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Daher, F.

Publications and source records attributed to Daher, F..

2 recordsLinked to original sources

Negative allosteric modulation of α5-GABAA receptors engages dynamic cortical glutamatergic and GABAergic mechanisms underlying adaptive behavior in mice

Chronic stress disrupts glutamatergic and GABAergic plasticity in the medial prefrontal cortex (mPFC), impairing circuit integration and contributing to the pathophysiology of stress-related disorders, such as Major Depressive Disorder (MDD). Rapid-acting antidepressants like ketamine can rapidly reverse these deficits, but its clinical use is limited by psychotomimetic side effects. Notably, the 5-GABAAR negative allosteric modulator (5-NAM) Basmisanil (BSM), reproduces ketamine-like behavioral outcomes in preclinical models, although the cellular mechanisms underlying its actions remain unclear. Here, we investigated whether BSM promotes ketamine-like enhancement of cortical plasticity and engages cell type-specific mechanisms to support adaptive behaviors over time. We show that BSM produced rapid and sustained facilitation of motivational, hedonic, and active coping behaviors via mPFC circuits. BSM induced c-Fos expression in mPFC D1R- and somatostatin-expressing cells, suggesting activation of specific subsets of pyramidal and GABA interneurons. In both mPFC and hippocampus, BSM rapidly activated Erk- or Akt-mTOR signaling pathways as well as increased synaptic proteins critical for glutamatergic and GABAergic function. BSM also reversed maladaptive behaviors induced by chronic unpredictable stress, including impairment in object recognition memory and social interaction. Finally, chemogenetic silencing of mPFC CaMKII-expressing neurons blocked both rapid and sustained actions of BSM, whereas inhibition of mPFC GABA interneurons reversed only long-term behavioral outcomes. These results indicate that 5-GABAAR modulation requires early activation of pyramidal neurons to drive rapid plasticity, while GABAergic adaptations support sustained improvements. This dynamic mechanism restores excitation-inhibition (E/I) balance and highlights GABAergic pathways as therapeutic targets for prefrontal dysfunction in stress disorders.

pharmacology and toxicology↗

Effects of ketamine on GABAergic and glutamatergic activity in the mPFC: biphasic recruitment of GABA function in antidepressant-like responses

Major depressive disorder (MDD) is associated with disruptions in glutamatergic and GABAergic activity in the medial prefrontal cortex (mPFC), leading to altered synaptic formation and function. Low doses of ketamine rapidly rescue these deficits, inducing fast and sustained antidepressant effects. While it is suggested that ketamine produces a rapid glutamatergic enhancement in the mPFC, the temporal dynamics and the involvement of GABA interneurons in its sustained effects remain unclear. Using simultaneous photometry recordings of calcium activity in mPFC pyramidal and GABA neurons, as well as chemogenetic approaches in Gad1-Cre mice, we explored the hypothesis that initial effects of ketamine on glutamate signaling trigger subsequent enhancement of GABAergic responses, contributing to its sustained antidepressant responses. Calcium recordings revealed a biphasic effect of ketamine on activity of mPFC GABA neurons, characterized by an initial transient decrease (phase 1, <30 min) followed by an increase (phase 2, >60 min), in parallel with a transient increase in excitation/inhibition levels (10 min) and lasting enhancement of glutamatergic activity (30-120 min). Previous administration of ketamine enhanced GABA neuron activity during the sucrose splash test (SUST) and novelty suppressed feeding test (NSFT), 24 h and 72 h post-treatment, respectively. Chemogenetic inhibition of GABA interneurons during the surge of GABAergic activity (phase 2), or immediately before the SUST or NSFT, occluded ketamines behavioral actions. These results indicate that time-dependent modulation of GABAergic activity is required for the sustained antidepressant-like responses induced by ketamine, suggesting that approaches to enhance GABAergic plasticity and function are promising therapeutic targets for antidepressant development.

neuroscience↗