Purpose: The aim of this study was to evaluate the effects exerted over chondrogenic commitment of human adipose-derived mesenchymal stem cells (ADSCs) by a very low oxygen tension (<1% pO2). Materials/methods: Cell morphology, mRNA levels of chondrocyte-specific marker genes and the involvement of p38 MAPK signalling were monitored in human ADSCs under a very low oxygen tension. Results: Cell morphology was significantly changed after two days of hypoxic preconditioning when they featured as elongated spindle-shaped cells. SRY-box containing gene 9, aggrecan and collagen type II mRNA levels were enhanced under severe hypoxic culture conditions. Moreover, the inhibition of p38 MAPK resulted in a substantial reduction in transcription of ...
Human adult mesenchymal stromal cells (MSCs) from a variety of sources may be used to repair defects...
International audienceRegarding cartilage repair, tissue engineering is currently focusing on the us...
During fracture healing and microfracture treatment of cartilage defects mesenchymal stem cells (MSC...
Purpose: The aim of this study was to evaluate the effects exerted over chondrogenic commitment of h...
Background The chondrogenic differentiation of mesenchymal stem cells (MSCs) is reg...
Abstract Background and aims: Poor self-repairing is a characteristic of articular cartilage damage...
International audienceBackground/Aims: Multipotent stem/stromal cells (MSC) are considered promising...
Objective: To determine the optimal environmental conditions for chondrogenic differentiation of hum...
Human adipose tissue-derived stem cells (hATSC) have been contemplated as reparative cells for carti...
Hypoxia is an important factor involved in the control of stem cells. To obtain a better insight int...
Umbilical cord blood (UCB) is an attractive alternative to bone marrow for isolation of mesenchymal ...
SummaryBackgroundEngineering musculoskeletal cartilages with stem cells remains a challenge because ...
none5noFirst Online: 06 May 2014The aim of the study was to obtain the highest number of multipotent...
Purpose: Multipotent stromal cell (MSC)-based regenerative strategy has shown promise for the repair...
ObjectiveArticular cartilage of the knee joint is avascular, exists under a low oxygen tension micro...
Human adult mesenchymal stromal cells (MSCs) from a variety of sources may be used to repair defects...
International audienceRegarding cartilage repair, tissue engineering is currently focusing on the us...
During fracture healing and microfracture treatment of cartilage defects mesenchymal stem cells (MSC...
Purpose: The aim of this study was to evaluate the effects exerted over chondrogenic commitment of h...
Background The chondrogenic differentiation of mesenchymal stem cells (MSCs) is reg...
Abstract Background and aims: Poor self-repairing is a characteristic of articular cartilage damage...
International audienceBackground/Aims: Multipotent stem/stromal cells (MSC) are considered promising...
Objective: To determine the optimal environmental conditions for chondrogenic differentiation of hum...
Human adipose tissue-derived stem cells (hATSC) have been contemplated as reparative cells for carti...
Hypoxia is an important factor involved in the control of stem cells. To obtain a better insight int...
Umbilical cord blood (UCB) is an attractive alternative to bone marrow for isolation of mesenchymal ...
SummaryBackgroundEngineering musculoskeletal cartilages with stem cells remains a challenge because ...
none5noFirst Online: 06 May 2014The aim of the study was to obtain the highest number of multipotent...
Purpose: Multipotent stromal cell (MSC)-based regenerative strategy has shown promise for the repair...
ObjectiveArticular cartilage of the knee joint is avascular, exists under a low oxygen tension micro...
Human adult mesenchymal stromal cells (MSCs) from a variety of sources may be used to repair defects...
International audienceRegarding cartilage repair, tissue engineering is currently focusing on the us...
During fracture healing and microfracture treatment of cartilage defects mesenchymal stem cells (MSC...