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Effects of Psilocybin on Mouse Brain Microstructure.

Paloma C Frautschi, Ajay P Singh, Nicholas A Stowe, Sean M Grady, Zarmeen Zahid, Matthew I Banks, John-Paul J Yu

AJNR. American journal of neuroradiology June 3, 2025 DOI: 10.3174/ajnr.a8634 via PubMed

Summary

AI-generated from the abstract

Psilocybin treatment in male mice led to structural connectivity differences in the frontal association cortex after 72 hours and microstructural changes in the primary visual cortex after 24 hours, as well as in the striatum and hippocampus after 72 hours, including increased mean diffusivity and decreased neurite density. These findings suggest that diffusion microstructure imaging can detect and characterize brain changes induced by psilocybin, offering a potential method to monitor treatment response and identify clinical endpoints for patients with major depressive disorder.

Study at a glance

Characteristics Randomized controlled trial Peer reviewed
Sample size 36
Population C57BL/6J male mice aged 11-15 weeks
Interventions Psilocybin 6-fluoro-N N-diethyltryptamine saline
Duration 24 hours and 72 hours posttreatment
Topics Psilocybin
Keywords Psychedelics Neuroscience Brain research Mental health
Citations 2
Key finding Psilocybin induced microstructural and connectivity differences in the frontal association cortex, primary visual cortex, striatum, and hippocampus of male mice at 24 and 72 hours posttreatment.

Abstract

There is surging interest in the therapeutic potential of psychedelic compounds like psilocybin in the treatment of psychiatric illnesses like major depressive disorder (MDD). Recent studies point to the rapid antidepressant effect of psilocybin; however, the biologic mechanisms underlying these differences remain unknown. This study determines the feasibility of using diffusion MRI to characterize and define the potential spatiotemporal microstructural differences in the brain following psilocybin treatment in C57BL/6J male mice. Eleven- to 15-week-old C57BL/6J male mice were randomly assigned to receive psilocybin, 6-fluoro-N, N-diethyltryptamine, or saline and ex vivo imaged 24 hours (n=18) and 72 hours (n=18) posttreatment. A 1-way ANOVA with multiple comparison testing (Bonferroni correction) assessed diffusion metric differences (tractography, DTI, neurite orientation dispersion and density imaging) between the 3 groups and was performed in the following regions of interest: amygdala, striatum, hippocampus, thalamus, primary visual cortex area, frontal association cortex, and medial prefrontal cortex at 24 hours and 72 hours postdrug administration. Psilocybin-treated mice demonstrated structural connectivity differences at 72 hours in the frontal association cortex (compared with saline, mean tract length increases, P = .03). Psilocybin also induced microstructural differences at 24 hours postinjection in the primary visual cortex (compared with saline, mean diffusivity [MD] increases, P = .02) and 72 hours postinjection in the striatum (compared with saline; MD increases, P = .02, neurite density index [NDI] decreases, P = .02) and hippocampus (compared with saline; MD increases, P = .04, NDI decreases, P = .02). Diffusion microstructure imaging and white matter tractography are sensitive methods to detect and characterize the neural substrates and microstructural differences accompanying psilocybin treatment. These findings suggest the potential role for diffusion microstructure imaging to quantify the bioeffects of psychedelics like psilocybin on the brain, monitor treatment response, and identify salient clinical end points in an emerging therapeutic option for patients with MDD.

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