Biomaterials, ISSN 0142-9612, 2011, Volume 32, Issue 25, pp. 5773 - 5781
Abstract The use of cell-scaffold constructs is a promising tissue engineering approach to repair cartilage defects and to study cartilaginous tissue...
Advanced Basic Science | Dentistry | Cartilage | Silk fibroin | Chitosan | Tissue engineering | Scaffolds | Chondrocytes | PORE-SIZE | MATRIX | HYDROGELS | MATERIALS SCIENCE, BIOMATERIALS | ENGINEERING, BIOMEDICAL | COMPRESSION | CULTURE | ARTICULAR-CARTILAGE | SILK-BASED BIOMATERIALS | BONE | CELL | Biomechanical Phenomena | Chondrocytes - cytology | Animals | Cattle | Fibroins - metabolism | Chitosan - metabolism | Silk - chemistry | Tissue Engineering | Glycosaminoglycans | Biological products | Collagen | Analysis | Histochemistry | Extracellular matrix
Advanced Basic Science | Dentistry | Cartilage | Silk fibroin | Chitosan | Tissue engineering | Scaffolds | Chondrocytes | PORE-SIZE | MATRIX | HYDROGELS | MATERIALS SCIENCE, BIOMATERIALS | ENGINEERING, BIOMEDICAL | COMPRESSION | CULTURE | ARTICULAR-CARTILAGE | SILK-BASED BIOMATERIALS | BONE | CELL | Biomechanical Phenomena | Chondrocytes - cytology | Animals | Cattle | Fibroins - metabolism | Chitosan - metabolism | Silk - chemistry | Tissue Engineering | Glycosaminoglycans | Biological products | Collagen | Analysis | Histochemistry | Extracellular matrix
Journal Article
Advanced Drug Delivery Reviews, ISSN 0169-409X, 2008, Volume 60, Issue 2, pp. 243 - 262
Cartilage tissue engineering is emerging as a technique for the regeneration of cartilage tissue damaged due to disease or trauma. Since cartilage lacks...
Cartilage | Regeneration | Tissue engineering | Stem cells | Biomaterials | stem cells | MICROCARRIERS ENHANCES REDIFFERENTIATION | tissue engineering | regeneration | cartilage | FIBROBLAST-GROWTH-FACTOR | HUMAN ARTICULAR CHONDROCYTES | MESENCHYMAL STEM-CELLS | HYALURONIC-ACID NETWORKS | IN-VITRO CHONDROGENESIS | HUMAN ADIPOSE-TISSUE | HUMAN BONE-MARROW | INTERMITTENT HYDROSTATIC-PRESSURE | PHARMACOLOGY & PHARMACY | biomaterials | HUMAN NASAL CHONDROCYTES | Cartilage - growth & development | Chondrocytes - cytology | Tissue Engineering - methods | Humans | Cartilage - drug effects | Stem Cells - cytology | Tissue Scaffolds - chemistry | Chondrocytes - drug effects | Animals | Cell Differentiation - drug effects | Intercellular Signaling Peptides and Proteins - pharmacology | Fibroblasts - drug effects | Cartilage - cytology | Stem Cells - drug effects | Fibroblasts - cytology | Biological products | Stem Cells | Tissue Engineering
Cartilage | Regeneration | Tissue engineering | Stem cells | Biomaterials | stem cells | MICROCARRIERS ENHANCES REDIFFERENTIATION | tissue engineering | regeneration | cartilage | FIBROBLAST-GROWTH-FACTOR | HUMAN ARTICULAR CHONDROCYTES | MESENCHYMAL STEM-CELLS | HYALURONIC-ACID NETWORKS | IN-VITRO CHONDROGENESIS | HUMAN ADIPOSE-TISSUE | HUMAN BONE-MARROW | INTERMITTENT HYDROSTATIC-PRESSURE | PHARMACOLOGY & PHARMACY | biomaterials | HUMAN NASAL CHONDROCYTES | Cartilage - growth & development | Chondrocytes - cytology | Tissue Engineering - methods | Humans | Cartilage - drug effects | Stem Cells - cytology | Tissue Scaffolds - chemistry | Chondrocytes - drug effects | Animals | Cell Differentiation - drug effects | Intercellular Signaling Peptides and Proteins - pharmacology | Fibroblasts - drug effects | Cartilage - cytology | Stem Cells - drug effects | Fibroblasts - cytology | Biological products | Stem Cells | Tissue Engineering
Journal Article
Expert Opinion on Biological Therapy, ISSN 1471-2598, 02/2014, Volume 14, Issue 2, pp. 247 - 259
Introduction: Tissue regeneration in itself is a fascinating process that promises repeated renewal of tissue and organs. Areas covered: This article aims to...
