grant

Unravelling lung interoception and its functional consequence in the developing ovine lung

Organization LOMA LINDA UNIVERSITYLocation Loma Linda, UNITED STATESPosted 1 Sept 2021Deadline 31 Aug 2026
NIHUS FederalResearch GrantFY20250-4 weeks old21+ years oldAbdominal DeliveryAcuteAddressAdultAdult HumanAffectAllergicAlveolarAlveolusAnimalsApneaAsthmaAutonomic nervous systemBehavioralBilateralBirthBloodBlood Reticuloendothelial SystemBlood VesselsBody TissuesBrainBrain Nervous SystemBrain StemBrainstemBreathingBronchial AlveolusBronchial AsthmaBronchopulmonary DysplasiaC FiberC sectionCNS Nervous SystemCategoriesCell Communication and SignalingCell NucleusCell SignalingCentral Nervous SystemCerebral cortexCesareanCesarean sectionChemicalsChronicColoring AgentsCommunicationComputer softwareCot DeathCranial Nerve XCrib DeathCustomCyclicityDataDenervationDeveloping fetusDevelopmentDyesEfferent NeuronsElectrodesEmbryoEmbryonicEncephalonEnvironmentEpitheliumEsthesiaExerciseFeedbackFetal DevelopmentFetal LambFetal LungFetal SheepFetal ovineFetusFutureGasesGeneralized GrowthGestationGoalsGrowthGrowth and DevelopmentGrowth and Development functionHumanHypoxiaHypoxicImmune responseImplantInteroceptionIntracellular Communication and SignalingInvadedIrritantsKnowledgeLeannessLifeLinkLocationLungLung DiseasesLung Respiratory SystemMaintenanceMapsMeasuresMechanicsMechanoreceptorsModelingModern ManModernizationMonitorMorphologyMyographyNatureNerveNerve CellsNerve Impulse TransmissionNerve TransmissionNerve UnitNeural CellNeuraxisNeurobiologyNeurocyteNeuroendocrine CellNeuroimmuneNeuronal TransmissionNeuronsNewborn InfantNewbornsNodose GanglionNucleusOperative ProceduresOperative Surgical ProceduresOrganOutcome StudyOvineOvisOxygen DeficiencyParturitionPatternPerinatalPeriodicalsPeriodicityPeripartumPhasePhenotypePhysiologyPlayPneumogastric NervePopulationPregnancyPrevalencePulmonary ArteryPulmonary DiseasesPulmonary DisorderPulmonary Gas ExchangePulmonary artery structureRNA SeqRNA sequencingRNAseqReceptor ProteinResearchRespirationRespiratory AspirationRespiratory EpitheliumRespiratory InspirationRespiratory physiologyRhythmicityRoleSIDSSensationSensorySeriesSheepSignal TransductionSignal Transduction SystemsSignalingSoftwareStressStructureStructure of respiratory epitheliumSudden Infant DeathSudden Unexpected Infant DeathSudden infant death syndromeSurgicalSurgical InterventionsSurgical ProcedureSynapsesSynapticTechniquesTenth Cranial NerveTestingThinnessTimeTissue GrowthTissuesTracerVagus NerveVagus nerve structureViralWorkadulthoodafferent nerveairway epitheliumaxon signalingaxon-glial signalingaxonal signalingbiological signal transductionchronic lung disease in infantschronic lung disease in neonatal infantschronic lung disease in neonateschronic lung disease in newbornschronic lung disease in prematuritychronic lung disease in preterm infantschronic lung disease of infancychronic lung disease of prematurityclass developmentcourse developmentcourse material developmentcustomsdevelopmentaldisease of the lungdisorder of the lungefferent nerveenvironmental stressesenvironmental stressorexperiencefetalfetal hypoxiafetus hypoxiaglia signalingglial signalinghost responsehuman modelimmune system responseimmunoresponseinfant chronic lung diseaseinfants with chronic lung diseaseinnervationinspirationinstrumentloss of functionlung developmentlung disorderlung functionmechanicmechanicalmethacholinemicrobialmodel of humanneonatal chronic lung diseasenerve signalingnerve supplynervous system developmentneuralneural circuitneural circuitryneural controlneural networkneural regulationneural signalingneurobiologicalneurocircuitryneuromodulationneuromodulatoryneuronalneuronal signalingneuroregulationneurotransmissionnewborn childnewborn childrennewborn chronic lung diseasenovelontogenyovine animal modelovine modelpathogenperiodicperiodicalpost-prematurity respiratory diseasepostnatalprematureprematuritypreterm infants with chronic lung diseasepulmonarypulmonary functionreceptorrespiratoryrespiratory functionrespiratory mechanismrespiratory tract epitheliumresponsesensory nervesheep modelsocial rolesurgerysynapsesynaptic circuitsynaptic circuitrytranscriptome sequencingtranscriptomic sequencingvascular
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Full Description

Project Summary
The interoceptive link between the lung and CNS carries mechanical and irritant information to its first-order synapse in the brainstem. This information is critical in the newborn and adult for maintenance of pulmonary gas exchange in the face of behavioral changes and environmental stressors, and in orchestrating immune responses to viral, bacterial, and allergic pathogens. Although the fetal lung is richly innervated during development, the connectivity to the central nervous system (CNS), the extent to which these neurons help orchestrate lung and CNS formation over the course of development, and the role they play in function at birth remain largely unknown. This R01 application proposes to address this knowledge gap using a novel fetal sheep model.

We hypothesize that intrinsic and extrinsic lung interoceptive units play a role in the normal development of the lung and central respiratory control centers. We will test this in the following aims: Aim 1: Traditional dye and novel viral track tracer techniques will be used in fetal sheep at various stages of lung development to delineate the location and connectivity of the interoceptive units within the lung, as well as first- and second-order central circuitry to and above the brainstem. The effect of surgical denervation on lung developmental morphology and the prevalence of various neural populations involved in chemo- and irritant sensation, including A- and C-fiber neurons involved in breathing control, and pulmonary neuroendocrine cells involved in pulmonary mechano- and chemosensation. Finally, single neuron RNAseq will be used to phenotypically characterize neurons within the fetal jugular and nodose ganglia at various stages of development. Aim 2: To test the necessity of interroception on fetal lung development and respiratory function after birth, fetuses in the canalicular stage will be subjected to either bilateral denervation of the lungs or periodic hyperstimulation of mechanoreceptors via overinflation for the remainder of gestation. Pulmonary vascular function, airway mechanics, and gas exchange will then be monitored following c-section delivery and in response to acute hypoxia and methacholine challenges, and responses will be compared to both sham and naive controls. Aim 3: Vagal ascending and descending nerve traffic will be recorded in fetuses instrumented with state-of-the-art cuff electrodes throughout fetal development and at birth. Custom time-series and spectral analysis software will be used to quantify changes in afferent/efferent vagal nerve signaling in response to pulmonary denervation, birth, and mechano- and chemosensory stimulations.

The outcomes of these studies will fill in critical knowledge gaps of the role of interoception in lung development and function in a sheep model that has been a historically signature model of human perinatal lung development and physiology. Our proposed foundational work will inform future efforts focused on a variety of lung diseases in humans that originate during development, such as bronchopulmonary dysplasia, apnea of prematurity, sudden infant death syndrome, and asthma.

Grant Number: 5R01AT011691-05
NIH Institute/Center: NIH

Principal Investigator: Arlin Blood

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