DMT alters cortical travelling waves
Andrea Alamia, Christopher Timmermann, Rufin Vanrullen, Robin Carhart‐Harris
bioRxiv (Cold Spring Harbor Laboratory) May 8, 2020 preprint DOI: 10.1101/2020.05.06.080937 via OpenAlex
Summary
AI-generated from the abstractThe psychedelic drug DMT rapidly induces an immersive conscious state with vivid visual imagery. EEG recordings showed that DMT alters cortical traveling waves: the typical alpha-band backward wave of eyes-closed rest decreased, while a forward wave similar to that seen during visual stimulation increased. This supports a model where psychedelics reduce the precision-weighting of prior expectations, shifting the balance from top-down to bottom-up information flow. The findings suggest that backward traveling waves are correlates of precision weighting and that reduced backward and increased forward waves are a mechanistic principle of psychedelic-induced altered states.
Study at a glance
| Characteristics | Controlled trial |
|---|---|
| Interventions | DMT placebo (saline) |
| Topics | Serotonin |
| Keywords | Neuroscience Consciousness Electroencephalography Traveling wave |
| Citations | 25 |
| Key finding | DMT decreased backward alpha-band traveling waves and increased forward traveling waves, supporting a model of reduced precision-weighting of priors. |
Abstract
Abstract Psychedelic drugs are potent modulators of conscious states and therefore powerful tools for investigating their neurobiology. N,N, Dimethyltryptamine (DMT) is a particularly interesting serotonergic psychedelic that can rapidly induce an extremely immersive state of consciousness characterized by vivid and elaborate visual imagery. In the present study, we investigated the electrophysiological correlates of the DMT-induced altered state, by recording EEG signals from a pool of participants receiving DMT and (separately) placebo (saline), intravenously, while instructed to keep their eyes closed (i.e. ‘resting state’). Consistent with our prior hypotheses, results revealed a spatio-temporal pattern of cortical activation (i.e., travelling waves) similar to that elicited by visual stimulation. Moreover, the typical top-down alpha-band rhythms of closed-eyes rest (i.e. a backward travelling wave) were significantly decreased, while the bottom-up ‘forward travelling wave’, was significantly increased. These results support a recent model proposing that psychedelics reduce the ‘precision-weighting of priors’, thus altering the balance of top-down versus bottom-up information passing, where properties of backward waves are considered correlates of this precision weighting. The robust hypothesis-confirming nature of the present findings imply the discovery of an important mechanistic principle underpinning psychedelic-induced altered states – i.e. reduced backward and increased forward travelling waves - and lend further support to prior assumptions about the functional significance of cortical travelling waves.