CRCNS: Discovering the Neural Mechanisms of Breathing Rhythms - Eupnea and Sigh
CRCNS: Discovering the Neural Mechanisms of Breathing Rhythms - Eupnea and Sigh
批准号:
9916264
负责人:
Gregory Douglas Conradi Smith
金额:
$19.51万
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-08-09 至 2022-07-31
关键词:
AgeAirAir SacsAlpha RhythmBehaviorBiochemicalBiophysicsBrainBrain StemBreathingCationsComputer SimulationCouplesCouplingDataElderlyExpressed EmotionFrequenciesGasesGleanInstructionKnowledgeLaboratoriesLinkLungMammalsMathematicsMembraneMembrane PotentialsModelingMotorMotor outputMovementNeuronsNeuropeptidesNonlinear DynamicsOxygenPatternPeriodicityPersonsPhasePhysiologicalPreventionPropertyPumpRecurrenceRoleSignal TransductionSynapsesSynaptic TransmissionTestingTrainingbiomathematicsdoctoral studentexperimental studyhigh schoolinterestmathematical modelneuromechanismneuropathologypredictive modelingprogramsrelating to nervous systemrespiratorysensory feedbackstemsummer internshipundergraduate student
中文摘要
这个项目旨在解释呼吸的神经机制。哺乳动物的呼吸包括
英文摘要
This project aims to explain the neural mechanisms of breathing. Breathing in mammals consists of
eupnea, periodic inspiratory pumping movements that draw air into the lungs for gas exchange, and sighs,
larger less frequent breaths that periodically reinflate gas-exchange air sacs or express emotion, Eupnea
and sigh rhythms are well coordinated and originate from the same set of brainstem neurons, but their
underlying neural mechanisms remain incompletely understood. Using computational simulation and
experimental tests of model predictions, this project will elucidate the mechanisms for eupnea and sigh
rhythms in three SPECIFIC AIMS.
In Aim 1, the project will ascertain the excitatory microcircuit dynamics for eupnea rhythm. An existing
model of eupnea rhythm will be made mathematically tractable for geometric and bifurcation analyses, and
its exclusive focus on synaptic dynamics will be augmented with biophysically realistic somatic membrane
properties, In Aim 2, the project will explore the biochemical oscillatory mechanisms that give rise to sigh
rhythm by developing and contrasting models of metabotropic signaling and intracellular Ca2+ oscillations
that generate sigh-like network rhythm, In Aim 3, the project will examine the synaptic mechanisms that
couple and coordinate the eupnea and sigh rhythms. Experiments will determine the synaptic transmission
that coordinates eupnea and sigh, which will then constrain the models from Aims 1 and 2.
This project will yield two deliverables of high intellectual merit: 1) an explanation of the cellular and synaptic
mechanisms of eupnea- and sigh-related breathing rhythms, and ii) a biophysically realistic model for the
core microcircuit that drives inspiratory breathing movements, both eupnea and sigh, suitable for inclusion
within comprehensive models of the full behavior (e.g., with more motor phases and sensory feedback).
Because rhythms are a ubiquitous aspect of brain function, the rhythmogenic mechanisms of breathing are
of broad interest. This project will provide new knowledge regarding the cellular and synaptic neural origins
of breathing that will inform the treatment and prevention of respiratory neuropathologies that afflict persons
of all ages. The project will support STEM training of Ph.D. students and undergraduates, a thriving
biomathematics consortium at William & Mary, and a summer internship program for public high schools,
RELEVANCE (See instructions):
Breathing consists of eupnea, regular breaths that pump oxygen into the lungs for gas exchange, and
sighs, larger but less frequent breaths that reinflate gas-exchange air sacs or express emotion. This project
applies mathematical models and experiments to explain how the mammalian brainstem generates
breathing rhythms: eupnea and sigh. This knowledge will inform the treatment and prevention of respiratory
neuropathologies that afflict persons of all ages from 'premies' to the elderly.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Molecular characterization of expiratory breathing-related interneurons in mammals
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批准号:10726221
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项目类别:
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资助金额:$41.04万
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财政年份:2023
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负责人:Gregory Douglas Conradi Smith
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依托单位:
CRCNS: Discovering the Neural Mechanisms of Breathing Rhythms - Eupnea and Sigh
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批准号:10220857
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项目类别:
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资助金额:$16.37万
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财政年份:2019
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负责人:Gregory Douglas Conradi Smith
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依托单位:
国内基金
海外基金
湍流和化学交互作用对H2-Air-H2O微混燃烧中NO生成的影响研究
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批准号:51976048
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项目类别:面上项目
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资助金额:61.0万元
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批准年份:2019
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负责人:邱朋华
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依托单位: