitor ketanserin confirmed that the majority of [11C]-MBL specific binding was to serotonin 5-HT2A receptors. However, interactions at serotonin 5HT1A and other classes of receptors and pleotropic effects on second messenger pathways may contribute to the particular experiential phenomenologies of LSD and other hallucinogenic compounds. Other salient aspects of hallucinogen action include permeability to the blood–brain barrier, the rates of metabolism and elimination, and the formation of active metabolites. Despite the maturation of radiochemistry and molecular imaging in recent years, there has been only a handful of PET or SPECT studies of radiolabeled hallucinogens, most recently using the 5-HT2A/2C agonist N-(2[11CH3O]-methoxybenzyl)-2,5-dimethoxy- 4-bromophenethylamine ([11C]Cimbi-36). In addition to PET studies of target engagement at neuroreceptors and transporters, there is a small number of studies on the effects of hallucinogenic compounds on cerebral perfusion ([15O]-water) or metabolism ([18F]-fluorodeoxyglucose/FDG). There remains considerable scope for basic imaging research on the sites of interaction of hallucinogens and their cerebrometabolic effects; we expect that hybrid imaging with PET in conjunction with functional magnetic resonance imaging (fMRI) should provide especially useful for the next phase of this research.

Comments

No comments yet.

Log in to comment