'Organ-on-chip' devices which integrate three-dimensional (3D) cell culture techniques with microfluidic approaches have the capacity to overcome the limitations of classical 2D platforms. Although several different strategies have been developed to improve the angiogenesis within hydrogels, one of the main challenges in tissue engineering remains the lack of vascularization in the fabricated 3D models. The present work focuses on the high-definition (HD) bioprinting of microvascular structures directly on-chip using two-photon polymerization (2PP). 2PP is a nonlinear process, where the near-infrared laser irradiation will only lead to the polymerization of a very small volume pixel (voxel), allowing the fabrication of channels in the micro...
Microfabrication technologies have been proposed as methods to create vascularized tissues. However,...
Biomimetic models of microvasculature could enable assays of complex cellular behavior at the capill...
Two major challenges of 3D bioprinting are the retention of structural fidelity and efficient endoth...
'Organ-on-chip' devices which integrate three-dimensional (3D) cell culture techniques with microflu...
Despite the technological advances of the last decades, drug development remains a lengthy and costl...
Two-photon polymerization (2PP) is a lithography-based 3D printing method allowing the fabrication o...
Clinically, large diameter artery defects (diameter larger than 6 mm) can be substituted by unbiodeg...
3D bioprinting is currently used for developing oncological research models such as organ-on-chip or...
Conventional additive manufacturing and biofabrication techniques are unable to edit the chemicophys...
International audienceDevelopment of a microvasculature into tissue-engineered bone substitutes repr...
Three-dimensional (3D) printing of microfluidic devices continuously replaces conventional fabricati...
Introduction: To date only single in vitro engineered tissues are transferred to clinical approaches...
Generation of artificial vascular grafts as blood vessel substitutes is a primary challenge in bioma...
In this study, 3D hydrogel-based vascular structures with multilevel fluidic channels (macro-channel...
Microfabrication technologies have been proposed as methods to create vascularized tissues. However,...
Microfabrication technologies have been proposed as methods to create vascularized tissues. However,...
Biomimetic models of microvasculature could enable assays of complex cellular behavior at the capill...
Two major challenges of 3D bioprinting are the retention of structural fidelity and efficient endoth...
'Organ-on-chip' devices which integrate three-dimensional (3D) cell culture techniques with microflu...
Despite the technological advances of the last decades, drug development remains a lengthy and costl...
Two-photon polymerization (2PP) is a lithography-based 3D printing method allowing the fabrication o...
Clinically, large diameter artery defects (diameter larger than 6 mm) can be substituted by unbiodeg...
3D bioprinting is currently used for developing oncological research models such as organ-on-chip or...
Conventional additive manufacturing and biofabrication techniques are unable to edit the chemicophys...
International audienceDevelopment of a microvasculature into tissue-engineered bone substitutes repr...
Three-dimensional (3D) printing of microfluidic devices continuously replaces conventional fabricati...
Introduction: To date only single in vitro engineered tissues are transferred to clinical approaches...
Generation of artificial vascular grafts as blood vessel substitutes is a primary challenge in bioma...
In this study, 3D hydrogel-based vascular structures with multilevel fluidic channels (macro-channel...
Microfabrication technologies have been proposed as methods to create vascularized tissues. However,...
Microfabrication technologies have been proposed as methods to create vascularized tissues. However,...
Biomimetic models of microvasculature could enable assays of complex cellular behavior at the capill...
Two major challenges of 3D bioprinting are the retention of structural fidelity and efficient endoth...