Targeted fluorescent indicators for endothelial physiology: Ca(II), ROS, NO
Targeted fluorescent indicators for endothelial physiology: Ca(II), ROS, NO
批准号:
8698418
负责人:
Marcel P Bruchez
金额:
$63.04万
依托单位国家:
美国
项目类别:
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-07-15 至 2017-06-30
关键词:
ActinsAffectAnimalsAtherosclerosisBindingBiochemicalBiologicalBiological AssayBiological ModelsBiosensing TechniquesBiosensorBlood VesselsBlood flowCalciumCardiovascular DiseasesCardiovascular systemCellsCellular biologyChemicalsCollaborationsComplexCoronary heart diseaseCytoskeletonData AnalysesDefectDetectionDevelopmentDiabetes MellitusDiseaseDrug TargetingDyesEmbryoEndothelial CellsEndotheliumEnergy TransferEventFishesFluorescenceFluorescence Resonance Energy TransferFluorescent ProbesFocal AdhesionsGeneticGoalsHeart failureHumanHybridsHypertensionImageIn VitroKidney FailureLabelLifeLinkLocationLungMeasurementMetabolic DiseasesModelingMolecularMorphologyNitric OxideNutrientOrganismOxygenPathogenesisPathologyPerformancePhysiologicalPhysiologyPopulationPrincipal InvestigatorProductionPropertyProtein BindingProteinsPublishingReactive Nitrogen SpeciesReactive Oxygen SpeciesRegulationReportingRoleSepsisSignal PathwaySignal TransductionSignaling MoleculeSiteSpecificitySpecimenSpectrum AnalysisStructureSuperoxidesTechnologyTestingTherapeuticThickTissuesTransgenic AnimalsTransgenic OrganismsUniversitiesValidationVascular Endothelial CellWorkZebrafishbasecell typechemical synthesisdesignendothelial dysfunctionexperiencehypercholesterolemiaimprovedin vivoinsightinterestmeetingsnoveloptical sensorphysical processpreventpromoterprotein expressionpublic health relevanceratiometricreceptorrecombinaseresponsesensorsignal processingtool
中文摘要
描述(由申请人提供):血管内皮屏障的调节是一个协调的信号过程,控制与周围组织的氧气和营养物质的交换。屏障完整性或功能失调与一系列病理有关,包括代谢紊乱,如糖尿病(影响8.3%的美国人口)和心血管疾病,如动脉粥样硬化(影响25%的美国人口)。屏障的调节是由小的气体反应性信号分子(如一氧化氮和超氧化物)控制的,事实证明,在细胞中,更重要的是在复杂组织和活体动物中,以足够的选择性和灵敏度检测和定量具有挑战性。影像学对脑屏障及其相关的调节提供了重要的见解
英文摘要
DESCRIPTION (provided by applicant): The regulation of the endothelial barrier in blood vessels is a coordinated signaling process that controls the exchange of oxygen and nutrients with the surrounding tissues. Dysregulation of barrier integrity or function is implicated in a range of pathologies, including metabolic disorders such as diabetes (affecting 8.3% of the US population) and cardiovascular disorders such as atherosclerosis (affecting 25% of the US population). Regulation of the barrier is controlled by small gaseous reactive signaling molecules (e.g. nitric oxide and superoxide) that have proven challenging to detect and quantify with adequate selectivity and sensitivity in cells and more importantly in complex tissues and living animals. Imaging has provided significant insight into regulation of the barrier and related
physiologic changes that correlate with disease and disease treatment. Yet imaging of signaling molecules associated with the barrier continues to pose significant challenges because the currently available fluorescent biosensors are not sufficiently specific or sensitive to directly report the concentrations and locations of the analytes. Both dye based fluorescent probes and fluorescent protein sensors suffer from limitations that prevent simultaneous correlative measurements of molecular signaling and vascular physiology. In this proposal, we develop a new class of fluorescent molecular biosensor dyes that combine the advantages of indicator dyes with the specificity of genetic encoding. By using tissue specific expression and genetically encoded subcellular targeting, these new biosensors will allow detection of Ca(II), reactive oxygen species (ROS), and reactive nitrogen species (RNS) in specific cells, at specific subcellular locations. These novel targeted fluorescent biosensors are constructed by linking together a sensitive optical sensor of Ca, ROS, or RNS with a fluorescent signaling moiety (FRET acceptor) that is activated upon binding to a genetically encoded receptor, called a fluorogen activating protein (FAP). FAP-bound sensor is able to report (fluorescence signal) the physiology of the sensing at the site of interest. Any biosensors that are not bound to the FAP target are incapable of producing a fluorescence signal and there is no background or non-specific fluorescence to complicate images or analysis of the data. The targeted biosensor dyes will be optimized to work in both cultured endothelial cells and living zebrafish. Transgenic zebrafish will be generated that express the FAP at subcellular locations in specific cells using tissue specific Cre-recombinase expression. We will use these sensors in zebrafish to assess the correlation between Ca(II), ROS and NO signaling, blood flow and barrier function. This project is a close collaboration of three Principal Investigators with distinct expertise at Carnege Mellon University and University of Pittsburgh. Dr. Bruchez is an expert on the development of multichromophore structures for biological detection, and designed the hybrid indicators for biosensing using the fluorogen activating proteins; Dr. St. Croix is an expert on endothelial cell biology RNS/ROS signaling and regulation of endothelial function and more specifically the imaging of endothelium in vitro and in vivo. Dr. Waggoner is an expert in the design of environmentally sensitive dyes, and original developer of the fluorogen activating protein technology.
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海外基金