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Muscle-based tissue engineering to improve bone healing

Muscle-based tissue engineering to improve bone healing
基于肌肉的组织工程改善骨愈合
批准号:
7924863
负责人:
Johnny Huard
金额:
$45.45万
依托单位国家:
美国
项目类别:
财政年份:
2001
资助国家:
美国
项目状态:
已结题
起止时间:
2001-08-01 至 2012-08-31
关键词:
AddressAdherenceAdhesionsAdipose tissueAdultAffectAgeAlkaline PhosphataseAngiogenic FactorAngiogenic ProteinsAnimal ModelApplications GrantsAreaArtsAutologousBMP2 geneBMP4Biological AssayBiopsyBlood CirculationBlood VesselsBone InjuryBone MarrowBone RegenerationBone TissueCD34 geneCalvariaCartilageCell CountCell Differentiation processCell FractionCell ProliferationCell SeparationCell SurvivalCellsCellular biologyCephalicChemicalsClinical TreatmentCollagenDataDefectDermalDesminDevelopmentDiagnostic radiologic examinationDoseEmbryoEmployee StrikesEndothelial CellsEngineered GeneEngineeringEnhancersExhibitsFemaleFigs - dietaryFluorescence-Activated Cell SortingFoundationsFractureFundingFutureGalactosidaseGenetic EngineeringGerm CellsGoalsGreen Fluorescent ProteinsGrowth FactorHalf-LifeHealedHeartHistologyHumanHuman BiologyImageImplantIn VitroInferiorInjectableInjection of therapeutic agentInjuryInkInternationalKineticsLaboratoriesLacZ GenesLeadLifeLightMAP Kinase GeneMAPK11 geneMAPK14 geneMechanical StimulationMechanicsMediatingMesenchymal Stem CellsMethodsMicroscopicModalityModelingModificationMonitorMultipotent Stem CellsMusMuscleMuscle CellsMuscle FibersMuscle satellite cellMusculoskeletalMusculoskeletal SystemMyoblastsMyocardiumNCAM1 geneNIH 3T3 CellsNational Institute of Dental and Craniofacial ResearchNatural regenerationNatureOrthopedic Surgery proceduresOsteoblastsOsteocalcinOsteogenesisPaperPathway interactionsPatientsPatternPericytesPhasePlayPopulationPrintingProcessProliferatingProteinsProtocols documentationRecruitment ActivityRegenerative MedicineReportingResearchResearch PersonnelRetroviral VectorRetroviridaeReverse Transcriptase Polymerase Chain ReactionRoleSCID MiceSeedsSex CharacteristicsSignal PathwaySignal TransductionSiteSkeletal MuscleSkeletonSolidSorting - Cell MovementSourceSpatial DistributionStaining methodStainsStem cellsStromal CellsSurgeonSystemTechniquesTechnologyTestingTherapeuticTimeTissue EngineeringTissuesTransgenic MiceTransplantationVascular Endothelial CellVascular Endothelial Growth Factor ReceptorVascular Endothelial Growth FactorsVascular EndotheliumVascular blood supplyabstractingadult stem cellage effectage relatedagedangiogenesisbasebonebone cellbone healingbone morphogenetic protein 2cellular transductionclinical applicationcraniofacialcraniumdesignflasksgene therapygenetic manipulationgenetically modified cellshealinghuman femalehuman tissueimplantationimprovedin vivoin vivo regenerationinjuredlong bonemalemeetingsmembermineralizationmouse modelmuscle regenerationnew therapeutic targetolder patientosteogenicosteogenic proteinosteopontinpostnatalprogenitorpromoterprospectiveprotein expressionrecombinaseregenerativerepairedresearch studyscaffoldself-renewalsexskeletalstem cell differentiationvector

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中文摘要
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英文摘要
