A limbic circuit selectively links active escape to food suppression.

Azevedo, Estefania P; Tan, Bowen; Pomeranz, Lisa E; Ivan, Violet; Fetcho, Robert; Schneeberger, Marc; Doerig, Katherine R; Liston, Conor et al. · Elife · 2020

basic_science · Level V

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Abstract

Stress has pleiotropic physiologic effects, but the neural circuits linking stress to these responses are not well understood. Here, we describe a novel population of lateral septum neurons expressing neurotensin (LS<sup>Nts</sup>) in mice that are selectively tuned to specific types of stress. LS<sup>Nts</sup> neurons increase their activity during active escape, responding to stress when flight is a viable option, but not when associated with freezing or immobility. Chemogenetic activation of LS<sup>Nts</sup> neurons decreases food intake and body weight, without altering locomotion and anxiety. LS<sup>Nts</sup> neurons co-express several molecules including Glp1r (glucagon-like peptide one receptor) and manipulations of Glp1r signaling in the LS recapitulates the behavioral effects of LS<sup>Nts</sup> activation. Activation of LS<sup>Nts</sup> terminals in the lateral hypothalamus (LH) also decreases food intake. These results show that LS<sup>Nts</sup> neurons are selectively tuned to active escape stress and can reduce food consumption via effects on hypothalamic pathways.

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