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UNRAVELing the synergistic effects of psilocybin and environment on brain-wide immediate early gene expression in mice.

Daniel Ryskamp Rijsketic, Austen B Casey, Daniel A N Barbosa, Xue Zhang, Tuuli M Hietamies, Grecia Ramirez-Ovalle, Matthew B Pomrenze, Casey H Halpern, Leanne M Williams, Robert C Malenka, Boris D Heifets

Neuropsychopharmacology : official publication of the American College of Neuropsychopharmacology November 1, 2023 DOI: 10.1038/s41386-023-01613-4 via PubMed

Summary

AI-generated from the abstract

Psilocybin increased neural activity (c-Fos expression) in the neocortex, caudoputamen, central amygdala, and parasubthalamic nucleus while decreasing it in the hypothalamus, cortical amygdala, striatum, and pallidum of mice, largely regardless of whether the mice were in their home cage or an enriched environment. Network analyses showed that psilocybin disrupted co-activity between highly correlated brain regions, reduced modularity, and attenuated communication between modules. Context and psilocybin each had widespread effects on brain activity and network architecture, but interactions between the two were surprisingly sparse.

Study at a glance

Characteristics Experimental study Peer reviewed
Population Mice (TRAP2+/-;Ai14+ and other strains)
Interventions Psilocybin saline
Topics Psilocybin
Keywords Psychedelics Neuroscience Brain research Neural networks
Citations 49
Key finding Psilocybin produced widespread, context-independent changes in neural activity and disrupted brain network modularity and intermodular co-activity in mice.

Abstract

The effects of context on the subjective experience of serotonergic psychedelics have not been fully examined in human neuroimaging studies, partly due to limitations of the imaging environment. Here, we administered saline or psilocybin to mice in their home cage or an enriched environment, immunofluorescently-labeled brain-wide c-Fos, and imaged iDISCO+ cleared tissue with light sheet fluorescence microscopy (LSFM) to examine the impact of environmental context on psilocybin-elicited neural activity at cellular resolution. Voxel-wise analysis of c-Fos-immunofluorescence revealed clusters of neural activity associated with main effects of context and psilocybin-treatment, which were validated with c-Fos+ cell density measurements. Psilocybin increased c-Fos expression in subregions of the neocortex, caudoputamen, central amygdala, and parasubthalamic nucleus while it decreased c-Fos in the hypothalamus, cortical amygdala, striatum, and pallidum in a predominantly context-independent manner. To gauge feasibility of future mechanistic studies on ensembles activated by psilocybin, we confirmed activity- and Cre-dependent genetic labeling in a subset of these neurons using TRAP2+/-;Ai14+ mice. Network analyses treating each psilocybin-sensitive cluster as a node indicated that psilocybin disrupted co-activity between highly correlated regions, reduced brain modularity, and dramatically attenuated intermodular co-activity. Overall, our results indicate that main effects of context and psilocybin were robust, widespread, and reorganized network architecture, whereas context×psilocybin interactions were surprisingly sparse.

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