<p>Psilocybin is a serotonergic psychedelic with therapeutic potential for treating mental illnesses<sup><CitationRef AdditionalCitationIDS="CR2 CR3" CitationID="CR1">1</CitationRef>–<CitationRef CitationID="CR4">4</CitationRef></sup>. At the cellular level, psychedelics induce structural neural plasticity<sup><CitationRef CitationID="CR5">5</CitationRef>,<CitationRef CitationID="CR6">6</CitationRef></sup>, exemplified by the drug-evoked growth and remodelling of dendritic spines in cortical pyramidal cells<sup><CitationRef AdditionalCitationIDS="CR8" CitationID="CR7">7</CitationRef>–<CitationRef CitationID="CR9">9</CitationRef></sup>. A key question is how these cellular modifications map onto cell-type-specific circuits to produce the psychedelics’ behavioural actions<sup><CitationRef CitationID="CR10">10</CitationRef></sup>. Here we use in vivo optical imaging, chemogenetic perturbation and cell-type-specific electrophysiology to investigate the impact of psilocybin on the two main types of pyramidal cells in the mouse medial frontal cortex. We find that a single dose of psilocybin increases the density of dendritic spines in both the subcortical-projecting, pyramidal tract (PT) and intratelencephalic (IT) cell types. Behaviourally, silencing the PT neurons eliminates psilocybin’s ability to ameliorate stress-related phenotypes, whereas silencing IT neurons has no detectable effect. In PT neurons only, psilocybin boosts synaptic calcium transients and elevates firing rates acutely after administration. Targeted knockout of 5-HT<sub>2A</sub> receptors abolishes psilocybin’s effects on stress-related behaviour and structural plasticity. Collectively, these results identify that a pyramidal cell type and the 5-HT<sub>2A</sub> receptor in the medial frontal cortex have essential roles in psilocybin’s long-term drug action.</p>

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Psilocybin’s lasting action requires pyramidal cell types and 5-HT2A receptors

  • Ling-Xiao Shao,
  • Clara Liao,
  • Pasha A. Davoudian,
  • Neil K. Savalia,
  • Quan Jiang,
  • Cassandra Wojtasiewicz,
  • Diran Tan,
  • Jack D. Nothnagel,
  • Rong-Jian Liu,
  • Samuel C. Woodburn,
  • Olesia M. Bilash,
  • Hail Kim,
  • Alicia Che,
  • Alex C. Kwan

摘要

Psilocybin is a serotonergic psychedelic with therapeutic potential for treating mental illnesses14. At the cellular level, psychedelics induce structural neural plasticity5,6, exemplified by the drug-evoked growth and remodelling of dendritic spines in cortical pyramidal cells79. A key question is how these cellular modifications map onto cell-type-specific circuits to produce the psychedelics’ behavioural actions10. Here we use in vivo optical imaging, chemogenetic perturbation and cell-type-specific electrophysiology to investigate the impact of psilocybin on the two main types of pyramidal cells in the mouse medial frontal cortex. We find that a single dose of psilocybin increases the density of dendritic spines in both the subcortical-projecting, pyramidal tract (PT) and intratelencephalic (IT) cell types. Behaviourally, silencing the PT neurons eliminates psilocybin’s ability to ameliorate stress-related phenotypes, whereas silencing IT neurons has no detectable effect. In PT neurons only, psilocybin boosts synaptic calcium transients and elevates firing rates acutely after administration. Targeted knockout of 5-HT2A receptors abolishes psilocybin’s effects on stress-related behaviour and structural plasticity. Collectively, these results identify that a pyramidal cell type and the 5-HT2A receptor in the medial frontal cortex have essential roles in psilocybin’s long-term drug action.