<p>Three types of scaffolds were used: only bioactive glass (BG)(Group A), BG with 0.1% Cu<sup>2+</sup> (Group B), or BG with 1% Cu<sup>2+</sup> (Group C). The BMSCs are either places on culture plastic keeping the scaffolds in inserts (Indirect) or directly seeded on the scaffolds (Direct). For each time point, 14 scaffolds were used as per the distribution shown below.</p><p>Groups and study design for experiments with bone-marrow derived stem cells (BMSCs) in Bioglass scaffolds.</p
Bone is the second most transplanted tissue after blood and the need for bone graft materials contin...
International audienceThe evaluation of innovative bone substitutes requires the development of an o...
Bioactive-glass-derived scaffolds are crucial in bone tissue engineering since they act as temporary...
Transplantation of encapsulated living cells is a promising approach for the treatment of a wide var...
This investigation consisted of two parts focused on bioactive glasses and scaffolds for in vitro gr...
Bone tissue engineering using human bone marrow mesenchymal stem cells (HBMCs) and biocompatible mat...
Mesenchymal stem cells can be isolated from a variety of different sources, each having their own pe...
This in vitro study was conducted to evaluate the ability of two types of constructs of bioactive, s...
A soft lithography technique was used to introduce surface patterns on the surface of sintered bioac...
Bioactive glass has been demonstrated as a biocompatible bone substitute. However bone healing proce...
Bioactive glass (13-93) scaffolds with oriented microstructures, referred to as \u27columnar\u27 and...
The ability of two groups of 13-93 bioactive glass scaffolds to support tissue ingrowth was evaluate...
Objectives: The aim of this study was to assess the interaction of a bioactive glass scaffold with c...
Objectives: The aim of this study was to assess the interaction of a bioactive glass scaffold with c...
Three dimensional assemblies of fibers made from bioactive glass compositions were investigated to d...
Bone is the second most transplanted tissue after blood and the need for bone graft materials contin...
International audienceThe evaluation of innovative bone substitutes requires the development of an o...
Bioactive-glass-derived scaffolds are crucial in bone tissue engineering since they act as temporary...
Transplantation of encapsulated living cells is a promising approach for the treatment of a wide var...
This investigation consisted of two parts focused on bioactive glasses and scaffolds for in vitro gr...
Bone tissue engineering using human bone marrow mesenchymal stem cells (HBMCs) and biocompatible mat...
Mesenchymal stem cells can be isolated from a variety of different sources, each having their own pe...
This in vitro study was conducted to evaluate the ability of two types of constructs of bioactive, s...
A soft lithography technique was used to introduce surface patterns on the surface of sintered bioac...
Bioactive glass has been demonstrated as a biocompatible bone substitute. However bone healing proce...
Bioactive glass (13-93) scaffolds with oriented microstructures, referred to as \u27columnar\u27 and...
The ability of two groups of 13-93 bioactive glass scaffolds to support tissue ingrowth was evaluate...
Objectives: The aim of this study was to assess the interaction of a bioactive glass scaffold with c...
Objectives: The aim of this study was to assess the interaction of a bioactive glass scaffold with c...
Three dimensional assemblies of fibers made from bioactive glass compositions were investigated to d...
Bone is the second most transplanted tissue after blood and the need for bone graft materials contin...
International audienceThe evaluation of innovative bone substitutes requires the development of an o...
Bioactive-glass-derived scaffolds are crucial in bone tissue engineering since they act as temporary...