Tunable Mechano-Activated Microcapsules for Therapeutic Delivery
Tunable Mechano-Activated Microcapsules for Therapeutic Delivery
批准号:
10017663
负责人:
George R. Dodge
金额:
$34.28万
依托单位国家:
美国
项目类别:
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-09-21 至 2023-07-31
关键词:
3-DimensionalAddressAdhesionsAnabolic AgentsAnabolismAnimal ModelAutologousBehaviorBiocompatible MaterialsBiologicalBiological AssayBiological FactorsBiologyCartilageCell ProliferationCellsCharacteristicsChondrocytesClinicalConfocal MicroscopyCuesDefectDegenerative polyarthritisDevelopmentDrug Delivery SystemsElasticityEncapsulatedEngineeringEnvironmentExerciseExposure toFailureFeedbackFosteringFunctional disorderGoalsGrowthHydrogelsImplantIn SituIn VitroIndividualInflammationJointsLesionLightMechanical StimulationMechanicsMesenchymal DifferentiationMesenchymal Stem CellsMethodsMicrocapsules drug delivery systemMiniature SwineModalityModelingModificationMotionMusculoskeletal SystemNatural regenerationPathologyPhysiologicalPlayPolymersProcessPropertyRadialRattusRehabilitation therapyResearch PersonnelRoleRunningRuptureStructureSwellingSystemTechnologyTestingTherapeuticTherapeutic EffectThickTissue EngineeringTissuesTransforming Growth Factor betaTransforming Growth FactorsTranslatingValidationVariantWalkingWeight-Bearing stateattenuationbasecapsulecartilage repairclinically relevantcrosslinkdesignimplantationin vivoinnovationjoint loadingmechanical forcemechanical loadmechanical propertiesnew technologynovelnovel therapeuticspreventrelease factorrepairedresponserestorationstatisticssubcutaneousthree dimensional cell culturetissue regenerationtissue repairtooltransforming growth factor beta3
中文摘要
摘要
英文摘要
Abstract
This project seeks to advance controlled drug delivery systems via the development of novel mechanically
activated microcapsules (MAMCs) for therapeutic delivery in response to mechanical load. While previous
strategies have established microcapsules with various triggered release mechanisms (e.g., pH, heat, osmotic
swelling) for drug delivery, most require external actuation, and physiological feedback plays little role in
release. This proposal takes the unique approach of using mechanically loaded environments (e.g., articulating
joints) to trigger and control release of therapeutics. Upon rupture, bioactive molecules released from
microcapsules (embedded within matrices), can stimulate anabolic processes leading to cell proliferation,
differentiation, matrix biosynthesis, or a host of other responses including control of inflammation. Given that
the timing of release is controlled by mechanical load, it is possible to tune the release of factors based on the
mechano-sensitivity of the microcapsules. For example, these MAMCs may be used in conjunction with
engineered tissues to foster regeneration under controlled loading during rehabilitation, or designed to actuate
in response to normal walking and exercise, so as to promote rapid local repair. In Aim 1 we will investigate
the structure-release properties of the MAMCs under physiologic loading scenarios by modifying key
fabrication parameters, including polymer composition, shell thickness-to-radius ratio, and shell
elasticity/plasticity. In Aim 2 we will characterize failure properties of MAMCs embedded in engineered
matrices analogous to native tissue as a function of fabrication parameters, adhesion to local environment, and
load. In Aim 3 we will evaluate the effect of therapeutic release from MAMCs embedded within engineered
cartilage for the purpose of stimulating growth in response to physiologic loading and promoting repair in
response to injurious loading. Finally, in Aim 4, we will assess the actuation of MAMCs in an in vivo load
bearing animal model of cartilage repair. Collectively these Aims will test the hypothesis that physiologically
relevant mechanical forces can temporally and spatially control the delivery of bioactive growth promoting
molecules that positively impact tissue formation and repair. Completion of these Aims will culminate with
validation of MAMCs in a clinically relevant animal model and support this as a novel drug delivery system with
broad applications in directing regeneration and repair in mechanically loaded tissues.
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会议论文
Cartilage response to compression injury: A platform for therapeutics discovery
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批准号:10183183
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项目类别:
-
资助金额:$0.0万
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财政年份:2014
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负责人:George R. Dodge
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依托单位:
Cartilage response to compression injury: A platform for therapeutics discovery
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批准号:9360772
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项目类别:
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资助金额:$0.0万
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财政年份:2014
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负责人:George R. Dodge
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依托单位:
Cartilage response to compression injury: A platform for therapeutics discovery
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批准号:8669832
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项目类别:
-
资助金额:$0.0万
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财政年份:2014
-
负责人:George R. Dodge
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依托单位:
Cartilage response to compression injury: A platform for therapeutics discovery
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批准号:8926246
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项目类别:
-
资助金额:$0.0万
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财政年份:2014
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负责人:George R. Dodge
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依托单位:
海外基金