Pharmacological fMRI: Effects of subanesthetic ketamine on resting-state functional connectivity in the default mode network, salience network, dorsal attention network and executive control network
Felix Mueller, Francesco Musso, Markus K. London, Peter de Boer, Norman Zacharias, Georg Winterer
NeuroImage Clinical January 1, 2018 DOI: 10.1016/j.nicl.2018.05.037 via OpenAlex
Summary
AI-generated from the abstractA subanesthetic dose of S-Ketamine, an NMDAR antagonist, alters resting-state brain connectivity in healthy men. In the executive control network, ketamine increased connectivity with the anterior cingulum and superior frontal gyrus, but these changes did not correlate with clinical symptoms. In the salience network, ketamine decreased connectivity with the calcarine fissure, and this decrease correlated with negative symptoms measured by the PANSS (R² > 0.4). The findings suggest that reduced salience network connectivity may serve as a predictive biomarker for ketamine-induced negative symptoms relevant to schizophrenia research.
Study at a glance
| Characteristics | Randomized, double-blind, cross-over study Peer reviewed |
|---|---|
| Sample size | 17 |
| Population | Healthy, male subjects (mean age 27.42 years) |
| Intervention | S-Ketamine |
| Dose | initial bolus 1 mg/kg and continuous infusion of 0.015625 mg/kg/min with dosage reduction -10%/10 min |
| Topics | Default mode network Ketamine |
| Keywords | Resting State FMRI Psychology Neuroscience |
| Citations | 65 |
| Key finding | Ketamine-induced decreased functional connectivity in the salience network correlates with negative symptoms, suggesting a potential biomarker. |
Abstract
Background: Subanesthetic dosages of the NMDAR antagonist, S-Ketamine, can cause changes in behavior in healthy subjects, which are similar to the state acute psychosis and are relevant in translational schizophrenia research. Functional magnetic resonance imaging (fMRI) can be used for non-hypothesis-driven analysis of brain connectivity. The correlation between clinical behavioral scores and neuroimaging can help to characterize ketamine effects on healthy brains in resting state. Method: seventeen healthy, male subjects (mean: 27.42 years, SD: 4.42) were administered an infusion with S-Ketamine (initial bolus 1 mg/kg and continuous infusion of 0.015625 mg/kg/min with dosage reduction -10%/10 min) or saline in a randomized, double-blind, cross-over study. During infusion, resting state connectivity was measured and analyzed with a seed-to-voxel fMRI analysis approach. The seed regions were located in the posterior cingulate cortex, intraparietal sulcus, dorsolateral prefrontal cortex and fronto-insular cortex. Receiver operating characteristics (ROC) were calculated to assess the accuracy of the ketamine-induced functional connectivity changes. Bivariate Pearson correlation was used for correlation testing of functional connectivity changes with changes of clinical scores (PANSS, 5D-ASC). Results: In the executive network (ECN), ketamine significantly increases the functional connectivity with parts of the anterior cingulum and superior frontal gyrus, but no significant correlations with clinical symptoms were found. Decreased connectivity between the salience network (SN) and the calcarine fissure was found, which is significantly correlated with negative symptoms (PANSS) (R2 > 0.4). Conclusion: Decreased ketamine-induced functional connectivity in the salience network may qualify as accurate and highly predictive biomarkers for ketamine induced negative symptoms.