Angiogenic hydrogel composites for microvascular integration of organoid grafts
Angiogenic hydrogel composites for microvascular integration of organoid grafts
批准号:
10094422
负责人:
Brendon M Baker
金额:
$33.69万
依托单位国家:
美国
项目类别:
财政年份:
2021
资助国家:
美国
项目状态:
未结题
起止时间:
2021-05-01 至 2025-01-31
关键词:
AddressAdhesivesAdoptedArtificial Endocrine PancreasAutomobile DrivingBedsBehaviorBiocompatible MaterialsBlood VesselsCell ProliferationCell physiologyCellsConfocal MicroscopyCuesDecision MakingDiabetic mouseEmerging TechnologiesEndothelial CellsEndotheliumEngineeringEngraftmentEquilibriumEventFatty acid glycerol estersFiberGeometryGlucoseGoalsGraft SurvivalHydrogelsImplantIn VitroInsulinInsulin-Dependent Diabetes MellitusInvestigationIslet CellIslets of LangerhansKineticsLeadLightMechanicsMediatingMesenchymalMetabolicMethodsModelingModulusMusNutrientOrganoidsOxygenPhenotypePorosityPostoperative PeriodProliferatingPropertyRegulationReplacement TherapyRoleSeriesSiteStreptozocinStructureSuggestionTechniquesTechnologyTestingTissue ModelTissuesTo specifyTransplantationWorkangiogenesisbasecell motilitycell replacement therapyclinically translatablecrosslinkdensitydesigngraft functionimplantationimprovedin vitro Modelin vivoin vivo Modelisletmigrationmouse modelnanoscalenovelprogramspublic health relevanceresponsescaffoldspatiotemporalstem cellssuccesstime usetissue repairtraittype I diabetic
中文摘要
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英文摘要
PROJECT SUMMARY/ABSTRACT
Graft integration of microvasculature is a critical next step for cell replacement strategies for type I
diabetics. The incorporation of host-connected microvasculature is essential for post-implantation graft survival
and over the longer-term impacts the kinetics of glucose response and systemic insulin delivery. Directing
angiogenesis into islet-containing synthetic hydrogels would guarantee host-connected microvasculature in the
graft, but control over angiogenesis remains limited. Our long-term goal is to understand how physical cues from
the cellular microenvironment impinge upon critical steps of angiogenesis and devise engineering methods to
incorporate these cues into translatable biomaterials. Angiogenesis involves a series of spatiotemporally
controlled cellular programs including endothelial tip cell activation and directed invasion, collective migration of
leading tip cells and ensuing stalk cells, and proliferation and lumenization of the multicellular strand. Our prior
work demonstrates a critical balance between tip cell migration and stalk cell proliferation during collective
migration required for forming functional microvessels, and that hydrogel degradability modulates the collectivity
of endothelial cell migration. Further, we have pioneered hydrogel composites containing physical cues in the
form of synthetic fibers that promote endothelial-to-mesenchymal transition and cause quiescent endothelial
cells to adopt invasive behavior suggestive of tip cells that lead angiogenic sprouts. Together, these observations
motivate our central hypothesis: modular control of hydrogel structure can drive the angiogenic formation of
microvasculature that supports the function of hPSC-derived pancreatic islet organoids. Using novel composite
hydrogels, organotypic tissue models, and assessments of vascular and islet function in vivo, we aim to
understand the microenvironmental regulation of endothelial cell decision-making during angiogenesis. In Aim
1, we will utilize hydrogel composites containing cell-adhesive guidance fibers to phenotypically transition
quiescent endothelial cells into invasive tip cells. In Aim 2, we will engineer hydrogel crosslinking and microscale
porosity to drive endothelial stalk cells proliferation and establish quantitative relationships between collective
migration of stalk cells, proliferative events, and microvessel lumenization. In Aim 3, we will use in vitro and in
vivo models to examine the impact of material-guided angiogenesis and resulting microvasculature on the
function of hydrogel grafts containing hPSC-derived islets. The proposed studies will 1) shed light on the
microenvironmental regulation of phenotypic transitions during angiogenesis and 2) identify biomaterial design
parameters that support functional angiogenesis. We anticipate the developed strategies to provide
microvascular support to engineered pancreatic islet grafts will have bearing on grafts containing other
metabolically demanding parenchymal tissues.
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Angiogenic hydrogel composites for microvascular integration of organoid grafts
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批准号:10395412
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项目类别:
-
资助金额:$32.63万
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财政年份:2021
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负责人:Brendon M Baker
-
依托单位:
Angiogenic hydrogel composites for microvascular integration of organoid grafts
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批准号:10570239
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项目类别:
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资助金额:$35.69万
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财政年份:2021
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负责人:Brendon M Baker
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依托单位:
Mechanics of fibrosis in 3D biomimetic extracellular matrices
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批准号:8891850
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项目类别:
-
资助金额:$13.04万
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财政年份:2015
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负责人:Brendon M Baker
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依托单位:
Engineered fibrillar matrices to study directed cell migration
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批准号:8840352
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项目类别:
-
资助金额:$3.72万
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财政年份:2012
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负责人:Brendon M Baker
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依托单位:
Engineered fibrillar matrices to study directed cell migration
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批准号:8469297
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项目类别:
-
资助金额:$1.5万
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财政年份:2012
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负责人:Brendon M Baker
-
依托单位:
Engineered fibrillar matrices to study directed cell migration
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批准号:8256033
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项目类别:
-
资助金额:$4.92万
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财政年份:2012
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负责人:Brendon M Baker
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依托单位:
海外基金