The mechanistic control of bone extracellular matrix material properties by TGFb
The mechanistic control of bone extracellular matrix material properties by TGFb
批准号:
9119517
负责人:
Tamara N Alliston
金额:
$39.57万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-03-20 至 2019-07-31
关键词:
ActomyosinAdrenal Cortex HormonesAffectAgingAnabolismBiochemicalBiologicalBiomedical EngineeringBone MatrixBone necrosisCellsCollagenCommunicationCouplesCuesDataDefectDevelopmentDiseaseEnzymesExposure toExtracellular MatrixFractureFundingGoalsHeadHealthHindlimbHistologicHomeostasisHumanIn VitroJawLeadLigandsMMP14 geneMaintenanceMandibleMechanicsMediatingMetalloproteasesMineralsMolecularMusOsteocytesOsteolysisOsteoporosisOsteoradionecrosisOutcomeParticipantPathway interactionsPeptide HydrolasesPhosphorylationProcessPropertyProstaglandinsRegulationRepressionResearchResistanceRoleSignal TransductionSkeletonSteroidsTestingTransforming Growth Factor betaWorkbonebone massbone qualitycellular targetingdiabeticexpectationfield studyimprovedin vivoinhibitor/antagonistinsightloss of functionmalignant mouth neoplasmmineralizationnovelnovel therapeuticsphysical propertypreventquantitative imagingreceptorreceptor expressionresponseskeletalskeletal disordertherapy development
中文摘要
描述(由申请人提供):保护或恢复骨质量的新疗法具有显着改善骨骼健康的巨大潜力。这些疗法的发展需要确定调节骨质量的细胞和分子机制。因此,本研究的长期目标是确定生物和物理线索控制骨细胞外基质(ECM)材料特性的机制。为此,这项更新应用建立在我们发现TGFß调节骨ECM的材料特性的基础上,并且仍然是少数几个被证明具有这种作用的因素之一。最近的研究在第一个资助周期的支持下,建立了骨细胞和MMP13在通过一个被称为acunar周围重塑(PLR)的动态过程中作为骨质量控制的关键参与者。在PLR中,骨细胞分泌蛋白酶如MMP13来重新吸收腔周围骨基质。PLR对于维持骨质量、全身矿物质平衡和促进骨细胞营养、通讯和机械感觉的小管通道至关重要。我们最近的数据表明,人类骨骼中PLR的破坏可能导致诸如股骨头骨坏死或颌骨放射性骨坏死等疾病的骨脆性。然而,对PLR在健康骨骼或骨骼疾病中的作用或调节的理解存在主要空白。初步数据提出了PLR受机械负荷和TGFß调节的可能性,该机制有可能将PLR对骨质量的维持与骨骼不断变化的物理和生物需求结合起来。本研究验证了骨细胞通过骨腔周围重构以负荷和tgf ß依赖的方式调节骨ECM材料特性以控制骨质量和细胞张力的假设。具体而言,本项目旨在:1)确定腔旁重构在多大程度上是机械敏感性和TGFß调控的;2)确定机械负荷调节TGFß对骨的作用机制;3)确定PLR对骨ECM质量和骨细胞张力的功能影响。PLR的活性和调控将结合组织学、放射学、生物工程和分子方法进行评估。这些研究将评估骨细胞特异性mmp13缺乏、施加机械负荷和TGFß I型受体的药理学抑制对PLR的影响。体内和体外功能的获得和丧失研究将用于
英文摘要
DESCRIPTION (provided by applicant): New therapies that protect or restore bone quality have great potential to significantly improve skeletal health. Development of these therapies requires the identification of the cellular and molecular mechanisms that regulate bone quality. Therefore, the long-term goal of this research is to identify mechanisms by which biological and physical cues control bone extracellular matrix (ECM) material properties. To that end, this renewal application builds on our discovery that TGFß regulates the material properties of bone ECM and remains one of just a handful of factors yet shown to do so. Recent work, supported by the first funding cycle, establishes osteocytes and MMP13 as key participants in the control of bone quality through a dynamic process called perilacunar remodeling (PLR). In PLR, osteocytes secrete proteases such as MMP13 to resorb the perilacunar bone matrix. PLR is essential for the maintenance of bone quality, systemic mineral homeostasis, and the canalicular channels that facilitate osteocyte nourishment, communication, and mechanosensation. Our recent data suggests that disruption of PLR in human bone may contribute to the bone fragility in diseases such as osteonecrosis of the femoral head or osteoradionecrosis of the jaw. However, major gaps surround the understanding of the role or regulation of PLR in healthy bone or in skeletal disease. Preliminary data raise the possibility that PLR is regulated by mechanical load and by TGFß, a mechanism that has the potential to couple the maintenance of bone quality by PLR to changing physical and biological demands on the skeleton. This proposal tests the hypothesis that osteocytes regulate bone ECM material properties through perilacunar remodeling in a load- and TGFß-dependent manner to control bone quality and cellular tension. Specifically, this project aims to: 1) determine the extent to which perilacunar remodeling is mechanosensitive and TGFß-regulated, 2) identify mechanisms by which mechanical load regulates the effects of TGFß on bone, and 3) determine the functional impact of PLR on bone ECM quality and osteocyte tension. PLR activity and regulation will be evaluated using a combination of histologic, radiologic, bioengineering, and molecular approaches. These studies will assess the effects on PLR of osteocyte-specific MMP13-deficiency, applied mechanical loads, and pharmacologic inhibition of the TGFß type I receptor. In vivo and in vitro gain and loss of function studies will be used to
determine the extent to which these factors operate in an epistatic pathway. In addition, this project examines the effect of dynamically regulated perilacunar bone ECM material properties on osteocyte cellular tension, signaling, and function. This project is significant because it will elucidate the regulation of osteocyte mediated PLR and bone quality by TGFß and physical cues, revealing new mechanisms that can be therapeutically targeted to prevent bone fragility and maintain skeletal health.
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