initial healing phase | regeneration | therapy options | bone healing | Regeneration | Bone healing | Therapy options | Initial healing phase | PROGENITOR CELLS | MEDICINE, RESEARCH & EXPERIMENTAL | OSTEOBLAST DIFFERENTIATION | MECHANICAL-PROPERTIES | MESENCHYMAL STEM-CELLS | RAT OSTEOTOMY MODEL | IMMUNE-SYSTEM | INTERFRAGMENTARY MOVEMENTS | BIOTECHNOLOGY & APPLIED MICROBIOLOGY | FRACTURE REPAIR | MORPHOGENETIC PROTEINS | TNF-ALPHA | Bone Regeneration - physiology | Tissue Engineering - methods | Biocompatible Materials - chemistry | Humans | Extracellular Matrix - metabolism | Homeostasis | Inflammation | Wound Healing | Regeneration - physiology | Animals | Extracellular Matrix - physiology | Cartilage - physiology | Intercellular Signaling Peptides and Proteins - therapeutic use | Osteoblasts - cytology | Neovascularization, Physiologic | Osteogenesis
initial healing phase | regeneration | therapy options | bone healing | Regeneration | Bone healing | Therapy options | Initial healing phase | PROGENITOR CELLS | MEDICINE, RESEARCH & EXPERIMENTAL | OSTEOBLAST DIFFERENTIATION | MECHANICAL-PROPERTIES | MESENCHYMAL STEM-CELLS | RAT OSTEOTOMY MODEL | IMMUNE-SYSTEM | INTERFRAGMENTARY MOVEMENTS | BIOTECHNOLOGY & APPLIED MICROBIOLOGY | FRACTURE REPAIR | MORPHOGENETIC PROTEINS | TNF-ALPHA | Bone Regeneration - physiology | Tissue Engineering - methods | Biocompatible Materials - chemistry | Humans | Extracellular Matrix - metabolism | Homeostasis | Inflammation | Wound Healing | Regeneration - physiology | Animals | Extracellular Matrix - physiology | Cartilage - physiology | Intercellular Signaling Peptides and Proteins - therapeutic use | Osteoblasts - cytology | Neovascularization, Physiologic | Osteogenesis
Journal Article
Acta Biomaterialia, ISSN 1742-7061, 2011, Volume 7, Issue 6, pp. 2355 - 2373
This review focuses on recent advances in the development and use of bioactive glass for tissue engineering applications. Despite its inherent brittleness,...
Bioactive glass | Angiogenesis | Bone repair | Soft tissue repair | Tissue engineering | STEM-CELLS | MATERIALS SCIENCE, BIOMATERIALS | POROUS HYDROXYAPATITE SCAFFOLDS | ENGINEERING, BIOMEDICAL | CONTROLLABLE DEGRADATION | MECHANICAL-PROPERTIES | OF-THE-ART | IN-VITRO EVALUATION | BORATE GLASS | ORIENTED MICROSTRUCTURES | BOROSILICATE GLASSES | ANGIOGENIC GROWTH-FACTORS | Biocompatible Materials | Microscopy, Electron, Scanning | Bone Regeneration | Glass | Tissue Engineering | Osteochondral tissues | Chondrogenesis | Scaffolds
Bioactive glass | Angiogenesis | Bone repair | Soft tissue repair | Tissue engineering | STEM-CELLS | MATERIALS SCIENCE, BIOMATERIALS | POROUS HYDROXYAPATITE SCAFFOLDS | ENGINEERING, BIOMEDICAL | CONTROLLABLE DEGRADATION | MECHANICAL-PROPERTIES | OF-THE-ART | IN-VITRO EVALUATION | BORATE GLASS | ORIENTED MICROSTRUCTURES | BOROSILICATE GLASSES | ANGIOGENIC GROWTH-FACTORS | Biocompatible Materials | Microscopy, Electron, Scanning | Bone Regeneration | Glass | Tissue Engineering | Osteochondral tissues | Chondrogenesis | Scaffolds
Journal Article
1998, ISBN 0387984747, xiv, 392
Book
6.
Full Text
Stem Cell–Derived Endochondral Cartilage Stimulates Bone Healing by Tissue Transformation
Journal of Bone and Mineral Research, ISSN 0884-0431, 05/2014, Volume 29, Issue 5, pp. 1269 - 1282
ABSTRACT Although bone has great capacity for repair, there are a number of clinical situations (fracture non‐unions, spinal fusions, revision arthroplasty,...
