Mechanisms of FGFR2 Signaling in Craniofacial Development
Mechanisms of FGFR2 Signaling in Craniofacial Development
批准号:
8037659
负责人:
JACOB V.P. ESWARAKUMAR
金额:
$40.78万
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:
2010-03-03 至 2015-02-28
关键词:
AccountingAffectAlanineAnimal ModelAnimalsApert syndromeApert-Crouzon syndromeBinding SitesBiochemicalBiological ModelsBirthBrainBreedingCellsCephalicChotzen SyndromeCleft PalateCoculture TechniquesColorCongenital AbnormalityCraniofacial AbnormalitiesCraniosynostosisDataDefectDevelopmentDiseaseDockingDysplasiaEngineeringEphA4 ReceptorEphrin-A2EquilibriumFGFR2 geneFibroblast Growth FactorFibroblast Growth Factor Receptor 2Fibroblast Growth Factor ReceptorsFluorescence-Activated Cell SortingFunctional disorderGene ExpressionGene TargetingGeneticGenetically Engineered MouseGerm LinesGoalsGrowthGrowth Factor ReceptorsHistologyHumanIn Situ HybridizationIn VitroInterventionJoint structure of suture of skullJointsKnock-in MouseLifeLinkMediatingMediator of activation proteinMesenchymalMesenchymeMesoderm CellMethodsMolecularMolecular AnalysisMorphogenesisMusMutant Strains MiceMutateMutationNeural CrestNeural Crest CellOsteoblastsPathway interactionsPatternPfeiffer SyndromePhenotypePhosphorylationPhosphotransferasesPopulationPrevalenceProliferatingProtein IsoformsProtein Tyrosine PhosphataseProteinsRecombinantsRecruitment ActivityReporterRoleSignal PathwaySignal TransductionSignaling MoleculeSiteSpecificityStagingStaining methodStainsStem cellsSurgical suturesSyndromeSystemTestingTyrosineWorkbasebonecoronal suturecraniofacialcraniumdesignface bone structurefibroblast growth factor receptor 2cgain of functiongain of function mutationgenome-wideloss of functionmRNA Expressionmutantmutant mouse modelneuronal cell bodynovelosteogenicosteoprogenitor cellprematurepublic health relevancereceptorresearch studyresponsestemsuture fusion
中文摘要
描述(由申请人提供):颅面畸形是新生儿中第四大最常见的先天性缺陷。成纤维细胞生长因子受体2 (FGFR2)的显性功能获得性突变导致了大多数人类颅缝闭锁综合征,包括Crouzon、Pfeiffer、Jackson-Weiss、Seathre Chotzen和Apert综合征,这些综合征的特征是在大脑发育完成之前颅缝过早融合。颅缝是一种特殊的关节,含有快速分裂的骨祖细胞和间充质细胞。增殖和分化成骨细胞之间的平衡受到包括FGFR2在内的生长因子受体的定量信号的精细调节,FGFR2在增殖成骨细胞中表达,在分化成骨细胞中下调。我们的初步数据显示,FGFR2突变优先影响神经嵴起源的颅骨和面骨。在此,我们提出了两个特定的目的来确定FGFR2信号传导控制颅面发育和形态发生的机制。在Aim 1.1中,我们建议使用Cre/loxP系统来研究仅激活神经嵴细胞中的突变受体是否足以引起颅缝闭塞综合征,或者是否需要旁轴中胚层细胞的信号。我们将分别使用Wnt1-Cre或Mesp1-Cre小鼠有条件地激活神经嵴细胞或中胚层细胞中的Crouzon突变。通用双报告菌株将用于从非重组细胞中识别重组细胞。将通过组织学、原位杂交和显微ct检查缝合线。在Aim 1.2中,我们提出使用一种新的双色荧光系统来研究FGFR2信号传导在早期骨祖细胞和间充质细胞中的机制。基因表达研究将在基于成骨分化阶段特异性荧光标记表达的荧光激活细胞分选分离的三个确定的均匀细胞群上进行。将通过共培养实验研究FGFR2突变的细胞内在和外在效应。在Aim 2中,我们建议确定控制颅面发育的FGFR2对接蛋白frs21依赖和独立信号。我们已经证明,Frs21与突变FGFR2受体的解偶联可以挽救小鼠的颅缝闭合表型。FGFR2激活导致Frs21上的6个酪氨酸残基磷酸化,这些残基反过来作为4个Grb2和2个Shp2信号分子募集的对接位点。我们的假设是,Shp2是激活FGFR2的Frs21病理信号的关键介质。我们将通过使用两个基因工程的Frs21突变小鼠模型来验证这一假设,在Crouzon突变的背景下,Frs21突变小鼠模型不能招募Grb2或Shp2来响应FGFR激活。总的来说,这项工作将提供FGFR2和对接蛋白Frs21介导的fgf信号如何在正常和疾病条件下调节颅面模式和发育的详细分子图谱。
英文摘要
DESCRIPTION (provided by applicant): Craniofacial anomalies are the fourth most common congenital birth defects that occur in new born. Dominant gain-of-function mutations in the fibroblast growth factor receptor 2 (FGFR2) account for the majority of the human craniosynostosis syndromes including Crouzon, Pfeiffer, Jackson-Weiss, Seathre Chotzen and Apert syndrome which are characterized by the premature fusion of cranial sutures before the completion of brain growth. The cranial sutures are specialized joints which contain rapidly dividing osteoprogenitors and mesenchymal cells. The balance between proliferating and differentiating osteoprogenitors is finely regulated by quantitative signals from growth factor receptors including FGFR2, which is expressed by proliferating osteoprogenitors and down-regulated in differentiating osteoblasts. Our preliminary data show that mutations in FGFR2 preferentially affect cranial and facial bones of neural crest origin. Herein, we propose two Specific Aims to determine the mechanisms of FGFR2 signaling that govern craniofacial development and morphogenesis. In Aim 1.1, we propose to use the Cre/loxP system to investigate whether activation of a mutant receptor in neural crest cells alone is sufficient to cause craniosynostosis syndrome or whether it requires signals from paraxial mesodermal cells. We will conditionally activate the Crouzon mutation in neural crest cells or mesodermal cells using Wnt1-Cre or Mesp1-Cre mice, respectively. A universal dual reporter strain will be used to identify recombinant cells from non-recombinant cells. Sutures will be examined by histology, in situ hybridization and by microCT. In Aim 1.2, we propose to use a novel two color fluorescent system to study the mechanisms of FGFR2 signaling in early osteoprogenitors and mesenchymal cells. Gene expression studies will be performed on three defined homogeneous populations of cells isolated by Fluorescence Activated Cell Sorting based on