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The serotonergic psychedelic N,N-dipropyltryptamine alters information-processing dynamics in cortical neural circuits

Thomas F. Varley, Daniel Havert, Leandro Fosque, Abolfazl Alipour, Naruepon Weerawongphrom, Hiroki Naganobori, Lily O'Shea, Maria Pope, John Beggs

arXiv Preprint Archive October 31, 2023 via arXiv

Summary

AI-generated from the abstract

The psychedelic DPT reversibly alters how information is processed in rat cortical tissue. Spontaneous neural firing became more random (higher entropy), and individual neurons stored information for shorter periods. Neural activity became less reversible, pushing the system away from equilibrium. Circuit structure shifted: overall information flow into each neuron decreased, but weak connections increased, blending integration and disintegration. Higher-order statistical synergy among groups of three neurons also dropped. These meso-scale effects offer a more detailed view of psychedelic action than whole-brain imaging provides.

Study at a glance

Characteristics Experimental study Peer reviewed
Population In vitro organotypic cultures from rat cortical tissue
Intervention N
Dose 10 μM
Duration Three hours (one hour pre-drug control, one hour exposure to DPT, one hour washout)
Keywords Q-bio.nc Cs.it Math.it Nlin.ao Psychedelic neurobiology psychedelics
Key finding DPT reversibly increases entropy of spontaneous firing, reduces information storage duration, decreases reversibility of neural activity, alters circuit structure by reducing incoming information flow while increasing weak connections, and lowers higher-order statistical synergy among neurons.

Abstract

Most of the recent work in psychedelic neuroscience has been done using non-invasive neuroimaging, with data recorded from the brains of adult volunteers under the influence of a variety of drugs. While this data provides holistic insights into the effects of psychedelics on whole-brain dynamics, the effects of psychedelics on the meso-scale dynamics of cortical circuits remains much less explored. Here, we report the effects of the serotonergic psychedelic N,N-diproptyltryptamine (DPT) on information-processing dynamics in a sample of in vitro organotypic cultures made from rat cortical tissue. Three hours of spontaneous activity were recorded: an hour of pre-drug control, and hour of exposure to 10$\mu$M DPT solution, and a final hour of washout, once again under control conditions. We found that DPT reversibly alters information dynamics in multiple ways: first, the DPT condition was associated with higher entropy of spontaneous firing activity and reduced the amount of time information was stored in individual neurons. Second, DPT also reduced the reversibility of neural activity, increasing the entropy produced and suggesting a drive away from equilibrium. Third, DPT altered the structure of neuronal circuits, decreasing the overall information flow coming into each neuron, but increasing the number of weak connections, creating a dynamic that combines elements of integration and disintegration. Finally, DPT decreased the higher-order statistical synergy present in sets of three neurons. Collectively, these results paint a complex picture of how psychedelics regulate information processing in meso-scale cortical tissue. Implications for existing hypotheses of psychedelic action, such as the Entropic Brain Hypothesis, are discussed.

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