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bioRxiv · 10.64898/2026.09.04.749561

Semaglutide engages distinct brainstem-to-hypothalamus circuits to suppress motivated feeding and regulate ketogenesis and energy expenditure

Abstract

Semaglutide-induced weight loss requires neurons in the dorsal vagal complex (DVC), but how DVC-derived downstream brain circuits coordinate the drug's effects on feeding and metabolism is unknown. We show that semaglutide suppresses fasting-induced AgRP neuron activation through DVC neurons, including Adcyap1+ neurons of the nucleus of the solitary tract (Adcyap1NTS). Projection-specific optogenetic stimulation reveals that Adcyap1NTS inputs to the arcuate nucleus and dorsomedial hypothalamus non-aversively suppress feeding during elevated motivational drive, while sparing active-phase chow intake. Adcyap1NTS[->]arcuate stimulation additionally promotes food intake-independent ketogenesis and weight loss, while stimulation of the Adcyap1NTS[->]DMH pathway lowers energy expenditure. Crucially, stimulation of semaglutide-responsive NTS projections to both hypothalamic regions recapitulates key effects of the corresponding Adcyap1NTS pathways on palatable-food intake and metabolism, while also suppressing fasting-induced AgRP neuron activation, demonstrating that these pathway-specific functions are retained within neuronal circuits recruited by semaglutide. Together, our findings identify brainstem-to-hypothalamus circuit substrates through which semaglutide regulates motivated feeding and metabolic state downstream of the DVC.

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BibTeXRIS

Blid Sköldheden, S., Teixidor-Deulofeu, J., Ruud, J., Engström Ruud, L.. 2026-09-08. Semaglutide engages distinct brainstem-to-hypothalamus circuits to suppress motivated feeding and regulate ketogenesis and energy expenditure. https://doi.org/10.64898/2026.09.04.749561

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