International audienceCartilage engineering is one of the most challenging issue in regenerative medicine, due to its limited self-ability to repair. Here, we assessed engineering of cartilage tissue starting from human bone marrow (hBM) stem cells under hypoxic environment and delineated the mechanism whereby chondrogenesis could be conducted without addition of exogenous growth factors. hBM stem cells were cultured in alginate beads and chondrogenesis was monitored by chondrocyte phenotypic markers. Activities and roles of Sox and HIF-1α transcription factors were investigated with complementary approaches of gain and loss of function and provided evidences that HIF-1α is essential for hypoxic induction of chondrogenesis. Thereafter, hBM ...
Articular cartilage is an avascular tissue, and therefore, at least in large animals, functions in a...
International audienceAbstract Objective Autologous chondrocyte implantation requires expansion of c...
International audienceMesenchymal stem cells (MSCs) hold promise for cartilage engineering. Here, we...
International audienceCartilage engineering is one of the most challenging issue in regenerative med...
OBJECTIVE: To uncover the mechanism by which hypoxia enhances cartilage matrix synthesis by human ar...
SummaryBackgroundEngineering musculoskeletal cartilages with stem cells remains a challenge because ...
Background/Aims: Multipotent stem/stromal cells (MSC) are considered promising for cartilage tissue ...
Cartilage is an essential skeletal connective tissue in vertebrates. It comprises extracellular mat...
Umbilical cord blood (UCB) is an attractive alternative to bone marrow for isolation of mesenchymal ...
The transcriptional profile induced by hypoxia plays important roles in the chondrogenic differentia...
Human articular cartilage is an avascular tissue, and therefore functions in a hypoxic environment. ...
The chondrocyte is solely responsible for synthesis and maintenance of the resilient articular carti...
Background The chondrogenic differentiation of mesenchymal stem cells (MSCs) is reg...
In a chronically hypoxic tissue such as cartilage, adaptations to hypoxia do not merely include cell...
Abstract Background and aims: Poor self-repairing is a characteristic of articular cartilage damage...
Articular cartilage is an avascular tissue, and therefore, at least in large animals, functions in a...
International audienceAbstract Objective Autologous chondrocyte implantation requires expansion of c...
International audienceMesenchymal stem cells (MSCs) hold promise for cartilage engineering. Here, we...
International audienceCartilage engineering is one of the most challenging issue in regenerative med...
OBJECTIVE: To uncover the mechanism by which hypoxia enhances cartilage matrix synthesis by human ar...
SummaryBackgroundEngineering musculoskeletal cartilages with stem cells remains a challenge because ...
Background/Aims: Multipotent stem/stromal cells (MSC) are considered promising for cartilage tissue ...
Cartilage is an essential skeletal connective tissue in vertebrates. It comprises extracellular mat...
Umbilical cord blood (UCB) is an attractive alternative to bone marrow for isolation of mesenchymal ...
The transcriptional profile induced by hypoxia plays important roles in the chondrogenic differentia...
Human articular cartilage is an avascular tissue, and therefore functions in a hypoxic environment. ...
The chondrocyte is solely responsible for synthesis and maintenance of the resilient articular carti...
Background The chondrogenic differentiation of mesenchymal stem cells (MSCs) is reg...
In a chronically hypoxic tissue such as cartilage, adaptations to hypoxia do not merely include cell...
Abstract Background and aims: Poor self-repairing is a characteristic of articular cartilage damage...
Articular cartilage is an avascular tissue, and therefore, at least in large animals, functions in a...
International audienceAbstract Objective Autologous chondrocyte implantation requires expansion of c...
International audienceMesenchymal stem cells (MSCs) hold promise for cartilage engineering. Here, we...