Articular cartilage has limited capacity for regeneration and when damaged cannot be repaired with currently available metallic or synthetic implants. We aim to bioengineer a microfibre-reinforced hydrogel that can capture the zonal depth-dependent mechanical properties of native cartilage, and simultaneously support neo-cartilage formation. With this goal, a sophisticated bi-layered microfibre architecture, combining a densely distributed crossed fibre mat (superficial tangential zone, STZ) and a uniform box structure (middle and deep zone, MDZ), was successfully manufactured via melt electrospinning and combined with a gelatin-methacrylamide hydrogel. The inclusion of a thin STZ layer greatly increased the composite construct's peak modul...
For millions of people, damaged cartilage is a major source of pain and disability. As those people ...
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 has limited capacity for regeneration and when damaged cannot be repaired with c...
Despite intensive research, hydrogels currently available for tissue repair in the musculoskeletal s...
This thesis outlines the development of a mechanically functional tissue-engineered cartilage constr...
Current clinical approaches to cartilage repair fail to restore the physiological function of the ti...
Articular cartilage is a load-bearing tissue that lines the surface of bones in diarthrodial joints....
Hydrogels are of interest in cartilage tissue engineering due to their ability to support the encaps...
The load-bearing function of articular cartilage tissue contrasts with the poor load-bearing capacit...
Three-dimensional printed hydrogel constructs with well-organized melt electrowritten (MEW) fibre-re...
For millions of people, damaged cartilage is a major source of pain and disability. As those people ...
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 has limited capacity for regeneration and when damaged cannot be repaired with c...
Despite intensive research, hydrogels currently available for tissue repair in the musculoskeletal s...
This thesis outlines the development of a mechanically functional tissue-engineered cartilage constr...
Current clinical approaches to cartilage repair fail to restore the physiological function of the ti...
Articular cartilage is a load-bearing tissue that lines the surface of bones in diarthrodial joints....
Hydrogels are of interest in cartilage tissue engineering due to their ability to support the encaps...
The load-bearing function of articular cartilage tissue contrasts with the poor load-bearing capacit...
Three-dimensional printed hydrogel constructs with well-organized melt electrowritten (MEW) fibre-re...
For millions of people, damaged cartilage is a major source of pain and disability. As those people ...
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...