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Chockalingam Ramanathan

2 papers in the library · 41 citations · publishing 2024-2026

Papers

Prefrontal cortex molecular clock modulates development of depression-like phenotype and rapid antidepressant response in mice.

Nature communications August 23, 2024 David H Sarrazin, Wilf Gardner, Carole Marchese et al. 41 citations

Depression involves disrupted circadian rhythms, but the role of internal clocks in mood-regulating brain areas was unclear. In a mouse model of depression, the medial prefrontal cortex (mPFC) showed increased expression of circadian negative-loop genes and decreased positive-clock regulators, and the rapid antidepressant ketamine counteracted these changes. Removing the clock gene Bmal1 from excitatory neurons prevented both depression-like behavior and ketamine's effects. Silencing the clock gene Per2 in mPFC produced antidepressant-like effects, while activating REV-ERB worsened depression and blocked ketamine. Boosting the clock activator ROR had antidepressant-like effects, increasing plasticity-related proteins and synaptic receptors in mPFC. The mPFC molecular clock critically regulates depression-like behavior, and targeting it therapeutically may influence glutamatergic plasticity.

The mPFC molecular clock mediates the effects of sleep deprivation on depression-like behavior and regulates sleep consolidation and homeostasis

Molecular Psychiatry March 1, 2026 Wilf Gardner, David H. Sarrazin, Martin Balzinger et al.

Disruptions in sleep, circadian rhythms, and neural plasticity are closely linked to depression. Using a mouse model of stress-induced depression, the authors found altered sleep architecture, impaired sleep homeostasis, and disrupted day-night oscillations of glutamatergic plasticity markers Homer1a and synaptic AMPAR expression in the medial prefrontal cortex (mPFC). Sleep deprivation (SD) and ketamine, both rapid-acting antidepressants, exerted opposing effects on mPFC circadian gene expression: SD enhanced negative clock loop genes (Per, Cry), while ketamine downregulated them. Targeted deletion of the core clock gene Bmal1 in mPFC excitatory neurons disrupted sleep-wake architecture and abolished the behavioral and molecular response to SD. Pharmacological activation of the clock repressor REV-ERB suppressed SD's antidepressant effects. The mPFC molecular clock is essential for sleep consolidation and homeostasis and mediates SD's behavioral effects.