SRY-related high-mobility-group box 9 (Sox9) gene is a cartilage-specific transcription factor that plays essential roles in chondrocyte differentiation and cartilage formation. The aim of this study was to investigate the feasibility of genetic delivery of Sox9 to enhance chondrogenic differentiation of human umbilical cord blood-derived mesenchymal stem cells (hUC-MSCs). After they were isolated from human umbilical cord blood within 24 h after delivery of neonates, hUC-MSCs were untreated or transfected with a human Sox9-expressing plasmid or an empty vector. The cells were assessed for morphology and chondrogenic differentiation. The isolated cells with a fibroblast-like morphology in monolayer culture were positive for the MSC markers ...
Objective. Human osteoarthritis (OA) is characterized by a pathologic shift in articular cartilage h...
Sox9 is a Sry-related HMG-domain containing transcription factor. Lines of evidence suggest that Sox...
Induced pluripotent stem cells (iPSCs) are an attractive cell source for cartilage regeneration, but...
SRY-related high-mobility-group box 9 (Sox9) gene is a cartilage-specific transcription factor that ...
Sox9 plays an important role as transcription factor for chondrogenesis; the formation of cartilage....
Sox9 plays an important role as transcription factor for chondrogenesisthe formation of cartilage. T...
SOX9 is an essential transcription factor for chondrocyte differentiation and cartilage formation. T...
Background Mesenchymal stem cell (MSC) based-treatments of cartilage injury are promising but impa...
The repair of focal articular cartilage defects remains a problem. Combining gene therapy with tissu...
SummaryObjectivesArticular chondrocytes proliferate in monolayer culture, but the expression of the ...
Articular cartilage defects arising from trauma or degenerative diseases fail to repair spontaneousl...
AbstractObjective This work was carried out to identify transcription factors controlling the differ...
Gene transfer technology offers innovative biological repair strategies for cartilage regeneration i...
AbstractObjective: The Sox9 transcription factor has emerged as an important determinant of chondroc...
Background: Articular cartilage has a limited potential for self-healing. Transplantation of genetic...
Objective. Human osteoarthritis (OA) is characterized by a pathologic shift in articular cartilage h...
Sox9 is a Sry-related HMG-domain containing transcription factor. Lines of evidence suggest that Sox...
Induced pluripotent stem cells (iPSCs) are an attractive cell source for cartilage regeneration, but...
SRY-related high-mobility-group box 9 (Sox9) gene is a cartilage-specific transcription factor that ...
Sox9 plays an important role as transcription factor for chondrogenesis; the formation of cartilage....
Sox9 plays an important role as transcription factor for chondrogenesisthe formation of cartilage. T...
SOX9 is an essential transcription factor for chondrocyte differentiation and cartilage formation. T...
Background Mesenchymal stem cell (MSC) based-treatments of cartilage injury are promising but impa...
The repair of focal articular cartilage defects remains a problem. Combining gene therapy with tissu...
SummaryObjectivesArticular chondrocytes proliferate in monolayer culture, but the expression of the ...
Articular cartilage defects arising from trauma or degenerative diseases fail to repair spontaneousl...
AbstractObjective This work was carried out to identify transcription factors controlling the differ...
Gene transfer technology offers innovative biological repair strategies for cartilage regeneration i...
AbstractObjective: The Sox9 transcription factor has emerged as an important determinant of chondroc...
Background: Articular cartilage has a limited potential for self-healing. Transplantation of genetic...
Objective. Human osteoarthritis (OA) is characterized by a pathologic shift in articular cartilage h...
Sox9 is a Sry-related HMG-domain containing transcription factor. Lines of evidence suggest that Sox...
Induced pluripotent stem cells (iPSCs) are an attractive cell source for cartilage regeneration, but...