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Peixiong Yuan

9 papers in the library · 582 citations · publishing 2009-2026

Papers

Concomitant BDNF and sleep slow wave changes indicate ketamine-induced plasticity in major depressive disorder

The International Journal of Neuropsychopharmacology June 7, 2012 Wallace C. Duncan, Simone Sarasso, Fabio Ferrarelli et al. 253 citations

A single infusion of the NMDA receptor antagonist ketamine rapidly reduces depressive symptoms in patients with treatment-resistant major depressive disorder. In 30 patients, ketamine increased electroencephalogram slow wave activity during early non-REM sleep and raised plasma levels of brain-derived neurotrophic factor. The occurrence of high amplitude slow waves and their slope also increased, indicating enhanced synaptic strength. Changes in BDNF levels correlated with changes in EEG parameters, but only in patients who responded to ketamine. This suggests that enhanced synaptic plasticity, reflected by increased slow wave activity and BDNF, is part of the mechanism behind ketamine's rapid antidepressant effects.

Brain-Derived Neurotrophic Factor and Initial Antidepressant Response to anN-Methyl-D-Aspartate Antagonist

The Journal of Clinical Psychiatry September 8, 2009 Rodrigo Machado‐Vieira, Peixiong Yuan, Nancy E. Brutsché et al. 154 citations

Ketamine produces rapid antidepressant effects in people with treatment-resistant major depressive disorder, but these effects are not linked to changes in brain-derived neurotrophic factor (BDNF) levels. In 23 adults aged 18 to 65, a single intravenous infusion of ketamine (0.5 mg/kg) significantly improved depression scores on the Montgomery-Asberg Depression Rating Scale within 230 minutes. However, BDNF levels measured at the same time points did not change from baseline, and no association appeared between antidepressant response and BDNF. The findings indicate that ketamine's initial antidepressant action operates through mechanisms other than BDNF.

NMDA Receptor Activation-Dependent Antidepressant-Relevant Behavioral and Synaptic Actions of Ketamine

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.

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.

Associations between hypothalamic-pituitary-adrenal (HPA) axis hormone levels, major depression features and antidepressant effects of ketamine.

Journal of affective disorders March 15, 2025 Polymnia Georgiou, Cristan A Farmer, Gustavo C Medeiros et al. 24 citations

Baseline levels of stress-related hormones (CRF, ACTH, and cortisol) did not significantly influence how well ketamine worked as an antidepressant in people with treatment-resistant depression. However, higher levels of ACTH and CRF were associated with longer overall duration of depressive episodes, suggesting these hormones might serve as biomarkers for chronic depression. Additionally, people who developed depression at a younger age tended to have more severe depressive symptoms, indicating that earlier onset may lead to greater cumulative stress on the brain and body. The study involved 42 participants in a randomized, placebo-controlled, crossover trial.

Assessment of complement cascade components in patients with major depressive disorder.

Brain, behavior, and immunity July 1, 2025 Brandi Quintanilla, Dede Greenstein, Ashutosh Tripathi et al. 7 citations

Ketamine, a rapid-acting antidepressant, may also regulate immune function. The complement system, part of the innate immune response involved in synaptic plasticity, has been linked to depression. This analysis of data from 39 people with major depressive disorder and 25 healthy volunteers, originally part of a randomized, double-blind trial comparing intravenous ketamine (0.5 mg/kg) to placebo, measured plasma levels of complement proteins C3a and C4a at baseline, 230 minutes, Day 1, and Day 3. A significant interaction between diagnosis and sex was found for C3a but not C4a levels. Ketamine's effects on C3a and C4a did not change over time. The findings suggest that targeting the complement pathway could lead to advances in treating major depressive disorder.

Response of iPSC-derived neurons from individuals with treatment-resistant depression to (2 R,6 R)-hydroxynorketamine and reelin: an exploratory study.

Translational psychiatry November 18, 2025 Jenessa N Johnston, Peixiong Yuan, Bashkim Kadriu et al. 2 citations

In neurons derived from induced pluripotent stem cells of five women with treatment-resistant depression (average age 40.2 years), both the glycoprotein reelin and the ketamine metabolite (2R,6R)-hydroxynorketamine increased expression of several synaptic proteins (GluA1, PSD-95, Dab1, Synapsin I, and p-ERK) within one hour, with effects declining by 24 hours. Gene expression changes were similar for both compounds, though only reelin upregulated mTORC1 signaling. The findings suggest that iPSC-derived neurons may serve as a useful in vitro model for studying treatment-resistant depression and testing potential therapeutics.

Blunted arginine vasopressin secretion in individuals experiencing a major depressive episode with comorbid post-traumatic stress disorder: Results from an exploratory study using copeptin as a surrogate marker.

Journal of neuroendocrinology January 1, 2026 Hiroe Hu, Yoojin Lee, Alaina N Tillman et al. 1 citation

People with both major depression and post-traumatic stress disorder (PTSD) have lower baseline levels of copeptin, a stable marker of vasopressin secretion, and a blunted reduction in copeptin after a single low-dose ketamine infusion compared to those with depression alone. Copeptin levels were unrelated to depression diagnosis or symptom severity of depression, anxiety, PTSD, anhedonia, suicidal ideation, or childhood trauma, but higher copeptin was linked to verbal aggression, an association weakened by PTSD. These findings point to a possible biological subtype of reduced vasopressin activity in co-occurring depression and PTSD, suggesting copeptin may serve as a peripheral biomarker for central vasopressin-driven circuits in neuropsychiatric disorders.

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.