The Nonclassic Psychedelic Ibogaine Disrupts Cognitive Maps.
Victorita E. Ivan, David P Tomàs-Cuesta, Ingrid M. Esteves, Davor Curic, Majid Mohajerani, Bruce L McNaughton, Joern Davidsen, Aaron J. Gruber
Biological Psychiatry Global Open Science 2024 DOI: 10.1016/j.bpsgos.2023.07.008 (opens in new tab)
Study at a glance
AI-extracted from the abstract| Characteristics | Experimental study Peer reviewed |
|---|---|
| Population | Head-fixed mice running on a treadmill |
| Intervention | Ibogaine |
| Dose | 40 mg/kg intraperitoneally |
| Topics | Ibogaine |
| Keywords | Neuronal avalanches Path integration Psychedelics Retrosplenial cortex Compounds Substances Neurocognition Cognitive map Brain representations Neural activity patterns Brain function Spatial navigation Internal navigation Infer position Spatial awareness Neural networks Network dynamics |
| Citations | 7 |
| Key findings | Ibogaine destabilized the cognitive map in the retrosplenial cortex when mice had to infer position between tactile landmarks, increasing neural activity rates and disrupting correlation structure. |
Abstract
The ability of psychedelic compounds to profoundly alter mental function has been long known, but the underlying changes in cellular-level information encoding remain poorly understood. We used two-photon microscopy to record from the retrosplenial cortex in head-fixed mice running on a treadmill before and after injection of the nonclassic psychedelic ibogaine (40 mg/kg intraperitoneally). We found that the cognitive map, formed by the representation of position encoded by ensembles of individual neurons in the retrosplenial cortex, was destabilized by ibogaine when mice had to infer position between tactile landmarks. This corresponded with increased neural activity rates, loss of correlation structure, and increased responses to cues. Ibogaine had surprisingly little effect on the size-frequency distribution of network activity events, suggesting that signal propagation within the retrosplenial cortex was largely unaffected. Taken together, these data support proposals that compounds with psychedelic properties disrupt representations that are important for constraining neocortical activity, thereby increasing the entropy of neural signaling. Furthermore, the loss of expected position encoding between landmarks recapitulated effects of hippocampal impairment, suggesting that disruption of cognitive maps or other hippocampal processing may be a contributing mechanism of discoordinated neocortical activity in psychedelic states.