Three-dimensional (3D) bio-printing is a revolutionary technology to reproduce a 3D functional living tissue scaffold in-vitro through controlled layer-by-layer deposition of biomaterials along with high precision positioning of cells. Due to its bio-compatibility, natural hydrogels are commonly considered as the scaffold material. However, the mechanical integrity of a hydrogel material, especially in 3D scaffold architecture, is an issue. In this research, a novel hybrid hydrogel, that is, sodium alginate with carboxymethyl cellulose (CMC) is developed and systematic quantitative characterization tests are conducted to validate its printability, shape fidelity and cell viability. The outcome of the rheological and mechanical test, filamen...
Three-dimensional (3D) bioprinting is a promising technique used to fabricate scaffolds from hydroge...
Alginate is a natural polysaccharide that typically originates from various species of algae. Due to...
Tissue regeneration using in-vitro scaffold becomes a vital mean to mimic the in-vivo counterpart du...
Three-dimensional (3D) bio-printing is a revolutionary technology to reproduce a 3D functional livin...
Different bioprinting techniques have been used to produce cell-laden alginate hydrogel structures, ...
The field of regenerative medicine and tissue engineering is continuously advancing and utilizing ne...
In recent years, 3D bioprinting has caught the attention of the medical community for its potential ...
3D biofabrication allowed the construction of bio materials, tissues, cells, drugs and others to tak...
Cells 3D bio-printed directly into scaffolds are often delivered at low densities. Therefore, it is ...
Three-dimensional (3D) bioprinting is an appealing and revolutionary manufacturing approach for the ...
Three-dimensional (3D)-bioprinting enables scientists to mimic in vivo micro-environments and to per...
Three-dimensional (3-D) bioprinting is the layer-by-layer deposition of biological material with the...
There is great hope in 3D printing techniques to create patient specific scaffolds for therapeutic a...
Three-dimensional (3D) bioprinting technology offers the possibility to deliver, in a defined and or...
Additive biofabrication (3D bioprinting) makes it possible to create scaffolds with precise geometri...
Three-dimensional (3D) bioprinting is a promising technique used to fabricate scaffolds from hydroge...
Alginate is a natural polysaccharide that typically originates from various species of algae. Due to...
Tissue regeneration using in-vitro scaffold becomes a vital mean to mimic the in-vivo counterpart du...
Three-dimensional (3D) bio-printing is a revolutionary technology to reproduce a 3D functional livin...
Different bioprinting techniques have been used to produce cell-laden alginate hydrogel structures, ...
The field of regenerative medicine and tissue engineering is continuously advancing and utilizing ne...
In recent years, 3D bioprinting has caught the attention of the medical community for its potential ...
3D biofabrication allowed the construction of bio materials, tissues, cells, drugs and others to tak...
Cells 3D bio-printed directly into scaffolds are often delivered at low densities. Therefore, it is ...
Three-dimensional (3D) bioprinting is an appealing and revolutionary manufacturing approach for the ...
Three-dimensional (3D)-bioprinting enables scientists to mimic in vivo micro-environments and to per...
Three-dimensional (3-D) bioprinting is the layer-by-layer deposition of biological material with the...
There is great hope in 3D printing techniques to create patient specific scaffolds for therapeutic a...
Three-dimensional (3D) bioprinting technology offers the possibility to deliver, in a defined and or...
Additive biofabrication (3D bioprinting) makes it possible to create scaffolds with precise geometri...
Three-dimensional (3D) bioprinting is a promising technique used to fabricate scaffolds from hydroge...
Alginate is a natural polysaccharide that typically originates from various species of algae. Due to...
Tissue regeneration using in-vitro scaffold becomes a vital mean to mimic the in-vivo counterpart du...