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Altered trajectories in the dynamical repertoire of functional network states under psilocybin

Louis-David Lord, Paul Expert, Selen Atasoy, Leor Roseman, Kristina M. Rapuano, Renaud Lambiotte, David Nutt, Gustavo Deco, Robin Carhart‐Harris, Morten L. Kringelbach, Joana Cabral

bioRxiv (Cold Spring Harbor Laboratory) July 25, 2018 preprint DOI: 10.1101/376491 via OpenAlex

Summary

AI-generated from the abstract

Brain activity can be viewed as exploring a landscape of different activity patterns over time, shifting between stable states of functional connectivity that support various mental processes. In a study using fMRI data from healthy participants given intravenous psilocybin (the active compound in magic mushrooms), researchers analyzed how this dynamical landscape changes during the psychedelic state. They found that a connectivity state linked to the fronto-parietal control system became strongly destabilized, while transitions toward a globally synchronized state increased. These changes suggest the psychedelic state biases the brain toward global integration at the cost of local network segregation, offering a mechanistic perspective on the subjective psychedelic experience and potential guidance for pharmacological interventions in neuropsychiatric disorders.

Study at a glance

Characteristics Observational cohort
Population Healthy participants intravenously injected with psilocybin
Intervention Psilocybin
Topics Default mode network Psilocybin
Keywords Consciousness Neuroscience Repertoire
Citations 10
Key finding A functional connectivity state corresponding to the fronto-parietal control system was destabilized in the psychedelic state, while transitions toward a globally synchronized state were enhanced.

Abstract

Abstract Brain activity can be understood as the exploration of a dynamical landscape of activity configurations over both space and time. This dynamical landscape may be defined in terms of spontaneous transitions within a repertoire of discrete metastable states of functional connectivity (FC), which underlie different mental processes. However, it remains unclear how the brain’s dynamical landscape might be changed in altered states of consciousness, such as the psychedelic state. The present study investigated changes in the brain’s dynamical repertoire in an fMRI dataset of healthy participants intravenously injected with the psychedelic compound psilocybin, which is found in “magic mushrooms”. We employed a data-driven approach to study brain dynamics in the psychedelic state, which focuses on the dominant FC pattern captured by the leading eigenvector of dynamic FC matrices, and enables the identification of recurrent FC patterns (“FC-states”), and their transition profiles over time. We found that a FC state closely corresponding to the fronto-parietal control system was strongly destabilized in the psychedelic state, while transitions toward a globally synchronized FC state were enhanced. These differences between brain state trajectories in normal waking consciousness and the psychedelic state suggest that the latter biases a global mode of functional integration at the expense of locally segregated activity in specific networks. These results provide a mechanistic perspective on subjective quality of the psychedelic experience, and further raise the possibility that mapping the brain’s dynamical landscape may help guide pharmacological interventions in neuropsychiatric disorders.

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