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Jessica R. Gilbert

5 papers in the library · 220 citations · publishing 2018-2023

Papers

Ketamine and Serotonergic Psychedelics: Common Mechanisms Underlying the Effects of Rapid-Acting Antidepressants

The International Journal of Neuropsychopharmacology November 16, 2020 Bashkim Kadriu, Maximillian Greenwald, Ioline D. Henter et al. 98 citations

Both the anesthetic ketamine and classic serotonergic psychedelics such as psilocybin may produce rapid and sustained antidepressant effects after a transient psychoactive period. Evidence suggests a potentially shared mechanism wherein both types of drugs engender rapid neuroplastic effects in a glutamatergic activity-dependent manner. They appear to produce acute alterations in cortical network activity that may initially cause psychoactive effects and later produce milder, sustained changes in network efficiency associated with therapeutic response. However, the connection between psychoactive impact and antidepressant efficacy remains unclear and requires more rigorous research. Rapid-acting antidepressants currently under investigation may share downstream pharmacological effects, suggesting related mechanisms of action.

Ketamine and serotonergic psychedelics: An update on the mechanisms and biosignatures underlying rapid-acting antidepressant treatment

Neuropharmacology January 13, 2023 Jenessa N. Johnston, Bashkim Kadriu, Josh Allen et al. 64 citations

Ketamine and serotonergic psychedelics both show promise as rapid-acting antidepressants, though through different primary mechanisms: ketamine modulates glutamate, while serotonergic psychedelics increase serotonin signaling. However, downstream effects like mTORC1 signaling and GABAA receptor activity appear similar, which may explain their shared antidepressant properties. Research on serotonergic psychedelics remains less advanced than on ketamine, and both face regulatory and methodological challenges, including difficulties with placebo controls in trials and the need for long-term observation.

Glutamatergic Signaling Drives Ketamine-Mediated Response in Depression: Evidence from Dynamic Causal Modeling

The International Journal of Neuropsychopharmacology April 10, 2018 Jessica R. Gilbert, Julia S. Yarrington, Kathleen E. Wills et al. 58 citations

Ketamine, a drug that modulates glutamate signaling, produces rapid antidepressant effects. In a double-blind, crossover, placebo-controlled study, 18 people with major depressive disorder and 18 healthy controls each received a single intravenous infusion of ketamine (0.5 mg/kg) and a saline placebo. Magnetoencephalography measured brain activity during tactile stimulation 6 to 9 hours after each infusion. Dynamic causal modeling revealed that ketamine altered NMDA receptor-mediated connectivity differently in the two groups: backward connections were enhanced in depressed subjects, while forward connections were enhanced in controls. Among depressed subjects, improved mood correlated with reduced NMDA and AMPA connectivity in the somatosensory network. The findings indicate that AMPA- and NMDA-mediated glutamatergic signaling is central to ketamine's antidepressant action.

Ketamine and attentional bias to threat: dynamic causal modeling of magnetoencephalographic connectivity in treatment-resistant depression

medRxiv Preprint Server February 22, 2021 Jessica R. Gilbert, Christina S. Galiano, Allison C. Nugent et al. preprint

A single intravenous infusion of ketamine rapidly reduces depressive symptoms in people with treatment-resistant major depressive disorder. In a double-blind, crossover, placebo-controlled study with 19 depressed individuals and 15 healthy volunteers, magnetoencephalographic recordings were taken before and six to nine hours after drug or placebo infusion while participants performed an emotional face attention task. Dynamic causal modeling revealed that ketamine accelerated GABA and NMDA transmission in the early visual cortex, sped NMDA transmission in the fusiform cortex, and slowed NMDA transmission in the amygdala.

Fine-tuning neural excitation/inhibition for tailored ketamine use in treatment-resistant depression

arXiv Preprint Archive February 4, 2021 Erik D. Fagerholm, Robert Leech, Steven Williams et al.

Ketamine rapidly reduces depressive symptoms in treatment-resistant major depressive disorder. Using brain imaging and dynamic causal modeling, researchers analyzed neural excitation/inhibition interactions in the primary somatosensory cortex of 18 unmedicated patients and 18 healthy controls during a somatosensory task. Patients were scanned at baseline, 6-9 hours after ketamine infusion, and 6-9 hours after placebo. A shift in neural dynamics toward a stable region of the Poincaré diagram—requiring increased excitatory and inhibitory coupling—predicted symptom improvement specifically after ketamine, not placebo. This drug-specific neural shift may serve as a biomarker for treatment response.