Current biomaterial-based strategies explored to treat articular cartilage defects have failed to provide adequate physico-chemical cues in order to guide functional tissue regeneration. Here, it is hypothesized that atmospheric-pressure plasma (APPJ) treatment and melt electrowriting (MEW) will produce microfiber support structures with covalently-immobilized transforming growth factor beta-1 (TGFβ1) that can stimulate the generation of functional cartilage tissue. The effect of APPJ operational speeds to activate MEW polycaprolactone meshes for immobilization of TGFβ1 is first investigated and chondrogenic differentiation and neo-cartilage production are assessed in vitro. All APPJ speeds test enhanced hydrophilicity of the meshes, with t...
The promising trends in biotechnology and tissue engineering are based on the development of advance...
Cartilage, the load-bearing, low-friction articulating surface in diarthrodial joints, has a very lo...
Articular cartilage has limited capacity for regeneration and when damaged cannot be repaired with c...
Current biomaterial-based strategies explored to treat articular cartilage defects have failed to pr...
Articular cartilage is prone to degeneration and possesses extremely poor self-healing capacity due ...
The field of tissue engineering has advanced and evolved to focus on biomimetic strategies to meet t...
Moulded hydrogels reinforced with melt-electrowritten (MEW) microfibres to tailor mechanical propert...
Three-dimensional printed hydrogel constructs with well-organized melt electrowritten (MEW) fibre-re...
Articular cartilage is an avascular, non-innervated connective tissue with limited ability to regene...
International audienceArticular cartilage is an avascular, non-innervated connective tissue with lim...
Articular cartilage is prone to degeneration and possesses extremely poor self-healing capacity due ...
Three-dimensional printed hydrogel constructs with well-organized melt electrowritten (MEW) fibre-re...
Articular cartilage is an avascular, non-innervated connective tissue with limited ability to regene...
The promising trends in biotechnology and tissue engineering are based on the development of advance...
Cartilage, the load-bearing, low-friction articulating surface in diarthrodial joints, has a very lo...
Articular cartilage has limited capacity for regeneration and when damaged cannot be repaired with c...
Current biomaterial-based strategies explored to treat articular cartilage defects have failed to pr...
Articular cartilage is prone to degeneration and possesses extremely poor self-healing capacity due ...
The field of tissue engineering has advanced and evolved to focus on biomimetic strategies to meet t...
Moulded hydrogels reinforced with melt-electrowritten (MEW) microfibres to tailor mechanical propert...
Three-dimensional printed hydrogel constructs with well-organized melt electrowritten (MEW) fibre-re...
Articular cartilage is an avascular, non-innervated connective tissue with limited ability to regene...
International audienceArticular cartilage is an avascular, non-innervated connective tissue with lim...
Articular cartilage is prone to degeneration and possesses extremely poor self-healing capacity due ...
Three-dimensional printed hydrogel constructs with well-organized melt electrowritten (MEW) fibre-re...
Articular cartilage is an avascular, non-innervated connective tissue with limited ability to regene...
The promising trends in biotechnology and tissue engineering are based on the development of advance...
Cartilage, the load-bearing, low-friction articulating surface in diarthrodial joints, has a very lo...
Articular cartilage has limited capacity for regeneration and when damaged cannot be repaired with c...