Proceedings of the National Academy of Sciences
March 13, 2019
Panos Zanos, Jaclyn N. Highland, Brent W. Stewart et al.
153 citations
A single subanesthetic dose of ketamine produces rapid (within hours) and sustained antidepressant effects, unlike standard antidepressants that take months and fail in about 30% of patients. The ketamine metabolite (2R,6R)-hydroxynorketamine [(2R,6R)-HNK] is a rapid-acting antidepressant candidate with fewer adverse effects. Using behavioral, genetic, pharmacological approaches and EEG measurements, the study found that antidepressant-relevant actions of (2R,6R)-HNK involve metabotropic glutamate receptor subtype 2 (mGlu2) signaling and identified high-frequency EEG oscillations as a marker of rapid antidepressant responses. The findings suggest clinical trials combining subtherapeutic doses of mGlu2 receptor inhibitors with ketamine or (2R,6R)-HNK for depression treatment.
The Annual Review of Pharmacology and Toxicology
October 9, 2018
Todd D. Gould, Carlos A. Zarate, Scott M. Thompson
132 citations
Depression has long been treated with drugs that target monoamine brain systems, but these take weeks to work. Low doses of ketamine can improve core depressive symptoms—including mood, anhedonia, and suicidal ideation—within hours after a single dose, with effects lasting up to a week. This discovery has shifted thinking about how depression might be treated more effectively. This review covers clinical data on ketamine and other rapid-acting antidepressants and what is known about their mechanisms. It also discusses brain circuits engaged by these drugs and future medication targets such as hydroxynorketamine, metabotropic glutamate receptor 2/3 antagonists, and modulators of NMDA, AMPA, and GABA receptors.
Journal of Neuroscience
January 3, 2023
Panos Zanos, Kyle A. Brown, Polymnia Georgiou et al.
109 citations
Ketamine, an NMDA receptor antagonist, produces rapid antidepressant effects, but the role of NMDA receptor activation in these effects is unclear. In male mice, ketamine showed an inverted U-shaped dose-response in antidepressant-sensitive tests, indicating that excessive NMDA receptor inhibition can prevent its antidepressant actions. Pretreatment with other NMDA receptor antagonists blocked ketamine's behavioral effects, upregulation of AMPA receptor subunits, and metaplasticity. The antidepressant-like actions of other rapid-acting compounds were also blocked by NMDA receptor inhibition. Ketamine acted synergistically with an NMDA receptor positive allosteric modulator. The authors conclude that rapid-acting antidepressants share a common downstream NMDA receptor activation-dependent effector mechanism, and promoting NMDA receptor signaling may be an effective antidepressant strategy.
Molecular psychiatry
April 1, 2024
Kyle A. Brown, Todd D. Gould
45 citations
The discovery that low doses of ketamine and esketamine can rapidly and persistently relieve depression in treatment-resistant patients has shifted thinking about how quickly depression can be treated. Impaired excitatory synapses in mood-regulating brain circuits likely contribute to depression. Metaplasticity—the process of priming neurons to alter their future capacity for plasticity—may be harnessed by drugs called metaplastogens to reverse depression's underlying pathophysiology. This review argues that diverse rapid-acting antidepressants, including ketamine mimetics and psychedelics, converge on common downstream molecular mediators to strengthen synapses and produce lasting effects. Targeting metaplastic mechanisms could reduce dosing frequency and side effects by eliminating the need for continuous drug presence.
Translational Psychiatry
May 2, 2022
Ruin Moaddel, Panos Zanos, Cristan Farmer et al.
32 citations
Subanesthetic-dose ketamine produces rapid antidepressant effects, but its mechanism remains unclear. A targeted metabolomic analysis of plasma and cerebrospinal fluid from nine healthy volunteers receiving a 40-minute ketamine infusion (0.5 mg/kg), along with parallel analysis in mice given ketamine, (2R,6R)-hydroxynorketamine (HNK), or saline, found that both ketamine and HNK affect multiple inflammatory pathways. Some changes were unique to humans or mice, suggesting species differences. Consistently implicated mechanisms across both species and sample types include LAT1, IDO1, NAD+, nitric oxide signaling, and the sphingolipid rheostat.
Science (New York, N.Y.)
February 17, 2023
Evan M. Hess, Todd D. Gould
9 citations
Psychedelics can activate serotonin receptors located inside cells, a site that serotonin itself cannot reach. This intracellular action may explain why psychedelics produce profound and lasting changes in brain function and behavior, distinct from the effects of the body's own serotonin.
bioRxiv Preprint Server
April 3, 2024
Thi Mai Loan Nguyen, Jean-Philippe Guilloux, Céline Defaix et al.
preprint
Ketamine's rapid antidepressant effects in depressed patients may depend on a specific metabolite, (2R,6R)-hydroxynorketamine ((6)-HNK). In male BALB/cJ mice with high anxiety, blocking liver enzymes that break down ketamine (using fluconazole) raised ketamine and norketamine levels in blood and brain but sharply reduced (6)-HNK levels. This blockade prevented ketamine's sustained antidepressant-like effects 24 hours later in behavioral tests and stopped the increase in cortical GABA levels. Giving a single dose of (2R,6R)-HNK alone restored the antidepressant-like activity. The findings indicate that (6)-HNK is essential for ketamine's lasting antidepressant effects and suggest that drug interactions affecting ketamine metabolism could matter in patients.