Cell-based tissue engineering strategies used in the clinical repair of articular cartilage
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Critical attributes of human early mesenchymal stromal cell-laden microcarrier constructs for improved chondrogenic differentiationThe fabrication of biomimetic biphasic CAN-PAC hydrogel with a seamless interfacial layer applied in osteochondral defect repair.Application of Extrusion-Based Hydrogel Bioprinting for Cartilage Tissue EngineeringIn Vitro and In Vivo Studies of Alar-Nasal Cartilage Using Autologous Micro-Grafts: The Use of the Rigenera® Protocol in the Treatment of an Osteochondral Lesion of the NoseS100B + A1 CELISA: A Novel Potency Assay and Screening Tool for Redifferentiation Stimuli of Human Articular Chondrocytes.Recent strategies in cartilage repair: A systemic review of the scaffold development and tissue engineering.IGF-1 Gene Transfer to Human Synovial MSCs Promotes Their Chondrogenic Differentiation Potential without Induction of the Hypertrophic Phenotype.Effects of passage number and post-expansion aggregate culture on tissue engineered, self-assembled neocartilage.Using Costal Chondrocytes to Engineer Articular Cartilage with Applications of Passive Axial Compression and Bioactive Stimuli.In Vivo Evaluation of Biocompatibility and Chondrogenic Potential of a Cell-Free Collagen-Based Scaffold.Radiocarbon dating reveals minimal collagen turnover in both healthy and osteoarthritic human cartilage.Characterization of costal cartilage and its suitability as a cell source for articular cartilage tissue engineering.Micromechanical study of the load transfer in a polycaprolactone-collagen hybrid scaffold when subjected to unconfined and confined compression.Autologous bioscaffolds based on different concentrations of platelet rich plasma and synovial fluid as a vehicle for mesenchymal stem cells.Development of arginine-glycine-aspartate-immobilized 3D printed poly(propylene fumarate) scaffolds for cartilage tissue engineering.3D Bioprinting for Cartilage and Osteochondral Tissue Engineering.Label-free relative quantification of secreted proteins as a non-invasive method for the quality control of chondrogenesis in bioengineered substitutes for cartilage repair.Bone regeneration by means of a three-dimensional printed scaffold in a rat cranial defect.Scaffold-free tissue engineering for injured joint surface restoration.Non-invasive monitoring of in vivo hydrogel degradation and cartilage regeneration by multiparametric MR imaging.* Thermosensitive Poly(N-vinylcaprolactam) Injectable Hydrogels for Cartilage Tissue Engineering.Advancing osteochondral tissue engineering: bone morphogenetic protein, transforming growth factor, and fibroblast growth factor signaling drive ordered differentiation of periosteal cells resulting in stable cartilage and bone formation in vivo.Nondestructive/Noninvasive Imaging Evaluation of Cellular Differentiation Progression During In Vitro Mesenchymal Stem Cell-Derived Chondrogenesis.Structurally and Functionally Optimized Silk-Fibroin-Gelatin Scaffold Using 3D Printing to Repair Cartilage Injury In Vitro and In Vivo.* Constrained Cage Culture Improves Engineered Cartilage Functional Properties by Enhancing Collagen Network Stability.Coumestrol Counteracts Interleukin-1β-Induced Catabolic Effects by Suppressing Inflammation in Primary Rat Chondrocytes.Mesenchymal Stem Cells in Oriented PLGA/ACECM Composite Scaffolds Enhance Structure-Specific Regeneration of Hyaline Cartilage in a Rabbit Model.Sustained Release of Transforming Growth Factor-β1 from Platelet-Rich Chondroitin Sulfate Glycosaminoglycan Gels.Orthopaedic regenerative tissue engineering en route to the holy grail: disequilibrium between the demand and the supply in the operating room.Human Urine-Derived Stem Cells: Potential for Cell-Based Therapy of Cartilage Defects.Repair of Damaged Articular Cartilage: Current Approaches and Future DirectionsEffect of electric stimulation on human chondrocytes and mesenchymal stem cells under normoxia and hypoxiaBiomaterials in Tendon and Skeletal Muscle Tissue Engineering: Current Trends and ChallengesTrends in clinical trials for articular cartilage repair by cell therapyTransient cellular adhesion on poly(ethylene-glycol)-dimethacrylate hydrogels facilitates a novel stem cell bandage approach
P2860
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P2860
Cell-based tissue engineering strategies used in the clinical repair of articular cartilage
description
2016 nî lūn-bûn
@nan
2016年の論文
@ja
2016年論文
@yue
2016年論文
@zh-hant
2016年論文
@zh-hk
2016年論文
@zh-mo
2016年論文
@zh-tw
2016年论文
@wuu
2016年论文
@zh
2016年论文
@zh-cn
name
Cell-based tissue engineering ...... repair of articular cartilage
@en
type
label
Cell-based tissue engineering ...... repair of articular cartilage
@en
prefLabel
Cell-based tissue engineering ...... repair of articular cartilage
@en
P2093
P2860
P1433
P1476
Cell-based tissue engineering ...... repair of articular cartilage
@en
P2093
Brian J Huang
Jerry C Hu
Kyriacos A Athanasiou
P2860
P356
10.1016/J.BIOMATERIALS.2016.04.018
P577
2016-04-26T00:00:00Z