In vitro flow-induced mechanical stimulation of developing bone tissue constructs has been shown to favor mineral deposition in scaffolds seeded with cells directly exposed to the fluid flow. However, the effect of fluid dynamic parameters, such as shear stress (SS), within 3D bioprinted constructs is still unclear. Thus, this study aimed at correlating the SS levels and the mineral deposition in 3D bioprinted constructs, evaluating the possible dampening effect of the hydrogel. Human mesenchymal stem cells (hMSCs) were embedded in 3D bioprinted porous structures made of alginate and gelatin. 3D bioprinted constructs were cultured in an osteogenic medium assessing the influence of different flow rates (0, 0.7 and 7 ml/min) on calcium and co...
Mechanical stimulation in terms of fluid flow and mechanical strain can enhance the osteogenesis. Bi...
\u3cp\u3eIn bone tissue engineering experiments, fluid-induced shear stress is able to stimulate cel...
In vitro tissue engineering is a method for developing living and functional tissues external to the...
In vitro flow-induced mechanical stimulation of developing bone tissue constructs has been shown to ...
Volumetric 3D bioprinting is a light-based technique, which enables custom fabrication of complex ob...
Flow perfusion bioreactors have been extensively investigated as a promising culture method for bone...
Item does not contain fulltextIn this study we report on direct involvement of fluid shear stresses ...
Bone tissue engineering (BTE) experiments in vitro have shown that fluid-induced wall shear stress (...
The advantages of longitudinal monitoring techniques are getting more attention in various tissue en...
\u3cp\u3eSpinner flask bioreactors have often been employed for bone tissue engineering. However, th...
Item does not contain fulltextBone is a complex highly structured mechanically active 3D tissue comp...
Successful bone tissue engineering requires the understanding of cellular activity in three-dimensio...
Recent studies have shown that mechanical stimulation, in the form of fluid perfusion and mechanical...
Bone tissue engineering aims to generate clinically applicable bone graft substitutes in an effort t...
Mechanical stimulation in terms of fluid flow and mechanical strain can enhance the osteogenesis. Bi...
\u3cp\u3eIn bone tissue engineering experiments, fluid-induced shear stress is able to stimulate cel...
In vitro tissue engineering is a method for developing living and functional tissues external to the...
In vitro flow-induced mechanical stimulation of developing bone tissue constructs has been shown to ...
Volumetric 3D bioprinting is a light-based technique, which enables custom fabrication of complex ob...
Flow perfusion bioreactors have been extensively investigated as a promising culture method for bone...
Item does not contain fulltextIn this study we report on direct involvement of fluid shear stresses ...
Bone tissue engineering (BTE) experiments in vitro have shown that fluid-induced wall shear stress (...
The advantages of longitudinal monitoring techniques are getting more attention in various tissue en...
\u3cp\u3eSpinner flask bioreactors have often been employed for bone tissue engineering. However, th...
Item does not contain fulltextBone is a complex highly structured mechanically active 3D tissue comp...
Successful bone tissue engineering requires the understanding of cellular activity in three-dimensio...
Recent studies have shown that mechanical stimulation, in the form of fluid perfusion and mechanical...
Bone tissue engineering aims to generate clinically applicable bone graft substitutes in an effort t...
Mechanical stimulation in terms of fluid flow and mechanical strain can enhance the osteogenesis. Bi...
\u3cp\u3eIn bone tissue engineering experiments, fluid-induced shear stress is able to stimulate cel...
In vitro tissue engineering is a method for developing living and functional tissues external to the...