Orchestration of breast cancer osteolytic bone metastasis by MIF
Orchestration of breast cancer osteolytic bone metastasis by MIF
批准号:
8456837
负责人:
Jessica M Grunda
金额:
$5.84万
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:
2013-06-17 至 2014-06-16
关键词:
AffectAnimal ModelAnimalsAutomobile DrivingBone DiseasesBone MatrixBone PainBone ResorptionBone remodelingBreast Cancer CellBreast CarcinomaCancer Cell GrowthCell ProliferationCell SurvivalCentral Nervous System NeoplasmsClinicalCommunicationDevelopmentDiabetes MellitusDiagnosisDiseaseEngineeringFractureFutureGenerationsGenetic TranscriptionGleanHealthHomeostasisHypoxiaInflammatoryLaboratoriesLeadLesionLiverLungMalignant Bone NeoplasmMalignant NeoplasmsMediatingMetabolicMetastatic Neoplasm to the BoneMetastatic Neoplasm to the Central Nervous SystemMigration Inhibitory FactorModalityModelingNatureNeoplasm MetastasisNerveNerve compression syndromeOsteoblastsOsteoclastsOsteolyticOsteoporosisOutcomePainParalysedPathologicPathological fracturePatientsPhenotypeProcessQuality of lifeResearchResistanceRoleSignal TransductionSiteSpinal CordSpinal nerve structureTherapeuticTherapeutic AgentsTherapeutic InterventionTransforming Growth Factor betaWomanWorkautocrinebasebonebone cellbone lossbone turnovercancer cellchemokinecytokinedesigneffective therapyfeedingin vivoinnovationinsightmalignant breast neoplasmmedulloblastomanoveloverexpressionpalliativephenylpyruvate tautomerasepublic health relevanceskeletalspinal cord compressionsuccesstooltumor microenvironment
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英文摘要
DESCRIPTION (provided by applicant): The development of bone metastases is a common feature of advanced breast cancer cases. Skeletal metastases often result in pathologic bone destruction and formation, seriously weakening overall bone integrity leading to debilitating bone pain, pathological fractures, paralyzing nerve and spinal cord compressions, and metabolic imbalances that significantly diminish the quality of life of these patients. Importantly, bone metastases are incurable and treatment remains palliative. Multiple causative factors have been identified as contributors to the development of breast cancer bone metastases. Therapeutic agents targeting any single causative factor reduce bone metastasis progression but do not lead to cure. The limited success of such single targeted therapies indicates a deeper understanding of mechanisms driving the spread of breast cancer to bone is required for the future development of highly targeted and efficacious treatment modalities. Utilizing an animal model of medulloblastoma bone metastasis generated by our laboratory as a 'discovery tool', macrophage migration inhibitory factor (MIF) was identified as a factor potentially orchestrating the development of breast cancer osteolytic bone metastasis through propagation of a self-promoting feed- forward signaling loop between breast cancer and bone cells. This signaling loop is hypothesized to result in enhanced breast cancer survival and proliferation, while instigating pathological bone destruction. The current proposal aims to (1) examine if MIF modulates osteoblast and osteoclast cell survival, proliferation, and activity, and (2) determine i MIF promotes the formation of osteolytic bone lesions using an animal model of breast cancer osteolytic bone metastasis, in which MIF expression has been suppressed in cancer cells. Information obtained through completion of this proposal will provide invaluable insight into MIF-specific mechanisms of breast cancer bone metastasis that may be used in the development of targeted bone metastasis treatment modalities. Additionally, information gleaned from this work may be used in the generation of therapeutic interventions for other diseases associated with osteoclast-mediated bone loss, such as osteoporosis and diabetes-associated bone disease.
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