Therapeutic Strategies for Environmental Lung Diseases
Therapeutic Strategies for Environmental Lung Diseases
批准号:
7295871
负责人:
James Christopher Bonner
金额:
$22.28万
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-09-01 至 2009-08-31
关键词:
AddressAffectAllergensAnti-Inflammatory AgentsAnti-inflammatoryAsthmaBindingBioavailableBleomycinBlood CirculationBreathingCell Surface ReceptorsCell surfaceCellsChemotaxisChildChronicChronic lung diseaseCicatrixClinical TreatmentClinical TrialsCollagenComplicationConnective Tissue CellsDataDepositionDevelopmentDiabetes MellitusDiagnosisDiseaseDoseEnvironmental ExposureExposure toFibroblastsFibrosisFigs - dietaryFutureGenetic Predisposition to DiseaseGleevecGlucocorticoidsGrowthGrowth FactorHealthHumanImatinibImatinib mesylateIn VitroInflammatoryInterleukin-13LigandsLungLung diseasesMediatingMediator of activation proteinMembraneModelingMolecularMusMyofibroblastNatureOral AdministrationOutcomeOvalbuminPDGF receptor tyrosine kinasePDGFRB genePathogenesisPatientsPharmaceutical PreparationsPharmacologic SubstancePhenotypePhosphorylationPlatelet InhibitorsPlatelet-Derived Growth FactorPlatelet-Derived Growth Factor ReceptorPlayPreventionProcessProductionProtein IsoformsProtein Tyrosine KinasePulmonary FibrosisReceptor Protein-Tyrosine KinasesResearchRespiratory physiologyRiskRoleSTAT6 Transcription FactorSignal TransductionSourceSystemTestingTherapeuticTissuesTransition ElementsTreatment ProtocolsTyrosine Kinase InhibitorUnited StatesVanadiumWorkautocrinebis(maltolato)oxovanadium(IV)cell typeconceptcytokinedesigndiabetes mellitus therapyfibrogenesisimprovedin vivoindium-bleomycininhibitor/antagonistinnovationinterstitialintraperitoneallung injurymigrationmouse modelneutralizing antibodyneutralizing monoclonal antibodiesoxovanadium IVpre-clinicalreceptorreceptor bindingresearch studyresponseresponse to injurysmall moleculetoxicanttranscription factortranslational approach
中文摘要
描述(由申请人提供):目前还没有有效的策略来治疗由环境暴露于各种吸入过敏原和毒物引起的哮喘或间质性肺纤维化的慢性气道纤维化。人们普遍认为,目前的抗炎治疗不能改善肺纤维化的结果。因此,迫切需要开发针对纤维化的转化方法。我们的研究表明,作为哮喘和纤维化的关键媒介,白细胞介素(IL)-13可以刺激血小板衍生生长因子(PDGF)的产生。PDGF与细胞表面PDGF受体结合导致成纤维细胞增殖,成纤维细胞是分泌胶原形成纤维化疤痕组织的主要细胞类型。il -13诱导肺细胞产生PDGF受STAT转录因子的严格调控;STAT-6促进il -13诱导的PDGF的产生,而STAT-1抑制PDGF的产生。该项目的主要目的是探索旨在减少il -13诱导的PDGF信号传导和纤维化的创新策略。我们的假设是,抑制PDGF产生、PDGF受体结合或PDGF受体磷酸化将减少慢性肺病小鼠模型的气道或间质纤维化。在第一个目标中,我们将确定口服双氧钒(BMOV)(一种生物可利用形式的钒,用于糖尿病治疗)是否能降低哮喘和间质性肺纤维化小鼠模型体内PDGF水平和气道纤维化。由于钒在体外激活STAT-1以减少il -13诱导的肺细胞PDGF的产生,我们将通过卵清蛋白小鼠哮喘模型和博来霉素小鼠间质纤维化模型来确定BMOV是否能在体内减少气道纤维化。在第二个目标中,我们将确定单克隆中和抗体是否选择性阻断PDGF与PDGF受体的结合,从而减少哮喘和肺纤维化小鼠模型中的纤维化。在最终目的中,我们将确定阻断PDGF受体酪氨酸激酶活性是否会减少哮喘小鼠模型中的纤维化。这个目标将利用受体酪氨酸激酶抑制剂甲磺酸伊马替尼来阻断PDGFR的磷酸化。如果这三种阻断PDGF信号传导的策略中的任何一种能够改善纤维化,那么这将为未来用于治疗哮喘或间质性肺纤维化气道纤维化的临床试验提供突破。哮喘和肺纤维化是由于环境暴露和对各种吸入过敏原和毒物的遗传易感性而引起的慢性肺部疾病。在美国有超过20万的肺纤维化患者,其中每年有超过4万人死亡。美国有2000万人被诊断患有哮喘,其中近900万人是儿童。因此,这些慢性肺部疾病显然构成了重大的健康问题。哮喘的气道纤维化是慢性重塑过程的一部分,该过程有助于这种疾病的阻塞性并降低肺功能。此外,目前还没有减少慢性哮喘气道纤维化的有效治疗策略,也没有明显减少间质性肺纤维化的药物。我们将尝试开发临床前策略,旨在减少慢性哮喘和间质性肺纤维化小鼠模型中的生长因子信号、成纤维细胞增殖和胶原沉积。
英文摘要
