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Glutamate and the Neural Basis of the Subjective Effects of Ketamine

J.f.w. Deakin, Jane Lees, Shane Mckie, Jaime E. C. Hallak, S. R. Williams, Serdar Dursun

Archives of General Psychiatry February 1, 2008 DOI: 10.1001/archgenpsychiatry.2007.37 via OpenAlex

Summary

AI-generated from the abstract

Ketamine, which blocks NMDA glutamate receptors and secondarily increases glutamate release, produces psychosis-like symptoms. Using fMRI, a double-blind crossover study with 33 healthy men found that ketamine caused a rapid decrease in ventromedial frontal cortex activity that predicted dissociative effects, and increased activity in posterior cingulate, thalamus, and temporal regions that correlated with psychosis scores. Pretreatment with lamotrigine, a glutamate release inhibitor, prevented many brain changes and symptoms. The findings suggest ketamine's effects involve increased glutamate release and may model two core psychosis processes: abnormal perceptions and impaired cognitive-emotional evaluation.

Study at a glance

Characteristics Randomized controlled trial, crossover Placebo-controlled Double-blind Peer reviewed
Sample size 33
Population Healthy, right-handed men
Topics Ketamine
Keywords Placebo Nmda receptor Glutamate receptor Anesthesia
Citations 315
Key finding Ketamine induced a decrease in ventromedial frontal cortex activity that predicted dissociative effects and increased activity in posterior cingulate, thalamus, and temporal regions that correlated with psychosis scores, and lamotrigine pretreatment prevented many of these changes.

Abstract

CONTEXT: Ketamine evokes psychosislike symptoms, and its primary action is to impair N-methyl-D-aspartate glutamate receptor neurotransmission, but it also induces secondary increases in glutamate release. OBJECTIVES: To identify the sites of action of ketamine in inducing symptoms and to determine the role of increased glutamate release using the glutamate release inhibitor lamotrigine. DESIGN: Two experiments with different participants were performed using a double-blind, placebo-controlled, randomized, crossover, counterbalanced-order design. In the first experiment, the effect of intravenous ketamine hydrochloride on regional blood oxygenation level-dependent (BOLD) signal and correlated symptoms was compared with intravenous saline placebo. In the second experiment, pretreatment with lamotrigine was compared with placebo to identify which effects of ketamine are mediated by increased glutamate release. SETTING: Wellcome Trust Clinical Research Facility, Manchester, England. PARTICIPANTS: Thirty-three healthy, right-handed men were recruited by advertisements. INTERVENTIONS: In experiment 1, participants were given intravenous ketamine (1-minute bolus of 0.26 mg/kg, followed by a maintenance infusion of 0.25 mg/kg/h for the remainder of the session) or placebo (0.9% saline solution). In experiment 2, participants were pretreated with 300 mg of lamotrigine or placebo and then were given the same doses of ketamine as in experiment 1. MAIN OUTCOME MEASURES: Regional BOLD signal changes during ketamine or placebo infusion and Brief Psychiatric Rating Scale and Clinician-Administered Dissociative States Scale scores. RESULTS: Ketamine induced a rapid, focal, and unexpected decrease in ventromedial frontal cortex, including orbitofrontal cortex and subgenual cingulate, which strongly predicted its dissociative effects and increased activity in mid-posterior cingulate, thalamus, and temporal cortical regions (r = 0.90). Activations correlated with Brief Psychiatric Rating Scale psychosis scores. Lamotrigine pretreatment prevented many of the BOLD signal changes and the symptoms. CONCLUSIONS: These 2 changes may underpin 2 fundamental processes of psychosis: abnormal perceptual experiences and impaired cognitive-emotional evaluation of their significance. The results are compatible with the theory that the neural and subjective effects of ketamine involve increased glutamate release.

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