Spinal Sensory Ganglia and Gut Sensation
Spinal Sensory Ganglia and Gut Sensation
批准号:
10693190
负责人:
Matthew Huntoon Perkins
金额:
$59.15万
依托单位国家:
美国
项目类别:
财政年份:
2021
资助国家:
美国
项目状态:
未结题
起止时间:
2021-09-01 至 2026-08-31
关键词:
AblationAddressAfferent NeuronsAnatomyAnimalsAnorexiaAreaBehaviorBehavioralBehavioral AssayBrainBrain MappingCell NucleusCellsChemicalsChronicClinicalCognitiveCommunicationComputersDiseaseElectrophysiology (science)EmotionalEsthesiaFOS geneFatigueFeelingFunctional disorderGangliaGastrointestinal MotilityInjectionsInteroceptionLateralLightLinkMapsMechanicsMechanoreceptorsMediatingMethodologyMicroscopyMolecularMusMusculoskeletalNauseaNeuronsNeurosciencesOpsinOpticsOrganParietalPathway interactionsPerceptionPeripheralPhysiologicalPlayProprioceptionReticular FormationRewardsRoleSatiationSensorySensory GangliaSignal TransductionSourceSpinalSpinal CordSpinal GangliaSpinal ManipulationStimulusStomachStretchingSubstance abuse problemTestingTracerVagus nerve structureVertebral columnViralawakebrain circuitrybrain pathwaycombinatorialdesigndetection of nutrientexperimental studygastrointestinalgut-brain axisin vivomechanical signalmechanical stimulusmechanotransductionmotility disordernerve supplynervous system disorderneural circuitnoveloptogeneticspressurepsychologicpsychosocialreceptortherapeutic target
中文摘要
项目总结
英文摘要
Project Summary
The gut-brain axis, and in particular brain-stomach communication, are implicated in emotional and cognitive processing and often linked to many nervous system disorders, including psychosocial dysfunction, substance abuse, neurological diseases, and degeneration. While a large body of work exists on stomach-brain vagal pathways, much less is known about how the brain and the stomach may communicate through the spinal sensory pathways. This R01 application proposes to determine the anatomy, function, and circuitry targeted by gut-innervating spinal sensory ganglia. The proposed studies will test the overarching hypothesis that, similarly to musculoskeletal proprioception, gastrointestinal (GI) mechanical stimuli are signaled to the brain, specifically the lateral reticular nucleus (LRN), via shared spinal sensory pathways. In addition, the proposal will determine the functional impact of the gastric-spinal-brain pathways on brain functions including reward behaviors and brain circuitries including the parietal, insular, and orbitofrontal cortices. To address our aims, state-of-the-art methodology will be used including organ-specific targeting by combinatorial viral injection, optogenetics including optically guided, in vivo electrophysiology in awake mice, computer-operated intraluminal balloon distension, and whole-brain c-Fos maps using light-sheet microscopy. Our studies may reveal novel peripheral therapeutical targets for emotional and psychosocial disorders associated with abnormal gut-brain communication. Moreover, the neural circuitries to be described in our studies may also be targeted to alleviate abnormal psychological states, including the nausea, anorexia, and chronic fatigue typical of GI motility disorders.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1016/j.celrep.2023.112190
发表时间:
2023-03-28
期刊:
Cell reports
影响因子:
8.8
作者:
[]
通讯作者:
海外基金