Organ- and tissue-level biological functions are intimately linked to microscale cell–cell interactions and to the overarching tissue architecture. Together, biofabrication and organoid technologies offer the unique potential to engineer multi-scale living constructs, with cellular microenvironments formed by stem cell self-assembled structures embedded in customizable bioprinted geometries. This study introduces the volumetric bioprinting of complex organoid-laden constructs, which capture key functions of the human liver. Volumetric bioprinting via optical tomography shapes organoid-laden gelatin hydrogels into complex centimeter-scale 3D structures in under 20 s. Optically tuned bioresins enable refractive index matching of specific intr...
International audienceIn recent decades, 3D in vitro cultures of primary human hepatocytes (PHHs) ha...
Many tissue models have been developed to mimic liver-specific functions for metabolic and toxin con...
There is a need for long-lived hepatic in vitro models to better predict drug induced liver injury (...
Organ- and tissue-level biological functions are intimately linked to microscale cell–cell interacti...
Fabrication of three dimensional (3D) organoids with controlled microarchitectures has been shown to...
In living tissues, cells express their functions following complex signals from their surrounding mi...
Biofabrication technologies, including stereolithography and extrusion-based printing, are revolutio...
Bioprinting has emerged as a versatile biofabrication approach for creating tissue engineered organ ...
Three-dimensional (3D) bioprinting is a family of enabling technologies that can be used to manufact...
A 3D bioprinting approach has been developed to facilitate tissue morphogenesis by directly depositi...
The liver exhibits complex geometrical morphologies of hepatic cells arranged in a hexagonal lobule ...
International audienceIn recent decades, 3D in vitro cultures of primary human hepatocytes (PHHs) ha...
Many tissue models have been developed to mimic liver-specific functions for metabolic and toxin con...
There is a need for long-lived hepatic in vitro models to better predict drug induced liver injury (...
Organ- and tissue-level biological functions are intimately linked to microscale cell–cell interacti...
Fabrication of three dimensional (3D) organoids with controlled microarchitectures has been shown to...
In living tissues, cells express their functions following complex signals from their surrounding mi...
Biofabrication technologies, including stereolithography and extrusion-based printing, are revolutio...
Bioprinting has emerged as a versatile biofabrication approach for creating tissue engineered organ ...
Three-dimensional (3D) bioprinting is a family of enabling technologies that can be used to manufact...
A 3D bioprinting approach has been developed to facilitate tissue morphogenesis by directly depositi...
The liver exhibits complex geometrical morphologies of hepatic cells arranged in a hexagonal lobule ...
International audienceIn recent decades, 3D in vitro cultures of primary human hepatocytes (PHHs) ha...
Many tissue models have been developed to mimic liver-specific functions for metabolic and toxin con...
There is a need for long-lived hepatic in vitro models to better predict drug induced liver injury (...