Role of IGF-I/integrin signaling in the periosteal response to load
Role of IGF-I/integrin signaling in the periosteal response to load
批准号:
9423436
负责人:
DANIEL David BIKLE
金额:
$9.96万
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-09-22 至 2020-01-31
关键词:
AgingAnimal ModelAttentionBindingBone ResorptionCellsComplexEmployee StrikesEnterobacteria phage P1 Cre recombinaseFailureFamily memberFocal Adhesion Kinase 1GrowthGrowth Factor ReceptorsIGF1 geneImmobilizationIn VitroInsulinInsulin-Like Growth Factor IInsulin-Like-Growth Factor I ReceptorIntegrinsInvestigationLigandsLinkMechanical StressMediatingMusMuscleOsteoblastsOsteocalcinOsteocytesOsteogenesisPathway interactionsPeriosteal CellPeriosteumPhosphorylationProductionProtein Tyrosine KinaseRegulationResistanceRoleSignal TransductionSourceTechniquesTestingbonebone lossfluid flowin vivomechanical loadnovelosteoprogenitor cellperiostinpreventpromoterpublic health relevancereceptorresponseskeletalskeletal unloadingsubstantia spongiosa
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Skeletal unloading results in a cessation in bone formation and an initial increase in bone resorption. These changes are accompanied by resistance to the anabolic actions of insulin like growth factor 1 (IGF1) on bone. On the other hand skeletal loading increases IGF1 production, and enhances IGF1 activation of IGF1R as part of the mechanism by which it increases bone formation. In seeking a mechanism for the load induced regulation of IGF1 signaling we discovered that skeletal unloading was associated with a decrease in the expression of integrins, in particular integrins with b1 (IGTB1) and b3 (ITGB3) subunits. We discovered that in osteoblasts, IGF1 increased the binding of ITGB3 to IGF1R, and that if ITGB3 were downregulated, IGF1 could no longer activate IGF1R. Focal adhesion kinase (FAK) and/or its related family member protein tyrosine kinase 2 beta (PTK2B) provide a link between the integrin and growth factor receptor pathways including between ITGB3 and IGF1R. IGF1 activation of IGF1R results in phosphorylation (presumed activation) of FAK, whereas inhibition of FAK blocks activation of IGF1R either by IGF1 or by load. To test the role of IGF1 signaling directly in vivo we developed mice in which the IGF1R was deleted in mature osteoblasts and examined whether this mouse would respond to skeletal unloading or reloading. Mice lacking IGF1R showed an equivalent decrease in bone formation during unloading to controls, but failed to increase bone formation during reloading. The striking result,
however, was that this failure to respond to reloading was found only in periosteal bone formation; endosteal and trabecular bone formation responded comparable to controls. These results focused our attention on the periosteum where the osteoprogenitors are exposed not only to load induced IGF1 emanating from both osteocytes and muscle, but to the integrin ligand periostin, a combination we hypothesize will maximize their proliferation, differentiation, and formation of new bone in response to mechanical load. In this project we will test the hypothesis that skeletal loading stimulates IGF1 production in osteocytes and muscle and formation of the IGF1R/integrin complex in periosteal osteoprogenitors (pOP) required for the IGF1 mediated anabolic response of these cells to load. This will be achieved in the following three aims: Aim1--Determine the components of the IGF1R complex that forms in response to load and/or IGF1 in periosteal cells in vitro, and assess their role in contributing to that response; Aim 2-- Determin the impact of deleting Igf1r and Itgb3 from pOP in vivo with respect to their ability to mediate th skeletal response to load; Aim 3--Determine the source(s) of IGF1 facilitating load induced periosteal bone formation with particular attention to osteocytes and muscle. We will be utilizing novel animal models and state of the art techniques to fulfill these aims. The results will provide
new understanding of how IGF1/integrin signaling interactions regulate the skeletal response to mechanical load, open up new avenues for further investigation, and provide potential targets for preventing the bone loss of immobilization and aging.
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依托单位:
Role of IGF-I/integrin signaling in the periosteal response to load
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依托单位:
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资助金额:$32.41万
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依托单位:
海外基金