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Bioimpacts, ISSN 2228-5660, 12/2018, Volume 8, Issue Suppl 1, pp. S1 - S129
Journal Article
Journal of cellular and molecular medicine, ISSN 1582-1838, 2012, Volume 16, Issue 10, pp. 2247 - 2270
Osteochondral tissue engineering has shown an increasing development to provide suitable strategies for the regeneration of damaged cartilage and underlying... 
osteochondral tissue engineering | scaffold designs | composites | bilayered scaffolds | scaffold fabrication | clinical relevance | Osteochondral tissue engineering | Scaffold fabrication | Composites | Clinical relevance | Scaffold designs | Bilayered scaffolds | MEDICINE, RESEARCH & EXPERIMENTAL | COMPOSITE SCAFFOLDS | GLASS-CERAMIC SCAFFOLDS | AXIAL VASCULARIZATION | MECHANICAL-PROPERTIES | NANOFIBROUS SCAFFOLDS | CELL BIOLOGY | IN-VITRO | BIPHASIC SCAFFOLD | BONE SUBSTITUTE | ARTICULAR-CARTILAGE | FIBROUS SCAFFOLDS | Chondrocytes - cytology | Tissue Engineering - methods | Bone and Bones - chemistry | Biocompatible Materials - chemistry | Humans | Prostheses and Implants | Bone Regeneration | Stem Cells - cytology | Tissue Scaffolds - chemistry | Animals | Ceramics - chemistry | Models, Animal | Cell Differentiation | Cartilage, Articular - chemistry | Tissue engineering | Stem cells | Biodegradability | Surface chemistry | Bond strength | Alcohol | Hydroxyapatite | Biomaterials | Fabrication | Cartilage | Engineering | Biomedical materials | Cell growth | Topography | Synthetic products | Biocompatibility | Polymers | Biodegradation | Mechanical properties | Shear strength | Cartilage (articular) | Ceramics | Bone (subchondral) | Medicine | Studies | Regeneration | Composite materials | Calcification | Composite structures | Scaffolds | Reviews
Journal Article
Acta biomaterialia, ISSN 1742-7061, 2015, Volume 24, pp. 1 - 11
Journal Article
Bone (New York, N.Y.), ISSN 8756-3282, 2008, Volume 43, Issue 5, pp. 931 - 940
Abstract This study investigated the effects of dual delivery of vascular endothelial growth factor (VEGF) and bone morphogenetic protein-2 (BMP-2) for bone... 
Orthopedics | vascular endothelial growth factor, and also implant group containing this growth factor within the scaffold | PPF | volume of interest | BMP-2 | CSD | DUAL | EMPTY | Vascular endothelial growth factor | critical size defect | Controlled release | PBS | implant group containing both VEGF and BMP-2 within the scaffold | Gelatin microparticles | VEGF | microCT | microcomputed tomography | Bone tissue engineering | bone morphogenetic protein-2, and also implant group containing this growth factor within the scaffold | BLANK | VOI | Bone morphogenetic protein-2 | implant group containing no growth factor within the scaffold | group which had no scaffold implanted within the defect | phosphate buffered saline | poly(propylene fumarate) | MICROCOMPUTED TOMOGRAPHY | CULTURE PERIOD | MESENCHYMAL STEM-CELLS | CALVARIAL DEFECT | REPAIR | IN-VIVO | ENDOCRINOLOGY & METABOLISM | OLIGO(POLY(ETHYLENE GLYCOL) FUMARATE) | SCAFFOLDS | MARROW STROMAL CELLS | MORPHOGENETIC PROTEIN-2 | Bone Morphogenetic Protein 2 - genetics | Implants, Experimental | Rats, Inbred F344 | Rats | Male | Tomography, X-Ray Computed | Vascular Endothelial Growth Factor A - metabolism | Regeneration - physiology | Vascular Endothelial Growth Factor A - genetics | Skull - physiology | Drug Delivery Systems | Particle Size | Tissue Scaffolds | Animals | Skull - pathology | Bone Morphogenetic Protein 2 - metabolism | Gelatin - chemistry | Neovascularization, Physiologic | Bone morphogenetic proteins | Neovascularization
Journal Article
Acta biomaterialia, ISSN 1742-7061, 2019, Volume 84, pp. 16 - 33
Journal Article