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Effects of classic psychedelic drugs on turbulent signatures in brain dynamics

Josephine Cruzat, Yonatan Sanz Perl, Anira Escrichs, Jakub Vohryzek, Christopher Timmermann, Leor Roseman, David Nutt, Enzo Tagliazucchi, Gustavo Deco, Andrea I. Luppi, Agustin Ibanez, Robin Carhart‐Harris, Morten L. Kringelbach

Network Neuroscience January 1, 2022 DOI: 10.1162/netn_a_00250 via OpenAlex

Summary

AI-generated from the abstract

Psychedelic drugs like LSD and psilocybin may treat neuropsychiatric disorders by dose-dependently altering the brain's functional hierarchy—the organization of neural activity across regions. Using a turbulence framework that measures local synchronization (vorticity) in both space and time, researchers found that both drugs produce consistent and distinct effects, particularly compressing the default mode network, a higher-level network. These findings support the hypothesis that psychedelics modulate the functional hierarchy and provide a quantitative comparison of how LSD and psilocybin change brain dynamics, with implications for therapeutic use.

Study at a glance

Characteristics Observational study Peer reviewed
Interventions LSD psilocybin
Keywords Turbulence Dynamics music Neuroscience Cognitive psychology
Citations 28
Key finding LSD and psilocybin both compress the brain's functional hierarchy, particularly affecting the default mode network, with consistent and discriminate effects between the two drugs.

Abstract

Abstract Psychedelic drugs show promise as safe and effective treatments for neuropsychiatric disorders, yet their mechanisms of action are not fully understood. A fundamental hypothesis is that psychedelics work by dose-dependently changing the functional hierarchy of brain dynamics, but it is unclear whether different psychedelics act similarly. Here, we investigated the changes in the brain’s functional hierarchy associated with two different psychedelics (LSD and psilocybin). Using a novel turbulence framework, we were able to determine the vorticity, that is, the local level of synchronization, that allowed us to extend the standard global time-based measure of metastability to become a local-based measure of both space and time. This framework produced detailed signatures of turbulence-based hierarchical change for each psychedelic drug, revealing consistent and discriminate effects on a higher level network, that is, the default mode network. Overall, our findings directly support a prior hypothesis that psychedelics modulate (i.e., “compress”) the functional hierarchy and provide a quantification of these changes for two different psychedelics. Implications for therapeutic applications of psychedelics are discussed.

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