Biomechanical Signaling in Vascular Smooth Muscle Cell Proliferative Disease Following Functional Loss of Elastin
Biomechanical Signaling in Vascular Smooth Muscle Cell Proliferative Disease Following Functional Loss of Elastin
批准号:
9760317
负责人:
Matthew W Ellis
金额:
$4.5万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-09-01 至 2021-08-31
关键词:
3-DimensionalADAMTS1 geneAddressAffectAgingArterial MediasBiomechanicsBlood VesselsCRISPR/Cas technologyCardiovascular DiseasesCause of DeathCell Culture TechniquesCell modelCellsChondroitin SulfatesCollaborationsComplementComplementary DNADataDefectDepositionDevelopmentDiseaseDisease ProgressionDissectionDown-RegulationDoxycyclineElastinElastin FiberEnvironmentExhibitsExtracellular MatrixExtracellular Matrix ProteinsFocal Adhesion Kinase 1Focal AdhesionsFoundationsGenesGeneticGlucoseGlycosaminoglycansHeart failureHumanImmunofluorescence ImmunologicImpairmentIn VitroIntegrin beta3InvestigationLettersLinkMechanicsMessenger RNAMetalloproteasesMethodsModelingMusMutationNeural CrestPathogenesisPatientsPhenocopyPhenotypePhosphorylationPlasmidsPlayPopulationProductionProteinsProteoglycanRoleSignal TransductionSiteSmall Interfering RNASmooth MuscleSmooth Muscle MyocytesSomatic CellStem Cell FactorStretchingSupravalvular aortic stenosisTalinTestingTissuesUnited StatesUp-RegulationVascular ProliferationVascular Smooth MuscleWestern Blottingascending aortachondroitin sulfate glycosaminoglycaneffective therapyexperienceexperimental studyfunctional lossgrowth factor receptor-bound protein 2in uteroin vivoinduced pluripotent stem cellinhibitor/antagonistloss of functionmechanotransductionmembermouse modelneonatal periodnoveloverexpressionrestenosissmall hairpin RNAsmall moleculetherapeutic developmentthree-dimensional modelingvascular smooth muscle cell proliferationversican
中文摘要
项目总结
英文摘要
PROJECT SUMMARY
Loss of the extracellular matrix (ECM) protein elastin leads to the uncontrolled proliferation of vascular smooth
muscle cells (VSMCs). This proliferation is accompanied by a loss in contractility of VSMCs and in humans
manifests as the condition supravalvular aortic stenosis (SVAS). SVAS patients experience progressive
occlusion of their arterial lumen, ultimately leading to vessel stiffening and heart failure, for which the
mechanisms remain largely unknown. Preliminary data has shown an upregulation of both chondroitin sulfate
and the associated proteoglycan versican in the ascending aortas of elastin haploinsufficient mouse models, and
both have been linked to impaired elastogenesis and hyperproliferation. Further, as signaling by integrin β3 and
FAK is upregulated in SVAS, while expression of smooth muscle contractile markers is reduced, I hypothesize
that abnormal ECM composition under elastin haploinsufficiency is recognized and transduced by the internal
VSMC environment, leading to a shift from a differentiated to a proliferative phenotype. I will assess this
hypothesis using induced pluripotent stem cells (iPSCs) as a model platform, as iPSCs present a limitless supply
of patient-specific cells unattainable through other conventional methods and complement my findings with an
in vivo mouse model of SVAS. In Aim 1, I will phenotypically validate elastin haploinsufficient iPSC-derived
VSMCs specific to the neural crest lineage to phenocopy SVAS and try to rescue the phenotype through
interfering with versican assembly in vivo and in vitro. In Aim 2, I will study the biomechanical signal transduction
involved in the phenotypic switching of elastin haploinsufficient VSMCs from a differentiated, contractile state to
a dedifferentiated, proliferative state in both iPSC and mouse models of SVAS. These aims involve in vivo studies
of murine models, immunofluorescence, western blotting, qPCR, 2D- and 3D-modeling using iPSCs. The
objectives of these aims are to identify key factors in the uncontrolled proliferation observed by VSMCs under
elastin haploinsufficiency, and methods of rescuing this defect. This proposal addresses important, understudied
mechanisms of vascular proliferation, and has the potential to facilitate the development of therapeutics for these
currently incurable diseases.
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Biomechanical Signaling in Vascular Smooth Muscle Cell Proliferative Disease Following Functional Loss of Elastin
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批准号:10058762
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项目类别:
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资助金额:$4.55万
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财政年份:2019
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负责人:Matthew W Ellis
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依托单位: