One of the major challenges of bone tissue engineering is the production of a suitable scaffold material. In this review the current composite materials options available are considered covering both the methods of both production and assessing the scaffolds. A range of production routes have been investigated ranging from the use of porogens to produce the porosity through to controlled deposition methods. The testing regimes have included mechanical testing of the materials produced through to in vivo testing of the scaffolds. While the ideal scaffold material has not yet been produced, progress is being made
The deficiencies of current bone graft substitutes have been a driving force in developing new and m...
Tissue engineered scaffolds are porous structures whose purpose is to act as temporary platforms for...
The development of porous materials for use as scaffolds for the sustained 3D growth of tissue is a ...
One of the major challenges of bone tissue engineering is the production of a suitable scaffold mate...
Biomaterial and scaffold development underpins the advancement of tissue engineering. Traditional sc...
Bone is the second most commonly transplanted tissue worldwide, with over four million operations us...
Bone is the second most commonly transplanted tissue worldwide, with over four million operations us...
Bone is the second most commonly transplanted tissue worldwide, with over four million operations us...
In this work, we have discussed the preparation and characterization of composite scaffolds for bone...
For tissue regeneration and tissue engineering applications, a number of bioactive and biodegradable...
Bone tissue engineering is a rapidly developing area. Engineering bone typically uses an artificial ...
required mechanical properties and favourable microstruc-ture to promote cell attachment, growth and...
Bone is the second most commonly transplanted tissue worldwide, with over four million operations us...
Treatment of bone tissue injuries and diseases is still a great challenge for surgeons, but also for...
Highly porous composites scaffolds of poly-D,L-lactide (PDLLA) and poly(lactide-co-glycolide) (PLGA)...
The deficiencies of current bone graft substitutes have been a driving force in developing new and m...
Tissue engineered scaffolds are porous structures whose purpose is to act as temporary platforms for...
The development of porous materials for use as scaffolds for the sustained 3D growth of tissue is a ...
One of the major challenges of bone tissue engineering is the production of a suitable scaffold mate...
Biomaterial and scaffold development underpins the advancement of tissue engineering. Traditional sc...
Bone is the second most commonly transplanted tissue worldwide, with over four million operations us...
Bone is the second most commonly transplanted tissue worldwide, with over four million operations us...
Bone is the second most commonly transplanted tissue worldwide, with over four million operations us...
In this work, we have discussed the preparation and characterization of composite scaffolds for bone...
For tissue regeneration and tissue engineering applications, a number of bioactive and biodegradable...
Bone tissue engineering is a rapidly developing area. Engineering bone typically uses an artificial ...
required mechanical properties and favourable microstruc-ture to promote cell attachment, growth and...
Bone is the second most commonly transplanted tissue worldwide, with over four million operations us...
Treatment of bone tissue injuries and diseases is still a great challenge for surgeons, but also for...
Highly porous composites scaffolds of poly-D,L-lactide (PDLLA) and poly(lactide-co-glycolide) (PLGA)...
The deficiencies of current bone graft substitutes have been a driving force in developing new and m...
Tissue engineered scaffolds are porous structures whose purpose is to act as temporary platforms for...
The development of porous materials for use as scaffolds for the sustained 3D growth of tissue is a ...