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1.
Elife ; 122023 02 22.
Article in English | MEDLINE | ID: mdl-36810133

ABSTRACT

Enteroendocrine cells are specialized sensory cells of the gut-brain axis that are sparsely distributed along the intestinal epithelium. The functions of enteroendocrine cells have classically been inferred by the gut hormones they release. However, individual enteroendocrine cells typically produce multiple, sometimes apparently opposing, gut hormones in combination, and some gut hormones are also produced elsewhere in the body. Here, we developed approaches involving intersectional genetics to enable selective access to enteroendocrine cells in vivo in mice. We targeted FlpO expression to the endogenous Villin1 locus (in Vil1-p2a-FlpO knock-in mice) to restrict reporter expression to intestinal epithelium. Combined use of Cre and Flp alleles effectively targeted major transcriptome-defined enteroendocrine cell lineages that produce serotonin, glucagon-like peptide 1, cholecystokinin, somatostatin, or glucose-dependent insulinotropic polypeptide. Chemogenetic activation of different enteroendocrine cell types variably impacted feeding behavior and gut motility. Defining the physiological roles of different enteroendocrine cell types provides an essential framework for understanding sensory biology of the intestine.


Subject(s)
Enteroendocrine Cells , Glucagon-Like Peptide 1 , Mice , Animals , Enteroendocrine Cells/metabolism , Cell Lineage , Glucagon-Like Peptide 1/genetics , Glucagon-Like Peptide 1/metabolism , Gastric Inhibitory Polypeptide/metabolism , Cholecystokinin/metabolism
3.
Nature ; 609(7926): 320-326, 2022 09.
Article in English | MEDLINE | ID: mdl-36045291

ABSTRACT

The nervous system uses various coding strategies to process sensory inputs. For example, the olfactory system uses large receptor repertoires and is wired to recognize diverse odours, whereas the visual system provides high acuity of object position, form and movement1-5. Compared to external sensory systems, principles that underlie sensory processing by the interoceptive nervous system remain poorly defined. Here we developed a two-photon calcium imaging preparation to understand internal organ representations in the nucleus of the solitary tract (NTS), a sensory gateway in the brainstem that receives vagal and other inputs from the body. Focusing on gut and upper airway stimuli, we observed that individual NTS neurons are tuned to detect signals from particular organs and are topographically organized on the basis of body position. Moreover, some mechanosensory and chemosensory inputs from the same organ converge centrally. Sensory inputs engage specific NTS domains with defined locations, each containing heterogeneous cell types. Spatial representations of different organs are further sharpened in the NTS beyond what is achieved by vagal axon sorting alone, as blockade of brainstem inhibition broadens neural tuning and disorganizes visceral representations. These findings reveal basic organizational features used by the brain to process interoceptive inputs.


Subject(s)
Brain Stem , Sensation , Brain Stem/anatomy & histology , Brain Stem/cytology , Brain Stem/physiology , Calcium/metabolism , Posture/physiology , Sensation/physiology , Sensory Receptor Cells/physiology , Solitary Nucleus/anatomy & histology , Solitary Nucleus/cytology , Solitary Nucleus/physiology , Vagus Nerve/physiology
4.
Neuron ; 109(3): 461-472.e5, 2021 02 03.
Article in English | MEDLINE | ID: mdl-33278342

ABSTRACT

Nausea, the unpleasant sensation of visceral malaise, remains a mysterious process. The area postrema is implicated in some nausea responses and is anatomically privileged to detect blood-borne signals. To investigate nausea mechanisms, we built an area postrema cell atlas through single-nucleus RNA sequencing, revealing a few neuron types. Using mouse genetic tools for cell-specific manipulation, we discovered excitatory neurons that induce nausea-related behaviors, with one neuron type mediating aversion imposed by multiple poisons. Nausea-associated responses to agonists of identified area postrema receptors were observed and suppressed by targeted cell ablation and/or gene knockout. Anatomical mapping revealed a distributed network of long-range excitatory but not inhibitory projections with subtype-specific patterning. These studies reveal the basic organization of area postrema nausea circuitry and provide a framework toward understanding and therapeutically controlling nausea.


Subject(s)
Area Postrema/metabolism , Behavior, Animal/physiology , Nausea/metabolism , Neurons/metabolism , Animals , Calcitonin Receptor-Like Protein/genetics , Calcitonin Receptor-Like Protein/metabolism , Glucagon-Like Peptide-1 Receptor/genetics , Glucagon-Like Peptide-1 Receptor/metabolism , Mice , Mice, Knockout
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