Hydrogels for Local Gene Delivery and Therapeutic Angiogenesis
Hydrogels for Local Gene Delivery and Therapeutic Angiogenesis
批准号:
8320041
负责人:
Tatiana Segura
金额:
$35.23万
依托单位国家:
美国
项目类别:
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-08-15 至 2016-05-31
关键词:
AddressBlood VesselsCellsClinicalComplexCrosslinkerDNADNA SequenceDNA deliveryDataEncapsulatedEngineeringEnvironmentEventFailureGelGene DeliveryGene ExpressionGene TransferGenerationsGenesGrowth FactorHyaluronidaseHydrogelsImplantIn VitroKineticsLeadMatrix MetalloproteinasesNatural regenerationPeptidesPolymersProteinsRegenerative MedicineSeriesSignal TransductionSolutionsStructureSystemTechnologyTestingTherapeuticTimeTissue EngineeringTissuesTranslationsVascularizationWound Healingangiogenesisbasecrosslinkdesignenvironmental changeimplantationin vitro testingin vivonanonanoparticlenon-viral gene deliveryphysical propertyscaffoldsubcutaneoustherapeutic angiogenesistransgene expressionvasculogenesis
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Therapeutic strategies that can deliver bioactive signals at different times during tissue formation are essential for the regeneration of complex tissues such as a mature vasculature. During normal wound healing, the events that lead to mature blood vessel formation result from a series of tightly regulated events, which occur sequentially upon environmental changes. As a result, for the generation of mature and stable blood vessels more than one bioactive signal is needed and these signals are needed at different times. This proposal focuses on the design, synthesis and testing (in vitro and in vivo) of a non- viral gene delivery strategy that can deliver multiple DNA sequentially. In our approach, a two component, enzymatically degradable hydrogel composed of a micro porous (5-pore) slow degrading hydrogel and nano-porous (n-pore) fast degrading hydrogel will be used deliver encapsulated DNA nanoparticles at different times. Aim 1 will explore the design and synthesize two component hydrogel scaffolds that can release DNA nanoparticles at two different rates in vitro and in vivo. Aim 2 will explore the ability of the optimized two-component hydrogels to result in temporally controlled gene transfer in vitro and in vivo. Aim 3 will explore the hypothesis that within the wound-healing environment our two-component hydrogel system can release the encapsulated pro-angiogenic polyplexes and growth factors at different rates and result in enhanced angiogenesis and subsequent wound healing.
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海外基金