Trabecular Meshwork Cytoskeletal Signaling-Regulation of Aqueous Humor Outflow
Trabecular Meshwork Cytoskeletal Signaling-Regulation of Aqueous Humor Outflow
批准号:
8447298
负责人:
P VASANTHA Rao
金额:
$39.25万
依托单位:
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:
2008-01-01 至 2018-04-30
关键词:
AccelerationAccountingAdhesivesAgeAgreementAnimal ModelAnimalsAqueous HumorArchitectureAutomobile DrivingBasement membraneBiological ModelsBlindnessCellsCicatrixClinical TrialsCollagenCommunitiesConnective TissueDepositionDevelopmentDrainage procedureEndothelin-1ExhibitsExposure toExtracellular MatrixExtracellular Matrix ProteinsEyeFibroblastsGTP Phosphohydrolase ActivatorsGenerationsGlaucomaGoalsHumanIntercellular JunctionsKnowledgeLifeLinkLipidsLysophospholipidsMechanicsMediatingMesenchymalModelingMolecularMolecular ProfilingMyofibroblastOcular HypertensionOpen-Angle GlaucomaOpticsPathway interactionsPatientsPhysiologic Intraocular PressurePhysiologicalPirfenidonePlayPrimary Open Angle GlaucomaProcessProductionPropertyProteinsRattusRegulationResearchResistanceRho-associated kinaseRisk FactorsRoleSignal PathwaySignal TransductionSmooth Muscle Actin Staining MethodSpecimenStagingStructure of sinus venosus of scleraTestingTissuesTrabecular meshwork structureTransforming Growth Factor Beta 2United StatesWorkbasecell typeconnective tissue growth factoreffective therapyhuman tissueinsightkinase inhibitorlysophosphatidic acidmyocardinnovelnovel strategiesnovel therapeuticspublic health relevanceresponserhorho GTP-Binding Proteinsslugtranscription factor
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Primary open-angle glaucoma (POAG) is the second leading cause of blindness in the United States and is commonly associated with elevation of intraocular pressure (IOP) resulting from increased resistance to aqueous humor (AH) outflow through the trabecular meshwork (TM) and Schlemm's canal (SC). Although IOP is considered to be a primary risk factor for open angle glaucoma, the etiological mechanisms responsible for increased resistance to AH outflow are largely unknown. The long-range goal of this application is to identify specific etiological mechanisms underlying increased resistance to AH outflow through the TM and SC, and leverage this knowledge to develop novel and targeted therapies for lowering IOP in glaucoma patients. We recently developed an animal model that exhibits a sustained increase in IOP in response to expression of a constitutively active Rho GTPase (RhoAV14) in the AH outflow pathway. Based on the highly significant and promising preliminary observations derived from this model, we propose a novel hypothesis that ocular hypertension induced by aberrant Rho/Rho kinase signaling activity in the trabecular outflow pathway is mechanistically linked to an enhanced endothelial to mesenchymal transition of TM and SC cells into matrix producing myofibroblast-like cells, the activation of which results in extracellular matrix (ECM) deposition and changes in juxtacanalicular connective tissue (JCT) architecture, leading to increased resistance to AH outflow. This central hypothesis is supported by our findings of scarring of the JCT, ECM accumulation and expression of myofibroblast-specific markers in the trabecular pathway of RhoAV14-induced ocular hypertensive rat eyes and in human POAG donor eyes. We propose to investigate this novel hypothesis under three specific aims: 1. Establish the role of Rho/Rho kinase signaling in driving the endothelial to mesenchymal transition (EndMT) of TM and SC cells into matrix-producing myofibroblast-like cells, upon exposure to mechanical strain and physiologically relevant factors (TGF-¿, autotaxin/LPA axis, connective tissue growth factor) associated with glaucoma; 2. Verify the mechanistic link between ocular hypertension in the RhoAV14 rat model, increased EndMT of TM and SC cells into myofibroblast-like cells, structural alterations within AH outflow pathway tissues, and increased resistance to AH outflow, and 3. Evaluate the validity of the prediction that the efficacy of Rho kinase inhibitors to increase AH outflow in ocular hypertensive glaucomatous eyes is linked partly to suppression of ECM deposition and fibrogenic effects of activated myofibroblasts in AH outflow pathway, using the RhoAV14 ocular hypertensive rat as a model system. Exploration of these studies is expected to identify the specific etiological mechanisms involved in increased resistance to AH outflow in glaucoma subjects and enhance our mechanistic understanding of how certain physiological factors and Rho kinase inhibitors influence AH outflow and IOP in glaucoma patients.
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