Foundational Mapping of the Neural Circuits that Control Intrinsic Lung Function
Foundational Mapping of the Neural Circuits that Control Intrinsic Lung Function
批准号:
9301227
负责人:
Xin Sun
金额:
$41.06万
依托单位国家:
美国
项目类别:
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-02-01 至 2021-05-31
关键词:
AcuteAffectAfferent NeuronsAirAllergensAnatomyAreaAsthmaBiopsy SpecimenBlood PressureBlood VesselsBrain StemBreathingCarbon DioxideCellsCharacteristicsCodeDevelopmentDevicesDiseaseEfferent NeuronsEnvironmentExposure toFoundationsGangliaGasesGoalsHaploidyHumanHypoxiaImmuneImmune responseKnock-in MouseKnowledgeLabelLinkLungLung diseasesMapsMechanicsMinorMissionModelingMolecularMorphologyMusMuscle TonusNervous system structureNeuroendocrine CellNeuronsNeuropeptidesObstructionOrganOutputOxygenPathogenesisPatternPhenotypePhysiologicalPhysiologyPlayProcessProductionPropertyPulmonary HypertensionRabies virusRespiratory DiaphragmRespiratory physiologyRoleSensorySignal TransductionSiteSmooth MuscleSpecificitySpinal CordSpinal GangliaStimulusStretchingStructure of parasympathetic ganglionSurfaceTechnologyTestingTimeTranslatingVascular Smooth MuscleViralWireless TechnologyWorkafferent nerveairway epitheliumarmbaseconstrictionembryonic stem cellgenome editingimplantable devicenerve supplyneural circuitneurochemistryneuronal cell bodyneuroregulationnovel therapeuticspollutantprogramspulmonary functionrelating to nervous systemresponsetargeted treatmenttranscriptomics
中文摘要
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英文摘要
PROJECT SUMMARY
The lung is a richly innervated organ. Strong evidence, including recent findings from us, demonstrates that
neuronal control plays central roles in basic lung response to the environment, including immune activity, as
well as airway and vascular smooth muscle tone which impacts air conductance and pulmonary blood
pressure, respectively. However, the full extent of how the nervous system affects lung function remains
unclear, and little is known of the anatomical and molecular features of the neurons that innervate the lung.
Here, we propose to use cutting-edge viral-based circuit tracing, single cell transcriptomic and haploid ES cell-
based genome editing technologies to: 1) label lung-innervating neurons; 2) determine their localization and
projection pattern; 3) generate knockin mouse lines that will lay the foundation for neuromodulation of lung
function. Findings generated in mice will be tested in human biopsy samples to delineate conserved versus
species-specific mechanisms. With the development of wireless, implantable devices, neuromodulatory
therapy is on the horizon. Findings from this study will lay the necessary foundation for precise manipulation of
organ function through the nervous system, and thus closely comply with the mission of the SPARC program.
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海外基金