Oxytocin Gαi signaling-induced amygdala astrocytes processes retraction shapes behavioral stress response
Baudon, A.; Grelot, V.; Althammer, F.; Wang, K.-Y.; Denis, C.; Ali, S.; Yan, Y.; Castillo-Diaz, F.; Piacentini, F.; Creusot, E. C.; Hovhannisyan, V.; Schubert, T.; Kleinwaechter, A.; Helen, J.; Lakomy, T.; Krabichler, Q.; Derrien, P.-A.; Breton, R.; Andry, V.; Carillo-de Sauvage, M.; Demais, V.; Ces, A.; Kremer, M.; Di-Benedetto, B.; Goumon, Y.; Schaaf, C.; Grinevich, V.; Rouach, N.; Darbon, P.; Neumann, I.; Adamantidis, A.; Busnelli, M.; Benhaim, L.; Krijgsveld, J.; Pfrieger, F.; Charlet, A.
Show abstract
Anticipated reactions to stressful situations are vital for the survival and well-being of organisms, and abnormal reactions are involved in stress-related disorders. The neuropeptide oxytocin is a key modulator ensuring well-adapted stress responses. Oxytocin acts on both neurons and astrocytes, but the molecular and cellular mechanisms mediating stress response remain poorly understood. Here, we focus on the amygdala, a crucial hub that integrates and processes sensory information through oxytocin- dependent mechanisms. Using an acute stress paradigm in mice, genetic and pharmacological manipulations combined with proteomic, morphological, electrophysiological and behavioral approaches, we reveal that oxytocinergic modulation of the freezing response to stress is mediated by transient Gi-dependent retraction of astrocytic processes, followed by enhanced neuronal sensitivity to extracellular potassium in the amygdala. Our findings elucidate a pivotal role for astrocytes morphology- dependent modulation of brain circuits that is required for proper anticipated behavioral response to stressful situations.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Ketamine disinhibits dendrites and enhances calcium signals in prefrontal dendritic spines 97%
- Elevated synaptic PKA activity and abnormal striatal dopamine signaling in Akap11 mutant mice, a genetic model of schizophrenia and bipolar disorder 97%
- Prefrontal gamma oscillations and fear extinction learning require early postnatal interneuron-oligodendroglia communication 97%
Similar papers in this journal
- Transient developmental increase of prefrontal activity alters network maturation and causes cognitive dysfunction in adult mice 97%
- Heightened lateral habenula activity during stress produces brainwide and behavioral substrates of susceptibility 97%
- Astrocyte-Secreted Neurocan Controls Inhibitory Synapse Formation and Function 97%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.