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Psilocybin triggers an activity-dependent rewiring of large-scale cortical networks

Quan Jiang, Ling-Xiao Shao, Shenqin Yao, Neil K. Savalia, Annie-Kim Gilbert, Pasha A. Davoudian, Jack D. Nothnagel, Guilian Tian, Tin Shing Hung, H. M. Lai, Kevin T. Beier, Hongkui Zeng, Alex C. Kwan

Cell December 5, 2025 DOI: 10.1016/j.cell.2025.11.009 (opens in new tab)

Study at a glance

AI-extracted from the abstract
Characteristics Experimental study in mice Peer reviewed
Population Mice
Intervention Psilocybin
Dose one dose
Topics Default mode network Neuroplasticity Psilocybin
Keywords Dendritic spine Nerve net Gene silencing Thalamus Synapse Cortex anatomy Cerebral cortex Biological neural network Bursting Perception
Citations 15
Key findings Psilocybin induces network-specific strengthening of inputs from perceptual and medial regions to subcortical targets while weakening cortico-cortical recurrent loops, dependent on drug-evoked spiking activity.

Abstract

Psilocybin holds promise as a treatment for mental illnesses. One dose of psilocybin induces structural remodeling of dendritic spines in the medial frontal cortex in mice. The dendritic spines would be innervated by presynaptic neurons, but the sources of these inputs have not been identified. Here, using monosynaptic rabies tracing, we map the brain-wide distribution of inputs to frontal cortical pyramidal neurons. We discover that psilocybin's effect on connectivity is network specific, strengthening the routing of inputs from perceptual and medial regions (homolog of the default mode network) to subcortical targets while weakening inputs that are part of cortico-cortical recurrent loops. The pattern of synaptic reorganization depends on the drug-evoked spiking activity because silencing a presynaptic region during psilocybin administration disrupts the rewiring. Collectively, the results reveal the impact of psilocybin on the connectivity of large-scale cortical networks and demonstrate neural activity modulation as an approach to sculpt the psychedelic-evoked neural plasticity.

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