An Amygdalar Oscillatory Switch Governs Valence Assignment
Teboul, E.; Weiss, G.; Amaya, K. A.; Stone, B.; Antonoudiou, P. A.; Teboul, D.; Coleman, E.; Urzua, C.; Tasker, J. G.; Maguire, J.
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Reward pursuit and punishment avoidance are among the most fundamental behaviors necessary for survival. The binary valuation of an experience as either positive or negative - "valence assignment" - is imperative for successful navigation of a regularly updating environment. Mounting evidence highlights the critical role of valence responsive basolateral amygdala (BLA) ensembles in coding valence information. However, how BLA ensembles are recruited to drive real-time valence assignment remains elusive. Here, we show locus coeruleus (LC)-derived norepinephrine coordinates this neural computational process via modulatory control over network-organizing BLA parvalbumin-expressing (PV) interneuron activity. Specifically, optogenetic activation of LC to BLA noradrenergic terminals (LC-BLANE) drives real-time negative valence assignment and suppression of BLA fast gamma oscillatory activity via BLA interneuronal 1a adrenergic receptor signaling. Conversely, positive valence assignment also requires BLA PV interneuron activity but is associated with an enhancement of local fast gamma power. Together, these converging data highlight a PV-driven amygdalar oscillatory switch that governs valence assignment.
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