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Psilocin acutely alters sleep-wake architecture and cortical brain activity in laboratory mice

Trevor Sharp, Christopher W. Thomas, Cristina Blanco‐duque, Benjamin J. B. Bréant, Guy M. Goodwin, David M. Bannerman, Vladyslav V. Vyazovskiy

Translational Psychiatry February 23, 2022 DOI: 10.1038/s41398-022-01846-9 via OpenAlex

Summary

AI-generated from the abstract

Psilocin, a serotonergic psychedelic, alters sleep architecture and cortical activity in mice. Acute administration delays REM sleep onset, reduces NREM sleep maintenance for about three hours, and enhances a 4 Hz EEG oscillation. No long-term changes in sleep-wake quantity occur. Psilocin does not affect the overall homeostatic sleep rebound after sleep deprivation, but it slows the recovery of slow-wave activity in the medial prefrontal and surrounding cortex. These findings suggest psilocin influences both global vigilance state control and local sleep homeostasis, which may relate to its antidepressant effects.

Study at a glance

Characteristics Experimental study Peer reviewed
Population Mice
Intervention Psilocin
Duration Up to approximately 3 h after dosing, with sleep deprivation and recovery period
Keywords Sleep architecture Neuroscience Psychology Sleep system call Schizophrenia object-oriented programming
Citations 40
Key finding Psilocin delays REM sleep onset, reduces NREM sleep maintenance acutely, and decreases the recovery rate of sleep slow-wave activity after sleep deprivation in the medial prefrontal cortex.

Abstract

Abstract Serotonergic psychedelic drugs, such as psilocin (4-hydroxy-N,N-dimethyltryptamine), profoundly alter the quality of consciousness through mechanisms which are incompletely understood. Growing evidence suggests that a single psychedelic experience can positively impact long-term psychological well-being, with relevance for the treatment of psychiatric disorders, including depression. A prominent factor associated with psychiatric disorders is disturbed sleep, and the sleep-wake cycle is implicated in the homeostatic regulation of neuronal activity and synaptic plasticity. However, it remains largely unknown to what extent psychedelic agents directly affect sleep, in terms of both acute arousal and homeostatic sleep regulation. Here, chronic electrophysiological recordings were obtained in mice to track sleep-wake architecture and cortical activity after psilocin injection. Administration of psilocin led to delayed REM sleep onset and reduced NREM sleep maintenance for up to approximately 3 h after dosing, and the acute EEG response was associated primarily with an enhanced oscillation around 4 Hz. No long-term changes in sleep-wake quantity were found. When combined with sleep deprivation, psilocin did not alter the dynamics of homeostatic sleep rebound during the subsequent recovery period, as reflected in both sleep amount and EEG slow-wave activity. However, psilocin decreased the recovery rate of sleep slow-wave activity following sleep deprivation in the local field potentials of electrodes targeting the medial prefrontal and surrounding cortex. It is concluded that psilocin affects both global vigilance state control and local sleep homeostasis, an effect which may be relevant for its antidepressant efficacy.

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