Psilocybin Induces Time-Dependent Changes in Global Functional Connectivity
Katrin H. Preller, Patricia Duerler, Joshua B. Burt, Jie Lisa Ji, Brendan Adkinson, Philipp Stämpfli, Erich Seifritz, Grega Repovš, John H. Krystal, John D. Murray, Alan Anticevic, Franz X. Vollenweider
Biological Psychiatry January 13, 2020 DOI: 10.1016/j.biopsych.2019.12.027 via OpenAlex
Summary
AI-generated from the abstractPsilocybin reduces connectivity in associative brain regions while increasing connectivity in sensory regions, a pattern that emerges over time from administration to peak effects. Baseline connectivity predicts the extent of these changes. The shifts correlate with spatial gene expression patterns of the serotonin 2A and 1A receptors, pinpointing their critical role in the psychedelic state. These findings suggest that sensory integration and associative disintegration may underlie the psychedelic experience, and baseline connectivity could serve as a predictive marker for personalized psychedelic treatment.
Study at a glance
| Characteristics | Double-blind, randomized, counterbalanced, crossover study Peer reviewed |
|---|---|
| Sample size | 23 |
| Population | Healthy human participants |
| Intervention | Psilocybin |
| Dose | 0.2 mg/kg |
| Topics | Psilocybin Serotonin |
| Keywords | Neuroscience Psychology Hallucinogen Sensory system |
| Citations | 199 |
| Key finding | Psilocybin reduced associative but increased sensory brain-wide connectivity over time, with changes correlating with serotonin 2A and 1A receptor gene expression patterns. |
Abstract
BackgroundThe use of psilocybin in scientific and experimental clinical contexts has triggered renewed interest in the mechanism of action of psychedelics. However, its time-dependent systems-level neurobiology remains sparsely investigated in humans.MethodsWe conducted a double-blind, randomized, counterbalanced, crossover study comprising 23 healthy human participants who received placebo and 0.2 mg/kg of psilocybin orally on 2 different test days. Participants underwent magnetic resonance imaging at 3 time points between administration and peak effects: 20 minutes, 40 minutes, and 70 minutes after administration. Resting-state functional connectivity was quantified via a data-driven global brain connectivity method and compared with cortical gene expression maps.ResultsPsilocybin reduced associative, but concurrently increased sensory, brain-wide connectivity. This pattern emerged over time from administration to peak effects. Furthermore, we showed that baseline connectivity is associated with the extent of psilocybin-induced changes in functional connectivity. Lastly, psilocybin-induced changes correlated in a time-dependent manner with spatial gene expression patterns of the 5-HT2A (5-hydroxytryptamine 2A) and 5-HT1A (5-hydroxytryptamine 1A) receptors.ConclusionsThese results suggest that the integration of functional connectivity in sensory regions and the disintegration in associative regions may underlie the psychedelic state and pinpoint the critical role of the serotonin 2A and 1A receptor systems. Furthermore, baseline connectivity may represent a predictive marker of the magnitude of changes induced by psilocybin and may therefore contribute to a personalized medicine approach within the potential framework of psychedelic treatment.