Three-dimensional (3D) bioprinting is a promising technology for manufacturing cell-laden tissue-engineered constructs. Larger tissue substitutes, however, require a vascularized network to ensure nutrition supply. Therefore, tailored bioinks combining 3D printability and cell-induced vascularization are needed. We hypothesize that tailored hydrogel blends made of agarose-type I collagen and agarose-fibrinogen are 3D printable and will allow the formation of capillary-like structures by human umbilical vein endothelial cells and human dermal fibroblasts. Samples were casted, incubated for 14 days, and analyzed by immunohistology and two-photon laser scanning microscopy. The 3D printability of the hydrogel blends was examined using a drop-on...
3D bioprinting is currently used for developing oncological research models such as organ-on-chip or...
Three-dimensional (3D) printing is well acknowledged to constitute an important technology in tissue...
Cell-laden, hydrogel based 3D scaffolds have been established for engineered tissue. Artificial tiss...
Three-dimensional (3D) bioprinting is a promising technology for manufacturing cell-laden tissue-eng...
Effective vascularization is crucial for three-dimensional (3D) printed hydrogel-cell constructs to ...
The objective of the thesis was the synthesis and characterization of hydrogel blends made of agaros...
In recent years, tissue engineering has achieved significant advancements towards the repair of dama...
3D bioprinting has been rising lately in importance due to the shortage of organs for transplants an...
In order to fabricate a large-volume bioengineered tissue, building vasculature is the most importan...
Clinically, large diameter artery defects (diameter larger than 6 mm) can be substituted by unbiodeg...
Vascularization is one major obstacle in bioprinting and tissue engineering. In order to create thic...
[[abstract]]Although various research efforts have been made to produce a vascular-like network stru...
The wound healing process is much more complex than just the four phases of hemostasis, inflammation...
Microfabrication technologies have been proposed as methods to create vascularized tissues. However,...
Microfabrication technologies have been proposed as methods to create vascularized tissues. However,...
3D bioprinting is currently used for developing oncological research models such as organ-on-chip or...
Three-dimensional (3D) printing is well acknowledged to constitute an important technology in tissue...
Cell-laden, hydrogel based 3D scaffolds have been established for engineered tissue. Artificial tiss...
Three-dimensional (3D) bioprinting is a promising technology for manufacturing cell-laden tissue-eng...
Effective vascularization is crucial for three-dimensional (3D) printed hydrogel-cell constructs to ...
The objective of the thesis was the synthesis and characterization of hydrogel blends made of agaros...
In recent years, tissue engineering has achieved significant advancements towards the repair of dama...
3D bioprinting has been rising lately in importance due to the shortage of organs for transplants an...
In order to fabricate a large-volume bioengineered tissue, building vasculature is the most importan...
Clinically, large diameter artery defects (diameter larger than 6 mm) can be substituted by unbiodeg...
Vascularization is one major obstacle in bioprinting and tissue engineering. In order to create thic...
[[abstract]]Although various research efforts have been made to produce a vascular-like network stru...
The wound healing process is much more complex than just the four phases of hemostasis, inflammation...
Microfabrication technologies have been proposed as methods to create vascularized tissues. However,...
Microfabrication technologies have been proposed as methods to create vascularized tissues. However,...
3D bioprinting is currently used for developing oncological research models such as organ-on-chip or...
Three-dimensional (3D) printing is well acknowledged to constitute an important technology in tissue...
Cell-laden, hydrogel based 3D scaffolds have been established for engineered tissue. Artificial tiss...