the expression of osteogenic differentiation stage-specific fluorescent markers. Cell intrinsic versus extrinsic effects of the FGFR2 mutations will be studied by co-culture experiments. In Aim 2, we propose to determine the docking protein Frs21-dependent and independent signaling of FGFR2 that govern craniofacial development. We have shown that uncoupling of Frs21 from the mutant FGFR2 receptor rescues the craniosynostosis phenotype in mice. FGFR2 activation leads to phosphorylation of six tyrosine residues on Frs21, which in turn serve as docking sites for the recruitment of four Grb2 and two Shp2 signaling molecules. Our hypothesis is that Shp2 is the critical mediator of pathological signals of Frs21 from the activated FGFR2. We will test this hypothesis by using two genetically engineered Frs21 mutant mouse models that cannot recruit Grb2 or Shp2 in response to FGFR activation in the context of the Crouzon mutation. Collectively, this work will provide a detailed molecular picture of how FGF-signaling, mediated by the FGFR2 and the docking protein Frs21, regulates craniofacial patterning and development under normal and disease conditions.
PUBLIC HEALTH RELEVANCE: Dominant gain of function mutations in FGFR2 accounts for majority of the human craniosynostosis syndromes including Crouzon, Pfeiffer and Apert syndrome which are characterized by the premature fusion of cranial sutures before the completion of brain growth. The goal of this proposal is to obtain a comprehensive molecular picture of the signaling pathways that are activated in response to FGFR2 stimulation, which govern craniofacial development. It is anticipated that the findings will enable the design of novel pharmacological interventions for craniofacial disorders that are caused by dysfunction in FGFRs.
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会议论文
Mechanisms of FGFR2 Signaling in Salivary Gland Branching Morphogenesis
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批准号:8089478
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项目类别:
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资助金额:$38.62万
-
财政年份:2010
-
负责人:JACOB V.P. ESWARAKUMAR
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依托单位:
Mechanisms of FGFR2 Signaling in Salivary Gland Branching Morphogenesis
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批准号:8470617
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项目类别:
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资助金额:$37.22万
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财政年份:2010
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负责人:JACOB V.P. ESWARAKUMAR
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依托单位:
Mechanisms of FGFR2 Signaling in Craniofacial Development
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批准号:8415478
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项目类别:
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资助金额:$39.21万
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财政年份:2010
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负责人:JACOB V.P. ESWARAKUMAR
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依托单位:
Mechanisms of FGFR2 Signaling in Craniofacial Development
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批准号:8611909
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项目类别:
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资助金额:$40.84万
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财政年份:2010
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负责人:JACOB V.P. ESWARAKUMAR
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依托单位:
Mechanisms of FGFR2 Signaling in Salivary Gland Branching Morphogenesis
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批准号:8668764
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项目类别:
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资助金额:$38.77万
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财政年份:2010
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负责人:JACOB V.P. ESWARAKUMAR
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依托单位:
Mechanisms of FGFR2 Signaling in Craniofacial Development
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批准号:8232100
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项目类别:
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资助金额:$40.85万
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财政年份:2010
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负责人:JACOB V.P. ESWARAKUMAR
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依托单位:
Mechanisms of FGFR2 Signaling in Salivary Gland Branching Morphogenesis
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批准号:8274328
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项目类别:
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资助金额:$38.78万
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财政年份:2010
-
负责人:JACOB V.P. ESWARAKUMAR
-
依托单位:
海外基金