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Nitrous oxide activates layer 5 prefrontal neurons via SK2 channel inhibition for antidepressant effect.

Joseph Cichon, Thomas T Joseph, Xinguo Lu, Andrzej Z Wasilczuk, Max B Kelz, Steven J Mennerick, Charles F Zorumski, Peter Nagele

Nature communications April 3, 2025 DOI: 10.1038/s41467-025-57951-y via PubMed

Summary

AI-generated from the abstract

A single dose of inhaled nitrous oxide (N2O) rapidly and durably activates a specific population of neurons in the cingulate cortex of rodents exposed to chronic stress. This activation rescues a stress-induced hypoactivity state in layer V (L5) pyramidal neurons and is necessary for N2O's antidepressant-like effects. Although N2O is believed to work primarily by blocking NMDA receptors, L5 neurons still activate when NMDA receptor function is inhibited. Instead, N2O inhibits calcium-sensitive potassium (SK2) channels, driving L5 neuron activity and antidepressant-like effects. These findings identify a novel molecular and circuit mechanism for N2O's fast antidepressant action.

Study at a glance

Characteristics Preclinical study Peer reviewed
Population Rodents exposed to chronic stress conditions
Dose a single dose
Key finding Nitrous oxide induces rapid and specific activation of layer V pyramidal neurons in the cingulate cortex via inhibition of SK2 channels, which is necessary for its antidepressant-like effects.

Abstract

Nitrous oxide (N2O) induces rapid and durable antidepressant effects. The cellular and circuit mechanisms mediating this process are not known. Here we find that a single dose of inhaled N2O induces rapid and specific activation of layer V (L5) pyramidal neurons in the cingulate cortex of rodents exposed to chronic stress conditions. N2O-induced L5 activation rescues a stress-associated hypoactivity state, persists following exposure, and is necessary for its antidepressant-like activity. Although NMDA-receptor antagonism is believed to be a primary mechanism of action for N2O, L5 neurons activate even when NMDA-receptor function is attenuated through both pharmacological and genetic approaches. By examining different molecular and circuit targets, we identify N2O-induced inhibition of calcium-sensitive potassium (SK2) channels as a key molecular interaction responsible for driving specific L5 activity along with ensuing antidepressant-like effects. These results suggest that N2O-induced L5 activation is crucial for its fast antidepressant action and this effect involves novel and specific molecular actions in distinct cortical cell types.

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