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Dynamical exploration of the repertoire of brain networks at rest is modulated by 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

Neuroimage May 25, 2019 DOI: 10.1016/j.neuroimage.2019.05.060 (opens in new tab) via PubMed

Summary

AI-generated from the abstract

Brain function can be understood as the exploration of a repertoire of metastable connectivity patterns that underlie different mental processes. Intravenous infusion of psilocybin rapidly modulates how the brain dynamically explores these resting-state networks. Using a data-driven approach focused on the leading eigenvector of BOLD phase coherence at single-TR resolution, recurrent BOLD phase-locking patterns were assessed pre- and post-infusion. A frontoparietal subsystem pattern was strongly destabilized after psilocybin, while a pattern characterized by global BOLD phase coherence became more probable. These results demonstrate network-specific neuromodulation by psilocybin, bridging molecular pharmacodynamics and whole-brain network dynamics.

Study at a glance

Characteristics Observational study with placebo session Peer reviewed
Intervention Intravenous infusion of psilocybin
Topics Neuroplasticity Psilocybin
Keywords Psychedelics Hallucinogens Brain networks Neural networks
Citations 249
Key finding Psilocybin destabilizes a frontoparietal subsystem and increases the probability of a global BOLD phase coherence pattern.

Abstract

Growing evidence from the dynamical analysis of functional neuroimaging data suggests that brain function can be understood as the exploration of a repertoire of metastable connectivity patterns ('functional brain networks'), which potentially underlie different mental processes. The present study characterizes how the brain's dynamical exploration of resting-state networks is rapidly modulated by intravenous infusion of psilocybin, a tryptamine psychedelic found in "magic mushrooms". We employed a data-driven approach to characterize recurrent functional connectivity patterns by focusing on the leading eigenvector of BOLD phase coherence at single-TR resolution. Recurrent BOLD phase-locking patterns (PL states) were assessed and statistically compared pre- and post-infusion of psilocybin in terms of their probability of occurrence and transition profiles. Results were validated using a placebo session. Recurrent BOLD PL states revealed high spatial overlap with canonical resting-state networks. Notably, a PL state forming a frontoparietal subsystem was strongly destabilized after psilocybin injection, with a concomitant increase in the probability of occurrence of another PL state characterized by global BOLD phase coherence. These findings provide evidence of network-specific neuromodulation by psilocybin and represent one of the first attempts at bridging molecular pharmacodynamics and whole-brain network dynamics.

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