Optimizing Bioactive Hydrogels to Control Angiogenesis and Inflammation in Functi
Optimizing Bioactive Hydrogels to Control Angiogenesis and Inflammation in Functi
批准号:
7799338
负责人:
Joachim B. Kohn
金额:
$19.31万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-04-01 至 2012-03-31
关键词:
AddressAnti-Inflammatory AgentsAnti-inflammatoryApoptosisBehaviorBiocompatible MaterialsBiologicalBiological AssayBiomaterials ResearchBiomedical EngineeringBiosensorBlood VesselsCarbonatesCarboxylic AcidsCardiovascular systemCell physiologyCellsChargeClinicalCoculture TechniquesCollagenCommunicationComplexDevelopmentDevicesDiffusionDrug Delivery SystemsElectrical ResistanceElectrostaticsEncapsulatedEndothelial CellsEnvironmentEvaluationExtracellular MatrixFibrinForeign BodiesGelHumanHydrogelsImageImmobilizationImplantIn VitroInflammationInflammatoryInflammatory ResponseLiposomesMeasuresMechanicsMediatingMethodsMicroscopyModificationMusNatureOutcomePeptidesPhysiologicalPolyethylene GlycolsPolymersProcessPropertyResearchRoleSeriesSignal TransductionSolutionsSolventsSurfaceSystemTestingTissue EngineeringTissuesTyrosineUmbilical veinVascular SystemVascularizationWorkangiogenesisbasecapsulecell typecopingcrosslinkdesignhigh riskimplantable deviceimplantationimprovedin vivomacrophagemigrationmonocytenext generationpolycarbonatepolyionporous hydrogelpublic health relevanceresearch studyresponsescaffoldsubcutaneoussuccesssynthetic peptide
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Biomedical implants that facilitate communication/interaction with the surrounding tissue and/or circulatory system are rendered ineffective by the huge diffusion barrier and increased electrical resistance presented by the fibrous capsule. Examples of these devices include biomaterial implants, biosensors, implantable drug-delivery devices and tissue-engineering scaffolds. The foreign body response is characterized by enhanced recruitment of inflammatory cells. For successful implants, it is ideal to have the device surrounded and penetrated by highly vascularized tissue. Angiogenesis is the formation of new blood vessels from the existing vascular system. Both angiogenesis and inflammation are inescapable in vivo responses to all biomaterial implants. Most biomaterial implants are designed either to reduce inflammation or to improve vascularization. Although progress has been made, many studies overlook the important interconnectivity of inflammation with angiogenesis and focus on only simple in vitro outcomes. Indeed, eventual clinical success of biomaterials will require coping with the interconnectivity of the complex in vivo environment. There is emerging evidence that inflammatory cells regulate the functions of endothelial cells related to angiogenesis. However, the signals initiating angiogenesis in inflammation are complex and difficult to define. The proposed research addresses the hypothesis: the biomaterial-induced inflammatory response may be critical to control angiogenesis. Elucidating a clear physiological mechanism for angiogenesis in biomaterial-induced inflammation will provide new paradigms of biomaterial design and fabrication for the next generation of biomaterials. In order to test this hypothesis, a new class of biomaterials, hydrogels-fabricated from Polyethylene glycol (PEG)-cross-linked tyrosine-derived polycarbonate, has been synthesized and characterized. The hydrogel scaffolds will be made more bioactive to control inflammation and angiogenesis by introducing functional peptides on the polymers. A series of studies will be performed to investigate the role(s) of inflammation in angiogenesis on the hydrogel scaffolds. This study will have high impact on implantation-targeted biomaterial research, because elucidating a mechanism that initiates host inflammatory responses and the subsequent vascularization of biomaterial implants is high risk but very important. The identification of a clear mechanism will provide an efficient and realistic paradigm of the interconnectivity of inflammation with angiogenesis for the functional survival of biomaterial implants. This study will involve sophisticated bioengineering-based technical challenges, such as development of a new class of biomaterial scaffolds, fabrication of scaffold materials to be bioactive, and a quantitative imaging approach using multiphoton microscopy to measure multiple cell functions. The high risk nature of this work has necessitated several different approaches to generate the scaffolds and modify them for testing of the role of inflammation in angiogenesis and of angiogenesis in implant function and survival. PUBLIC HEALTH RELEVANCE: This project will optimize the inherent ability of the inflammatory process present in all biomaterial implant applications to 1) promote angiogenesis by utilizing bioactive molecules in the implant scaffold and 2) enhance design of the implant to release degradation products that direct angiogenesis. To overcome the difficulties in studying inflammatory and angiogenic responses to biomaterials, several high risk in vitro and in vivo methods will be utilized.
