Investigation of Electrolyte Homeostasis via Quantitative Proteomics
Investigation of Electrolyte Homeostasis via Quantitative Proteomics
批准号:
8321094
负责人:
Jesse Rinehart
金额:
$15.43万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-09-02 至 2015-08-31
关键词:
Actin-Binding ProteinAddressAffectAmericanAnimalsArchitectureBiological ModelsBiological ProcessBlood PressureCell Culture TechniquesCell VolumesCell membraneCell physiologyCellsComplexCoupledCytolysisDevelopmentDiseaseDouble EffectElectrolytesElementsEmbryoEpitopesEquilibriumErythrocytesEventExcretory functionFamilyFunctional disorderHealthHemolysisHomeostasisHumanHypertensionImmunoprecipitationIn VitroIndividualInheritedInvestigationIonsIsotonic ExerciseKidneyKnock-outKnockout MiceKnowledgeLabelLeadLifeLinkMass Spectrum AnalysisMediator of activation proteinMembraneMembrane ProteinsMolecularMorphologyMusMutatePathway interactionsPatientsPhosphopeptidesPhosphoproteinsPhosphorylationPhosphorylation SitePhosphotransferasesPhysiologicalPhysiologyProtein-Serine-Threonine KinasesProteinsProteomeProteomicsRNA InterferenceRecombinantsRegulationRelative (related person)RuptureSickle Cell AnemiaSignal PathwaySignal TransductionSignaling ProteinSiteSmall Interfering RNASodiumStimulusStressSwellingSystemTechnologyTherapeuticTissuesTrypsinUrsidae FamilyValidationWateradducinbasebeta-adducinblood pressure regulationcandidate validationchloride-cotransporter potassiumgenetic regulatory proteinin vivoinnovationinsightinterestkidney cellmembermouse modelnovelpublic health relevancerenal epitheliumresponsescaffoldsynthetic peptidetitanium dioxide
中文摘要
描述(由申请人提供):电解质稳态对于细胞水平的生命至关重要,因为细胞必须对渗透压挑战做出反应,以抵御可能导致破裂的细胞水和离子含量的变化。在更大范围内,人类通过维持肾脏钠重吸收和排泄的适当平衡来调节血压。高血压是影响超过 6000 万美国人的主要健康问题,是电解质稳态功能障碍的结果。因此,了解控制电解质稳态的机制对于人类健康非常重要。越来越清楚的是,一组核心调节蛋白可以感知并维持电解质稳态。我们缺乏如何在分子水平上实现这一点的知识。电解质稳态的分子机制对于人类的健康和疾病状态都至关重要,因此必须了解电解质稳态的分子机制才能释放其治疗潜力。我们的目标是了解蛋白质和信号传导机制的网络,主要是调节性磷酸化事件,它们连接细胞体积控制和血压稳态的机制。红细胞作为模型系统具有巨大的潜力,可以了解电解质稳态的关键基本要素。我们将使用定量蛋白质组学方法来研究调节红细胞电解质流量的信号蛋白网络。我们将重点研究 K-Cl 协同转运蛋白作为电解质通量的代表性直接介体,以及激酶 Wnk1 和 Wnk4 作为离子通量的关键信号成分。这些研究将通过识别关键的调节磷酸化位点,为 Wnk 功能的上游调节和控制电解质稳态的下游信号事件提供新的见解。为了将这些观察结果与体内环境联系起来,我们将在小鼠红细胞中使用 SILAC 技术来量化对特定生理扰动做出反应的关键调节磷酸化位点。本研究的目的是提供对协调电解质稳态机制的基本理解。此外,我们正在寻找血压控制和细胞体积调节的机制联系,以便找到治疗高血压和镰状细胞性贫血等疾病的新靶点。
公共健康相关性:本研究的目的是提供对协调电解质稳态机制的基本了解。高血压是影响超过 6000 万美国人的主要健康问题,是电解质稳态功能障碍的结果。因此,了解控制电解质稳态的机制对于人类健康非常重要。
英文摘要
DESCRIPTION (provided by applicant): Electrolyte homeostasis is essential for life at the cellular level, in that, cells must respond to osmotic challenge to fend off changes in cellular water and ion content that could lead to rupture. On a larger scale, humans regulate blood pressure by maintaining an appropriate balance of sodium reabsorption and excretion in the kidney. Hypertension, a major health problem affecting more than 60 million Americans, is a result of a dysfunction in electrolyte homeostasis. Therefore, understanding mechanisms that control electrolyte homeostasis is important for human health. It is becoming increasingly clear that a core set of regulatory proteins senses and maintains electrolyte homeostasis. Our knowledge is lacking in how this is achieved at the molecular level. The molecular mechanisms of electrolyte homeostasis are of critical importance for both healthy and disease states in humans and thus must be understood in order unlock their therapeutic potential. We aim to understand the network of proteins and signaling mechanisms, mainly regulatory phosphorylation events, which connect mechanisms of cell volume control and blood pressure homeostasis. The red blood cell holds great potential as a model system to understand the fundamental elements critical for electrolyte homeostasis. We will use a quantitative proteomic approach to study networks of signaling proteins that regulate electrolyte flux in red blood cells. We will focus our studies on the K-Cl cotransporters as a representative direct mediator of electrolyte flux and the kinases Wnk1 and Wnk4 as critical signaling components of ion flux. These studies will provide new insight into the upstream regulation of Wnk function and downstream signaling events that control electrolyte homeostasis by identifying critical regulatory phosphorylation sites. To link these observations to the in vivo setting, we will use SILAC technology in the mouse red blood cell to quantify critical regulatory phosphorylation sites that respond to specific physiologic perturbation. The purpose of this study is to provide a fundamental understanding of the mechanisms that coordinate electrolyte homeostasis. Furthermore, we are seeking mechanistic links in blood pressure control and cell volume regulation in order to find new target points to treat diseases such as hypertension and sickle cell anemia.
PUBLIC HEALTH RELEVANCE: The purpose of this study is to provide a fundamental understanding of the mechanisms that coordinate electrolyte homeostasis. Hypertension, a major health problem affecting more than 60 million Americans, is a result of a dysfunction in electrolyte homeostasis. Therefore, understanding mechanisms that control electrolyte homeostasis is important for human health.
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会议论文
Investigation of Electrolyte Homeostasis via Quantitative Proteomics
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批准号:8719979
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项目类别:
-
资助金额:$15.43万
-
财政年份:2010
-
负责人:Jesse Rinehart
-
依托单位:
Investigation of Electrolyte Homeostasis via Quantitative Proteomics
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批准号:8137167
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项目类别:
-
资助金额:$15.43万
-
财政年份:2010
-
负责人:Jesse Rinehart
-
依托单位:
Investigation of Electrolyte Homeostasis via Quantitative Proteomics
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批准号:8536271
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项目类别:
-
资助金额:$15.43万
-
财政年份:2010
-
负责人:Jesse Rinehart
-
依托单位:
Investigation of Electrolyte Homeostasis via Quantitative Proteomics
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批准号:7958967
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项目类别:
-
资助金额:$15.43万
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财政年份:2010
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负责人:Jesse Rinehart
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依托单位:
Phosphoproteomics Core
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批准号:8742440
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项目类别:
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资助金额:$16.41万
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财政年份:--
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负责人:Jesse Rinehart
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依托单位:
Phosphoproteomics Core
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批准号:9319033
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项目类别:
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资助金额:$15.63万
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财政年份:--
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负责人:Jesse Rinehart
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依托单位:
海外基金