Asymmetric control of food intake by left and right vagal sensory neurons
M de Araujo, A.; Braga, I.; Leme, G.; Singh, A.; McDougle, M.; Yang, M.; Smith, J.; Vergara, M.; Lin, M.; Khoshbouei, H.; Krasue, E.; Oliveira, A. G.; de Lartigue, G.
Show abstract
We investigated the lateralization of gut-innervating vagal sensory neurons and their roles in feeding behavior. Using genetic, anatomical, and behavioral analyses, we discovered a subset of highly lateralized vagal sensory neurons with distinct sensory responses to intestinal stimuli. Our results demonstrated that left vagal sensory neurons (LNG) are crucial for distension-induced satiety, while right vagal sensory neurons (RNG) mediate preference for nutritive foods. Furthermore, these lateralized neurons engage different central circuits, with LNG neurons recruiting brain regions associated with energy balance and RNG neurons activating areas related to salience, memory, and reward. Altogether, our findings unveil the diverse roles of asymmetrical gut-vagal-brain circuits in feeding behavior, offering new insights for potential therapeutic interventions targeting vagal nerve stimulation in metabolic and neuropsychiatric diseases. One Sentence SummaryLateralized gut-brain circuits respond to different sensory modalities and control distinct feeding behaviors.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Epigenetic plasticity cooperates with emergent cell-cell interactions to drive neoplastic tissue remodeling in the pancreas 96%
- Dual polarity voltage imaging reveals subthreshold dynamics and concurrent spiking patterns of multiple neuron-types 96%
- A Cellular Basis for Heightened Gut Sensitivity in Females 96%
Similar papers in this journal
Similar papers in this journal
- Brain-wide genetic mapping identifies the indusium griseum as a prenatal and shared target of pharmacologically-unrelated psychostimulants 96%
- Tuft cells mediate commensal remodeling of the small intestinal antimicrobial landscape 96%
- Topographically organized representation of space and context in the medial prefrontal cortex 95%
"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.