A 3D printing fused filament fabrication (FFF) approach has been implemented for the creation of microstructures having an internal 3D microstructure geometry. These objects were produced without any sacrificial structures or additional support materials, just by precisely tuning the nozzle heating, fan cooling and translation velocity parameters. The manufactured microporous structures out of polylactic acid (PLA) had fully controllable porosity (20%–60%) and consisted of desired volume pores (~0.056 μm3). The prepared scaffolds showed biocompatibility and were suitable for the primary stem cell growth. In addition, direct laser writing (DLW) ablation was employed to modify the surfaces of the PLA structures, drill holes, as well as shape ...
Three-dimensional bioprinting, thanks to its great versatility, flexibility, perfect reproducibility...
Recent advances in bioprinting technology have been used to precisely dispense cell-laden biomateria...
In Bone Tissue Engineering (BTE), autologous bone-regenerative cells are combined with a scaffold fo...
Bone tissue engineering is an interdisciplinary biomedical field that has gained a lot of interest t...
Fabrication of new biodegradable scaffolds that guide and stimulate tissue regeneration is still a m...
Rapid prototyping techniques (RP) hold great promise for designing 3-dimensional (3-D) regular and o...
During in vivo tissue regeneration, cell behavior is highly influenced by the surrounding environmen...
Three-dimensional printing (3DP) consists of a group of promising additive manufacturing techniques ...
Three-dimensional (3D) printing is a powerful manufacturing tool for making 3D structures with well-...
This study presents a novel approach for threedimensional (3D) cell culture using a two-component sy...
Abstract Background The primary objective of Tissue engineering is a regeneration or replacement of ...
Recent developments in tissue-engineering techniques allow physicians to treat a range of previously...
© 2018 Elsevier Ltd. Due to the limitation of vascular autografts, there is a growing demand to deve...
We present a 3D-printing technology allowing free-form fabrication of centimetre-scale injectable st...
Additive manufacturing techniques are promising technologies to produce patient-specific and effecti...
Three-dimensional bioprinting, thanks to its great versatility, flexibility, perfect reproducibility...
Recent advances in bioprinting technology have been used to precisely dispense cell-laden biomateria...
In Bone Tissue Engineering (BTE), autologous bone-regenerative cells are combined with a scaffold fo...
Bone tissue engineering is an interdisciplinary biomedical field that has gained a lot of interest t...
Fabrication of new biodegradable scaffolds that guide and stimulate tissue regeneration is still a m...
Rapid prototyping techniques (RP) hold great promise for designing 3-dimensional (3-D) regular and o...
During in vivo tissue regeneration, cell behavior is highly influenced by the surrounding environmen...
Three-dimensional printing (3DP) consists of a group of promising additive manufacturing techniques ...
Three-dimensional (3D) printing is a powerful manufacturing tool for making 3D structures with well-...
This study presents a novel approach for threedimensional (3D) cell culture using a two-component sy...
Abstract Background The primary objective of Tissue engineering is a regeneration or replacement of ...
Recent developments in tissue-engineering techniques allow physicians to treat a range of previously...
© 2018 Elsevier Ltd. Due to the limitation of vascular autografts, there is a growing demand to deve...
We present a 3D-printing technology allowing free-form fabrication of centimetre-scale injectable st...
Additive manufacturing techniques are promising technologies to produce patient-specific and effecti...
Three-dimensional bioprinting, thanks to its great versatility, flexibility, perfect reproducibility...
Recent advances in bioprinting technology have been used to precisely dispense cell-laden biomateria...
In Bone Tissue Engineering (BTE), autologous bone-regenerative cells are combined with a scaffold fo...