Incomplete healing of bone defects ih the craniofacia.l skeleton is common. Osteogenic proteins, including bone morphogenetic protein 2 and 4 (BMP2, BMP4), promote healing in bone defects, but the proteins' short half-lives and rapid clearance by the bloodstream limit their utility. The main goal of our initial R01 and the first competitive renewal project was the development of tissue engineering approach'es, based on muscle-derived stem cells (MDSCs), to efficiently deliver osteogenic proteins and improve craniofacial bone healing. In brief, during this funding period, we demonstrated that MDSCs genetically engineered to express BMP2 and BMp4 differentiate toward an osteogenic lineage and can improve bone healing in calvarial and long bone defects. We also found that concomitant expression Of vasCular endothelial growth factor (VEGF) improves the bone healing observed after implantation Of BMP2 and 13MP4 expressing MDSCs. Additionally, we have demonstrated that donor sex influences the in vitro osteogenic potential and in vivo bone regeneration potential of murine MDSCs and also identified wa.ys, such as genetic engineering and manipulation of the BMP signaling pathways, to improve the osteogenic potential of MDSCs. Finally, we have isolated the human equivalents of the murine MDSCs and determine their osteogenic potential in vitro. We would like to thank NIDCR for their support during the prior funding period. We met and exceeded all the key objectives in the original R01 application as well as the first competitive renewal, and our results formed the basis for 33 + papers and 117+ abstracts. This DE013420 second cornpetitive renewal application outlines experiments designed to extend these initial findings and lead to. possible future clinical applications of MDSCs to improve bone healing. We will focus this second competitive renewal on human equivalents to murine MDSCs and optimization of their use for bone regeneration. Since after implantation of MDSCs into injured musculoskeletal tissues, including bone, the repair process is often mediated by chemoattraction of host cells, we plan to determine the influence of host cells(especially blood vessel wall progenitors) chemoattraCted by donor human cells during the bone healing process (Aim 1). We plan to examine the effect of age and sexotdonor patient on the number and osteogenic potential of hMDCs derived from that patient. We then will investigate ways to optimize bone formation and healing by using hMDC-based tissue engineering, including the modulation of BMP signaling through inhibition of ERK1/2, pj8 MAPK and PI3K pathwa.ys and mechanical stim'ulation of hMDCs prior to implantation (Aim 2). The proposed experiments will provide important information regarding the basic biology of hMDCs and their use for bone healing and further the development of clinical treatments for osseous deficiencies.
期刊论文(31)
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会议论文
DOI: 10.1016/j.biomaterials.2014.04.113
发表时间: 2014-08
期刊: BIOMATERIALS
影响因子: 14
作者: [Gao, Xueqin, Usas, Arvydas, Tang, Ying, Lu, Aiping, Tan, Jian, Schneppendahl, Johannes, Kozemchak, Adam M., Wang, Bing, Cummins, James H., Tuan, Rocky S., Huard, Johnny]
通讯作者: Huard, Johnny
DOI: 10.1002/jor.22335
发表时间: 2013-07
期刊: JOURNAL OF ORTHOPAEDIC RESEARCH
影响因子: 2.8
作者: [Zheng, Bo, Li, Guangheng, Chen, William C. W., Deasy, Bridget M., Pollett, Jonathan B., Sun, Bin, Drowley, Lauren, Gharaibeh, Burhan, Usas, Arvydas, Peault, Bruno, Huard, Johnny]
通讯作者: Huard, Johnny
DOI: 10.1002/art.24153
发表时间: 2009-01
期刊: ARTHRITIS AND RHEUMATISM
影响因子: --
作者: [Kubo, Seiji, Cooper, Gregory M., Matsumoto, Tomoyuki, Phillippi, Julie A., Corsi, Karin A., Usas, Arvydas, Li, Guangheng, Fu, Freddie H., Huard, Johnny]
通讯作者: Huard, Johnny
DOI: 10.1186/s13287-018-1066-z
发表时间: 2018-11-21
期刊: Stem cell research & therapy
影响因子: 7.5
作者: [Gao X, Lu A, Tang Y, Schneppendahl J, Liebowitz AB, Scibetta AC, Morris ER, Cheng H, Huard C, Amra S, Wang B, Hall MA, Lowe WR, Huard J]
通讯作者: Huard J
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