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Development of a Collagen-based 3D Bioprinted Microfluidic Platform for Vascular Tissue Engineering and Disease Modeling

Development of a Collagen-based 3D Bioprinted Microfluidic Platform for Vascular Tissue Engineering and Disease Modeling
开发基于胶原蛋白的 3D 生物打印微流体平台,用于血管组织工程和疾病建模
批准号:
10837289
负责人:
Daniel J Shiwarski
金额:
$24.9万
依托单位国家:
美国
项目类别:
财政年份:
2023
资助国家:
美国
项目状态:
未结题
起止时间:
2023-07-01 至 2026-06-30
关键词:
3-Dimensional3D PrintAdrenergic AgentsAdultAdvisory CommitteesAffectAmericanAnisotropyArteriesBindingBiochemicalBiologyBiomechanicsBiosensorBlood VesselsCalcium SignalingCell Differentiation processCell physiologyCellsCessation of lifeCollagenCollagen Type IVComplexCuesCustomDepositionDevelopmentDevelopment PlansDiameterDiseaseDisease ProgressionDisease modelDrug ScreeningEndothelial CellsEndotheliumEngineeringExtracellular MatrixExtracellular Matrix ProteinsFibronectinsFluorescenceFluorescence MicroscopyFoundationsG-Protein-Coupled ReceptorsGeometryGoalsGrowth FactorHealthHealth Care CostsHydrogelsHypertensionImage AnalysisImpairmentInstitute of Medicine (U.S.)InvestigationKnowledgeLamininLegal patentMapsMeasuresMechanicsMediatingMentorsMicrofluidic MicrochipsMicrofluidicsModelingMolecularMolecular and Cellular BiologyMorbidity - disease rateMusOptical Coherence TomographyPathologicPatternPerfusionPersonsPharmacological TreatmentPhasePhenotypePhysiologicalPopulationPrintingProductionPropertyProteomicsPulsatile FlowQualifyingReceptor SignalingResearchResistanceResource DevelopmentRisk FactorsSignal TransductionSiliconesSmooth Muscle MyocytesStimulusStructureSystemTechnologyTestingTimeTissue EngineeringTissuesTrainingTunica AdventitiaTunica IntimaUniversitiesVascular DiseasesVascular Endothelial Growth FactorsVascular Smooth MuscleVascularizationWorkbioinkbiomechanical testbioprintingblood pressure elevationblood pressure reductioncareercareer developmentcell dedifferentiationdesignfabricationfluid flowfluorescence imaginghypertensiveimprovedin vivomechanical propertiesmetermolecular pathologymonolayermortalitynanomechanicsnew technologynovelorgan on a chippharmacologicpressurequantitative imagingreceptorresponsesensorthree dimensional structuretissue support frametooltraffickingvascular smooth muscle cell proliferationvascular tissue engineeringvasoconstriction

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Project Summary/Abstract Hypertensive vascular disease is a leading global risk factor for morbidity and mortality, affecting over 116 million people. It is characterized by alterations to extracellular matrix (ECM) composition, biomechanical properties, and aberrant molecular signaling leading to increased blood pressure and vessel stiffening. Extensive work has focused on developing improved pharmacological treatments, tissue engineered blood vessels, and vascularizing engineered volumetric tissue, but often overlook the interdependence between cellular signaling and biomechanical forces leading to disease. Understanding the relationship between ECM biomechanics and receptor signaling, and developing tools to manipulate it, are essential for creating a healthy, mature vascular tissue while avoiding pathological changes. Here I propose that incorporation of spatially defined ECM composition and cellular alignment into a vascular-inspired 3D bioprinted tissue scaffold will produce an engineered small artery that physiologically controls vascular tone and facilitates investigation into how ECM composition and altered receptor trafficking impair vascular reactivity and promote a hypertensive phenotype. I will utilize two novel platforms: FRESH 3D bioprinting to directly fabricate perfusable vasculature from ECM proteins, and a fluorescence-based nanomechanical biosensor (NMBS) for mapping in vivo tissue strain and vascular smooth muscle contractility to Aim 1: Develop a collagen-based 3D bioprinted vascular microfluidic platform integrating controlled fluid flow and endothelialization to replicate vascular ECM biomechanics and endothelial barrier function; Aim 2: Directly pattern ECM structure and cellular organization using FRESH printing in a layer-by-layer manner to recapitulate resistance artery vascular smooth muscle cell and endothelial cell function; and Aim 3:Investigate how pathologic changes in the ECM alters receptor trafficking and impairs vascular reactivity using novel bioinks to replicate a healthy and hypertensive vessel ECM composition and material properties. This proposal seeks to enhance our knowledge of the interplay between biomechanical forces biochemical signaling during vascular development and hypertensive disease progression. The microfluidics (K99) and engineered vascular tissues (R00) created will have wide utility for drug screening and disease modeling. The career development plan, under the guidance of co-mentors Drs. Feinberg and Kleyman, and my advisory committee, will provide advanced training in microfluidics, biomechanical analysis, and vascular biology/disease modeling. The mentored phase capitalizes on an inter-disciplinary mentoring team and substantial research and professional development resources at Carnegie Mellon University, the University of Pittsburgh, and the Vascular Medicine Institute. This K99/R00, combined with my prior expertise in 3D bioprinting, advanced fluorescence microscopy, quantitative image analysis, and cellular/molecular biology, will facilitate my transition to an independent career focused on how ECM composition and structure alter receptor signaling to drive tissue maturation and disease progression.
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Development of a Collagen-based 3D Bioprinted Microfluidic Platform for Vascular Tissue Engineering and Disease Modeling
  • 批准号:
    10301622
  • 项目类别:
  • 资助金额:
    $11.1万
  • 财政年份:
    2021
  • 负责人:
    Daniel J Shiwarski
  • 依托单位:
Development of a Collagen-based 3D Bioprinted Microfluidic Platform for Vascular Tissue Engineering and Disease Modeling
  • 批准号:
    10468156
  • 项目类别:
  • 资助金额:
    $11.1万
  • 财政年份:
    2021
  • 负责人:
    Daniel J Shiwarski
  • 依托单位:
海外基金