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Ruin Moaddel

10 papers in the library · 389 citations · publishing 2008-2026

Papers

( 2R,6R )-hydroxynorketamine exerts mGlu 2 receptor-dependent antidepressant actions

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.

Simultaneous population pharmacokinetic modelling of ketamine and three major metabolites in patients with treatment‐resistant bipolar depression

British Journal of Clinical Pharmacology February 1, 2012 Xiaochen Zhao, Swarajya Lakshmi Vattem Venkata, Ruin Moaddel et al. 136 citations

Ketamine is metabolized into several compounds, and this study shows that norketamine is not the main metabolite circulating in the blood after a single 40-minute infusion of 0.5 mg/kg ketamine in patients with treatment-resistant bipolar depression. Instead, dehydronorketamine was the major metabolite in four out of nine patients, norketamine in three, and hydroxynorketamine in two. Large inter-patient variation in metabolite levels was observed. The findings suggest that future research on ketamine's effects should measure these downstream metabolites.

A Phase 1 Assessment of the Safety, Tolerability, Pharmacokinetics and Pharmacodynamics of (2R,6R)-Hydroxynorketamine in Healthy Volunteers.

Clinical pharmacology and therapeutics November 1, 2024 Shruti M Raja, Jeffrey T Guptill, Michelle Mack et al. 34 citations

A metabolite of ketamine, (2R,6R)-hydroxynorketamine (RR-HNK), was tested in a Phase 1 study in healthy volunteers for safety and tolerability. RR-HNK lacks anesthetic and dissociative effects but retains antidepressant and analgesic activity in preclinical models. In single doses from 0.1 to 4 mg/kg and multiple doses of 1 and 2 mg/kg given intravenously over 40 minutes, RR-HNK showed minimal adverse events and no serious adverse events. It did not cause dissociation or sedation. Drug levels in the body increased proportionally with dose, and cerebrospinal fluid analysis confirmed it reached the central nervous system. Some participants showed increases in gamma brain wave activity at lower to mid doses. These results support moving to Phase 2 trials.

Comparative metabolomic analysis in plasma and cerebrospinal fluid of humans and in plasma and brain of mice following antidepressant-dose ketamine administration

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.

Interaction of ibogaine with human alpha3beta4-nicotinic acetylcholine receptors in different conformational states.

The international journal of biochemistry & cell biology September 1, 2010 Hugo R Arias, Avraham Rosenberg, Katarzyna M Targowska-Duda et al. 29 citations

Ibogaine blocks human alpha3beta4-nicotinic acetylcholine receptors (AChRs) by binding to a site in the receptor's ion channel, with about nine times higher potency than phencyclidine (PCP). Ibogaine binds with relatively high affinity (Kd = 0.46 ± 0.06 μM) to a single site in the channel and dissociates more slowly from the desensitized receptor than from the resting one, which may prolong the desensitized state. PCP inhibits ibogaine binding, indicating overlapping binding sites between the serine and valine/phenylalanine rings. The interaction is mainly via van der Waals contacts, with local conformational changes suggested by entropic contributions. These findings suggest ibogaine's mechanism involves stabilizing the receptor in a shut-down state.

Ketamine metabolism via hepatic CYP450 isoforms contributes to its sustained antidepressant actions.

Neuropharmacology November 1, 2024 Thi Mai Loan Nguyen, Jean-Philippe Guilloux, Céline Defaix et al. 3 citations

Ketamine produces rapid and lasting antidepressant effects in depressed patients. A metabolite called (2R,6R)-hydroxynorketamine (HNK) may contribute to these effects. In anxious male mice, blocking the liver enzyme cytochrome P450 with fluconazole before ketamine or HNK altered drug metabolism: it raised ketamine and norketamine levels in blood and brain but sharply reduced HNK levels. Fluconazole also prevented ketamine's sustained antidepressant-like actions in behavioral tests and its enhancement of cortical GABA levels 24 hours after injection. Giving (2R,6R)-HNK alone reversed fluconazole's blockade of ketamine's antidepressant-like activity. The findings suggest that HNK is essential for ketamine's sustained antidepressant effects and that drug interactions with cytochrome P450 inhibitors may affect ketamine treatment in patients.

Interaction of ibogaine analogs with the nicotinic acetylcholine receptor

The FASEB Journal April 1, 2008 Krzysztof Jozwiak, Ruin Moaddel, Irving W. Wainer et al. 2 citations

Ibogaine analogs, especially 18-methoxycoronaridine (18-MC), bind to a specific site within the ion channel of the nicotinic acetylcholine receptor (AChR) when the receptor is in a desensitized state. The affinity of 18-MC for this site is about 0.17 μM in the desensitized state, much higher than in the resting state (12 μM). The binding site overlaps with the TCP locus, located between valine and leucine rings in the channel. These compounds enhance binding of the agonist cytisine only when the receptor is in a resting but activable state, not when desensitized. The findings suggest that ibogaine analogs inhibit the AChR by promoting receptor desensitization.

Time-Dependent Effects of Rapid-Acting Antidepressants in iPSC-Derived Neurons from Treatment-Resistant Depression and Healthy Volunteers.

Research square February 12, 2026 Jenessa Johnston, Greg Jones, Shiyong Peng et al.

Rapid-acting antidepressants such as ketamine and psychedelics share common downstream effects on gene expression in human cortical neurons, despite targeting different initial receptors. Using stem cells from people with treatment-resistant depression and healthy volunteers, neurons were treated with several compounds. After 6 and 24 hours, gene activity was highly correlated across all drugs, converging on pathways related to inflammation, mTORC1 signaling, and cell growth. One compound, HNK, increased gene activity in excitatory neurons and decreased it in inhibitory neurons. These gene changes matched protein changes in spinal fluid from people given ketamine, supporting the model's relevance for studying antidepressant mechanisms.

Ketamine metabolism via hepatic CYP450 isoforms contributes to its sustained antidepressant actions

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.

(R)-Ketamine exerts antidepressant actions partly via conversion to (2R,6R)-hydroxynorketamine, while causing adverse effects at sub-anaesthetic doses.

British journal of pharmacology July 1, 2019 Panos Zanos, Jaclyn N Highland, Xin Liu et al.

In mice, (R)-ketamine's metabolism to (2R,6R)-hydroxynorketamine (HNK) enhances its antidepressant-relevant actions. A deuterated form of (R)-ketamine that blocks this metabolism had less potency in antidepressant-sensitive behavioral tests, while (2R,6R)-HNK itself produced dose-dependent sustained antidepressant effects. However, (R)-ketamine also caused NMDA receptor-mediated adverse effects—including locomotor stimulation, conditioned-place preference, prepulse inhibition deficits, and motor incoordination—at sub-anaesthetic doses, with about half the potency of racemic ketamine. These findings indicate that while antidepressant-relevant effects occur at lower doses, there is a potential risk for sensory dissociation and abuse liability at higher doses.