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Neurochemical and Neurophysiological Effects of Intravenous Administration of N,N-Dimethyltryptamine in Rats.

Nicolas G Glynos, Emma R Huels, Amanda Nelson, Youngsoo Kim, Robert T Kennedy, George A Mashour, Dinesh Pal

bioRxiv : the preprint server for biology February 15, 2025 preprint DOI: 10.1101/2024.04.19.589047 via PubMed

Summary

AI-generated from the abstract

Intravenous DMT in rats caused dose-dependent increases in serotonin and dopamine in the medial prefrontal and somatosensory cortices, along with changes in brain wave patterns: reduced theta and low gamma power, increased delta, medium gamma, and high gamma power, and altered functional connectivity. All doses produced head twitch responses, most after the low dose. For the first time, endogenous DMT was measured in these cortical sites at levels comparable to serotonin and dopamine, suggesting a physiological role for the compound. The findings point to shared mechanisms with other psychedelics and support DMT's potential for treating psychiatric disorders.

Study at a glance

Characteristics Animal experiment
Population Male and female adult rats
Interventions N N-dimethyltryptamine (DMT)
Dose 0.75 mg/kg, 3.75 mg/kg, 7.5 mg/kg
Keywords Neuroscience Psychedelic-research Brain-chemistry Neurotransmitters Mental-health
Citations 11
Key finding Intravenous DMT produced dose-dependent increases in serotonin and dopamine in the medial prefrontal and somatosensory cortices, along with altered EEG spectral power and functional connectivity, and provided the first measurements of endogenous DMT in these cortical sites at levels comparable to serotonin and dopamine.

Abstract

N,N-dimethyltryptamine (DMT) is a serotonergic psychedelic that is being investigated clinically for the treatment of psychiatric disorders. Although the neurophysiological effects of DMT in humans are well-characterized, similar studies in animal models as well as data on the neurochemical effects of DMT are generally lacking, which are critical for mechanistic understanding. In the current study, we combined behavioral analysis, high-density (32-channel) electroencephalography, and ultra-high-performance liquid chromatography-tandem mass spectrometry to simultaneously quantify changes in behavior, cortical neural dynamics, and levels of 17 neurochemicals in medial prefrontal and somatosensory cortices before, during, and after intravenous administration of three different doses of DMT (0.75 mg/kg, 3.75 mg/kg, 7.5 mg/kg) in male and female adult rats. All three doses of DMT produced head twitch response with most twitches observed after the low dose. DMT caused dose-dependent increases in serotonin and dopamine levels in both cortical sites along with a reduction in EEG spectral power in theta (4-10 Hz) and low gamma (25-55 Hz), and increase in power in delta (1-4 Hz), medium gamma (65-115 ), and high gamma (125-155 Hz) bands. Functional connectivity decreased in the delta band and increased across the gamma bands. In addition, we provide the first measurements of endogenous DMT in these cortical sites at levels comparable to serotonin and dopamine, which together with a previous study in occipital cortex, suggests a physiological role for endogenous DMT. This study represents one of the most comprehensive characterizations of psychedelic drug action in rats and the first to be conducted with DMT. N,N-dimethyltryptamine (DMT) is a serotonergic psychedelic with potential as a tool for probing the neurobiology of consciousness and as a therapeutic agent for psychiatric disorders. However, the neurochemical and neurophysiological effects of DMT in rat, a preferred animal model for mechanistic studies, are unclear. We demonstrate that intravenous DMT caused a dose-dependent increase in serotonin and dopamine in medial prefrontal and somatosensory cortices, and simultaneously increased gamma functional connectivity. Similar effects have been shown for other serotonergic and atypical psychedelics, suggesting a shared mechanism of drug action. Additionally, we report DMT during normal wakefulness in two spatially and functionally distinct cortical sites - prefrontal, somatosensory - at levels comparable to those of serotonin and dopamine, supporting a physiological role for endogenous DMT.

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