3D Bioprinting of Biomimetic Constructs for Rotator Cuff Augmentation
3D Bioprinting of Biomimetic Constructs for Rotator Cuff Augmentation
批准号:
10410435
负责人:
Bin Duan
金额:
$40.46万
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-06-01 至 2024-05-31
关键词:
3-DimensionalAccountingAcuteAddressAdipose tissueAffectAngiogenic FactorAnimalsArchitectureAreaAutologousBiologicalBiomechanicsBiomimeticsBlood VesselsBone RegenerationCell Differentiation processCellsChronicCicatrixCollagenCollagen FiberDataDefectDevelopmentDoseEncapsulatedEngineeringExhibitsExtracellular MatrixFailureFatty acid glycerol estersFibrocartilagesFibrosisGoalsGrowth FactorHumanHydrogelsImpairmentImplantIn VitroInfiltrationInflammationKnowledgeMesenchymal Stem CellsModelingMuscleNatural regenerationOperative Surgical ProceduresOryctolagus cuniculusOutcome MeasurePatternPhenotypePhysiciansPrintingPropertyRegulationReportingRoleRotator CuffShoulder PainStructureSurfaceSurgical suturesSystemTechniquesTechnologyTendon structureTestingTextilesTherapeuticThickTissue constructsTissuesTranslatingUnited StatesVascularizationVisitWorkXenograft procedurebasebioinkbioprintingbonebone healingdesignhealingimprovedin vitro regenerationin vivoinfraspinatous muscleinnovative technologiesmechanical propertiesnanofibernovel strategiesosteogenicprimary outcomerepairedrotator cuff injuryrotator cuff tearscaffoldstem cell differentiationstem cellstissue regenerationtreatment strategy
中文摘要
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英文摘要
Project Summary
Rotator cuff tendon tears account for more than 4.5 million physician visits per year, and over 250,000 rotator
cuff repair surgeries are performed annually in the United States. For massive rotator cuff defect or chronic
tears with significant retraction and tissue loss, multiple strategies, including auto-, allo- and xenografts as well
as synthetic implants, have been used to augment the bone-tendon junction to improve the rates of successful
healing of these severe rotator cuff tears. Despite the current advances in tissue augmentation, the overall
failure rate has been reported to be between 38% and 65%. Obstacles in the development of approaches to
address tendon-to-bone healing are partly because (1) current augmentation options fail to mimic multizoal
structure of native rotator cuff tissue; (2) uniform matrix microenvironment impedes the heterogeneous
differentiation and vascularization of progenitor cells/mesenchymal stem cells (MSC); (3) limited knowledge
has been gained about how MSC differentiation status and vascularization pattern within different zonal region
affect rotator cuff healing. We have developed a novel strategy by combining 3D bioprinting technique with
biotextile technique to generate engineered rotator cuff constructs with zonal structure and spatial bioactive
factor distribution. The proposed studies will test the hypothesis that tendon-to-bone regeneration is enhanced
in vitro and in vivo by spatial differentiation of adipose derived MSC (ADMSC) and spatial control of
vascularization degree in pre-designed region in the optimized bioprinted microenvironment. The specific aims
of the studies are (i) determine how spatial differentiation of ADMSC within bioprinted rotator cuff constructs
affect tendon-to-bone healing; and (ii) determine how the spatially incorporated bioactive factors regulate
ADMSC differentiation, vascularization and rotator cuff repair. A massive rabbit infraspinatus tendon defect
model will be employed for both of the aims. The primary outcome measures will include inflammation,
construct integration, collagen fiber alignment, collagen types in different regions, muscle quality and fat
infiltration, and tensile biomechanics. This proposal will develop biological augmentation strategies to promote
scarless healing. Our approach is to better understand the roles of exogenous stem cells and vasculature on
tendon-to-bone interface regeneration in vitro and in vivo.
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DOI:
10.1016/j.actbio.2020.11.042
发表时间:
2022-03
期刊:
Acta biomaterialia
影响因子:
9.7
作者:
[Wu S, Qi Y, Shi W, Kuss M, Chen S, Duan B]
通讯作者:
Duan B
DOI:
10.1016/j.actbio.2023.02.030
发表时间:
2023-02
期刊:
Acta biomaterialia
影响因子:
9.7
作者:
[Bo Liu;Dongze Zhang;H. Tu;O. A. Alimi;Yunfan Kong;Rachagani Satyanarayana;Mitchell A. Kuss;]
通讯作者:
Bo Liu;Dongze Zhang;H. Tu;O. A. Alimi;Yunfan Kong;Rachagani Satyanarayana;Mitchell A. Kuss;
DOI:
10.1021/acsbiomaterials.0c01619
发表时间:
2021-01
期刊:
ACS biomaterials science & engineering
影响因子:
5.8
作者:
[Cui Li;Mitchell A. Kuss;Yunfan Kong;F. Nie;Xiaoyan Liu;Bo Liu;A. Dunaevsky;P. Fayad;B. Duan;Xiaowei Li]
通讯作者:
Cui Li;Mitchell A. Kuss;Yunfan Kong;F. Nie;Xiaoyan Liu;Bo Liu;A. Dunaevsky;P. Fayad;B. Duan;Xiaowei Li
DOI:
10.1096/fj.202101484r
发表时间:
2021-12
期刊:
FASEB journal : official publication of the Federation of American Societies for Experimental Biology
影响因子:
--
作者:
[Jiang X, Wojtkiewicz M, Patwardhan C, Greer S, Kong Y, Kuss M, Huang X, Liao J, Lu Y, Dudley A, Gundry RL, Fuchs M, Streubel P, Duan B]
通讯作者:
Duan B
Embedded Bioprinting of Breast Tumor Cells and Organoids Using Low-Concentration Collagen-Based Bioinks.
使用低浓度胶原蛋白生物墨水对乳腺肿瘤细胞和类器官进行嵌入式生物打印。
DOI:
10.1002/adhm.202300905
发表时间:
2023
期刊:
Advanced healthcare materials
影响因子:
10
作者:
[Shi,Wen, Mirza,Sameer, Kuss,Mitchell, Liu,Bo, Hartin,Andrew, Wan,Shibiao, Kong,Yunfan, Mohapatra,Bhopal, Krishnan,Mena, Band,Hamid, Band,Vimla, Duan,Bin]
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Duan,Bin
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依托单位:
3D Bioprinting of Biomimetic Constructs for Rotator Cuff Augmentation
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批准号:10188428
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项目类别:
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资助金额:$31.6万
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财政年份:2018
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负责人:Bin Duan
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依托单位:
海外基金