DESCRIPTION (provided by applicant): There are currently no effective strategies for the treatment of chronic airway fibrosis in asthma or interstitial pulmonary fibrosis that result from environmental exposures to a wide variety of inhaled allergens and toxicants. It is generally accepted that current anti-inflammatory therapies fail to improve fibrotic outcomes in the lung. Therefore, the development of translational approaches that target fibrosis are urgently needed. Our work has shown that interleukin (IL)-13, a key mediator of asthma and fibrosis, stimulates the production of platelet-derived growth factor (PDGF). The binding of PDGF to cell-surface PDGF receptors results in the proliferation of fibroblasts, the principal cell type that secretes collagen to form fibrotic scar tissue. IL-13-induced PDGF production by lung cells is tightly regulated by STAT transcription factors; STAT-6 promotes IL-13-induced PDGF production while STAT-1 suppresses PDGF production. The primary objective of this project is to explore innovative strategies aimed at reducing IL-13-induced PDGF signaling and fibrosis. Our hypothesis is that inhibition of PDGF production, PDGF receptor binding, or PDGF receptor phosphorylation will reduce airway or interstitial fibrosis in established mouse models of chronic lung disease. In the first aim we will determine whether the oral administration of bis(maltolato)oxovanadium(IV) (BMOV), a bioavailable form of vanadium that is used for diabetes therapy, decreases PDGF levels and airway fibrosis in vivo in mouse models of asthma and interstitial pulmonary fibrosis. Because vanadium activates STAT-1 to reduce IL-13-induced PDGF production in lung cells in vitro, we will determine if BMOV reduces airway fibrosis in vivo using the ovalbumin mouse model of asthma and in a bleomycin mouse model of interstitial fibrosis. In the second aim we will determine whether administration of a monoclonal neutralizing antibody to selectively block PDGF binding to the PDGF receptor reduces fibrosis in mouse models of asthma and pulmonary fibrosis. In the final aim, we will determine whether blocking PDGF receptor tyrosine kinase activity reduces fibrosis in a mouse model of asthma. This aim will utilize the receptor tyrosine kinase inhibitor, imatinib mesylate, to block PDGFR phosphorylation. If any one of the three proposed strategies for blocking PDGF signaling result in amelioration of fibrosis, then this would provide a breakthrough for future application to clinical trials aimed at the treatment of airway fibrosis in asthma or interstitial pulmonary fibrosis. Asthma and pulmonary fibrosis are chronic lung diseases that result from environmental exposure and genetic susceptibility to a wide variety of inhaled allergens and toxicants. In the United States there are over 200,000 patients with pulmonary fibrosis, and of these over 40,000 expire annually. 20 million people in the United States have been diagnosed with asthma and nearly 9 million of them are children. Therefore, these chronic lung diseases clearly pose a major health problem. Airway fibrosis in asthma is part of a chronic remodeling process that contributes to the obstructive nature of this disease and reduces lung function. Moreover, there are currently no effective treatment strategies to reduce airway fibrosis in chronic asthma, nor are drugs available that significantly reduce interstitial pulmonary fibrosis. We will attempt to develop preclinical strategies aimed at reducing growth factor signaling, fibroblast proliferation, and collagen deposition in mouse models of chronic asthma and interstitial pulmonary fibrosis.
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