THERAPEUTICS | INJURY/FRACTURE HEALING | BIOENGINEERING | REMODELING | CHONDROCYTES | CARTILAGE BIOLOGY | MOLECULAR PATHWAYS | remodeling | therapeutics | chondrocytes | injury/fracture healing | cartilage biology | molecular pathways | bioengineering | ANGIOGENESIS | VEGF | INJURY | FRACTURE HEALING | INTRAMEMBRANOUS OSSIFICATION | IN-VITRO CHONDROGENESIS | FRACTURE REPAIR | ENDOCRINOLOGY & METABOLISM | HYPERTROPHIC CHONDROCYTES | DIFFERENTIATION | ALLOGRAFTS | EXPRESSION | TRANSDIFFERENTIATION | Cartilage - growth & development | Tissue Engineering - methods | Humans | Male | Bone Regeneration | Stem Cells - cytology | Stem Cells - metabolism | Tibia - injuries | Tibia - pathology | Animals | Cartilage - transplantation | Mice | Tibia - metabolism | Cartilage - injuries | Bone morphogenetic proteins | Fractures | Tissue engineering | Analysis | Stem cells | Bioengineering | Molecular pathways | Fracture Healing | Injury | Chondrocytes and Cartilage Biology | Therapeutics | Remodeling | Orthopaedics
THERAPEUTICS | INJURY/FRACTURE HEALING | BIOENGINEERING | REMODELING | CHONDROCYTES | CARTILAGE BIOLOGY | MOLECULAR PATHWAYS | remodeling | therapeutics | chondrocytes | injury/fracture healing | cartilage biology | molecular pathways | bioengineering | ANGIOGENESIS | VEGF | INJURY | FRACTURE HEALING | INTRAMEMBRANOUS OSSIFICATION | IN-VITRO CHONDROGENESIS | FRACTURE REPAIR | ENDOCRINOLOGY & METABOLISM | HYPERTROPHIC CHONDROCYTES | DIFFERENTIATION | ALLOGRAFTS | EXPRESSION | TRANSDIFFERENTIATION | Cartilage - growth & development | Tissue Engineering - methods | Humans | Male | Bone Regeneration | Stem Cells - cytology | Stem Cells - metabolism | Tibia - injuries | Tibia - pathology | Animals | Cartilage - transplantation | Mice | Tibia - metabolism | Cartilage - injuries | Bone morphogenetic proteins | Fractures | Tissue engineering | Analysis | Stem cells | Bioengineering | Molecular pathways | Fracture Healing | Injury | Chondrocytes and Cartilage Biology | Therapeutics | Remodeling | Orthopaedics
Journal Article
Advanced Functional Materials, ISSN 1616-301X, 06/2012, Volume 22, Issue 12, pp. 2446 - 2468
Biomimetic scaffolds mimic important features of the extracellular matrix (ECM) architecture and can be finely controlled at the nano‐ or microscale for tissue...
biofunctionalization | tissue engineering | peptide hydrogels | regenerative medicine | injectable biomaterials | biomimetic scaffolds | drug delivery | ELASTIN-LIKE POLYPEPTIDE | PHYSICS, CONDENSED MATTER | PHYSICS, APPLIED | GROWTH-FACTOR DELIVERY | CONTROLLING HYDROGELATION KINETICS | ASSEMBLING PEPTIDE SCAFFOLDS | MATERIALS SCIENCE, MULTIDISCIPLINARY | BONE MORPHOGENETIC PROTEINS | CHEMISTRY, PHYSICAL | NANOSCIENCE & NANOTECHNOLOGY | CHEMISTRY, MULTIDISCIPLINARY | MESENCHYMAL STEM-CELLS | EXTRACELLULAR-MATRIX PROTEINS | AMINO-ACID-SEQUENCE | ARTICULAR-CARTILAGE REPAIR | BIODEGRADABLE MACROPOROUS SCAFFOLDS
biofunctionalization | tissue engineering | peptide hydrogels | regenerative medicine | injectable biomaterials | biomimetic scaffolds | drug delivery | ELASTIN-LIKE POLYPEPTIDE | PHYSICS, CONDENSED MATTER | PHYSICS, APPLIED | GROWTH-FACTOR DELIVERY | CONTROLLING HYDROGELATION KINETICS | ASSEMBLING PEPTIDE SCAFFOLDS | MATERIALS SCIENCE, MULTIDISCIPLINARY | BONE MORPHOGENETIC PROTEINS | CHEMISTRY, PHYSICAL | NANOSCIENCE & NANOTECHNOLOGY | CHEMISTRY, MULTIDISCIPLINARY | MESENCHYMAL STEM-CELLS | EXTRACELLULAR-MATRIX PROTEINS | AMINO-ACID-SEQUENCE | ARTICULAR-CARTILAGE REPAIR | BIODEGRADABLE MACROPOROUS SCAFFOLDS
Journal Article