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Cell interaction study method using novel 3D silica nanoneedle gradient arrays.
使用新型 3D 二氧化硅纳米针梯度阵列的细胞相互作用研究方法。
DOI:
10.1016/j.colsurfb.2012.07.044
发表时间:
2013
期刊:
Colloids and surfaces. B, Biointerfaces
影响因子:
--
作者:
[Rajput,Deepak, Crowder,SpencerW, Hofmeister,Lucas, Costa,Lino, Sung,Hak-Joon, Hofmeister,William]
通讯作者:
Hofmeister,William
DOI:
10.1002/adhm.201200423
发表时间:
2013
期刊:
ADVANCED HEALTHCARE MATERIALS
影响因子:
10
作者:
[Lee, Sue Hyun, Gupta, Mukesh K., Bang, Jae Beum, Bae, Hojae, Sung, Hak-Joon]
通讯作者:
Sung, Hak-Joon
DOI:
10.1016/j.actbio.2011.10.003
发表时间:
2012-02
期刊:
ACTA BIOMATERIALIA
影响因子:
9.7
作者:
[Crowder, Spencer W., Gupta, Mukesh K., Hofmeister, Lucas H., Zachman, Angela L., Sung, Hak-Joon]
通讯作者:
Sung, Hak-Joon
DOI:
10.1021/bm201328k
发表时间:
2011-12-12
期刊:
BIOMACROMOLECULES
影响因子:
6.2
作者:
[Yu, Shann S., Koblin, Rachel L., Zachman, Angela L., Perrien, Daniel S., Hofmeister, Lucas H., Giorgio, Todd D., Sung, Hak-Joon]
通讯作者:
Sung, Hak-Joon
DOI:
10.1371/journal.pone.0028935
发表时间:
2011
期刊:
PloS one
影响因子:
3.7
作者:
[Gupta MK, Walthall JM, Venkataraman R, Crowder SW, Jung DK, Yu SS, Feaster TK, Wang X, Giorgio TD, Hong CC, Baudenbacher FJ, Hatzopoulos AK, Sung HJ]
通讯作者:
Sung HJ
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Rutgers Optimizes Innovation (ROI) Program
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批准号:9897208
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项目类别:
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资助金额:$100.0万
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An engineered graft to encourage preferential motor reinnervation following perip
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An engineered graft to encourage preferential motor reinnervation following perip
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项目类别:
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资助金额:$56.7万
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An engineered graft to encourage preferential motor reinnervation following perip
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资助金额:$58.05万
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财政年份:2012
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负责人:Joachim B. Kohn
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依托单位:
Annual Meeting of the NCRR/NIBIB Principal Investigators
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负责人:Joachim B. Kohn
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依托单位:
Annual Meeting of the NCRR/NIBIB Principal Investigators
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批准号:8469759
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项目类别:
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资助金额:$7.5万
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财政年份:2011
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负责人:Joachim B. Kohn
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Annual Meeting of the NCRR/NIBIB Principal Investigators
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批准号:8665422
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资助金额:$7.5万
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负责人:Joachim B. Kohn
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Optimizing Bioactive Hydrogels to Control Angiogenesis and Inflammation in Functi
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批准号:7657229
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RESBIO - the Technology Resource for Polymeric Biomaterials
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Integrated Technologies for Polymeric Biomaterials, RESBIO
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Radioopaque resorbable polymers for vascular application
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