Mindscape Collective is now The Consciousness Library. Same library, new name. You may need to sign in again. About the change
Skip to content

Annie-Kim Gilbert

2 papers in the library · 15 citations · publishing 2025-2026

Papers

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

Cell December 5, 2025 Quan Jiang, Ling-Xiao Shao, Shenqin Yao et al. 15 citations

A single dose of psilocybin causes structural remodeling of dendritic spines in the medial frontal cortex of mice. Using monosynaptic rabies tracing, the researchers mapped brain-wide inputs to frontal cortical pyramidal neurons and found that psilocybin's effect on connectivity is network specific: it strengthens 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 drug-evoked spiking activity, as silencing a presynaptic region during psilocybin administration disrupts the rewiring. These results reveal how psilocybin impacts large-scale cortical network connectivity and show that neural activity modulation can sculpt psychedelic-evoked plasticity.

Psychedelic drug action at dendrites is gated by behavioral state and serotonin receptors

bioRxiv (Cold Spring Harbor Laboratory) July 20, 2026 Neil K. Savalia, Ling-Xiao Shao, Cory A. Knox et al.

Psilocybin transiently increases calcium event rates in apical dendritic tufts of pyramidal tract neurons in the mouse medial frontal cortex, an effect that parallels the drug's brain pharmacokinetics. This acute effect occurs selectively during quiet wakefulness and depends on the 5-HT2A receptor. Under normal conditions, dendritic calcium signaling predicts subsequent spine formation, but psilocybin disrupts this relationship. The findings suggest that the mechanisms linking acute dendritic activity to long-term structural plasticity differ between physiological and psychedelic-induced plasticity.