An emerging approach in biofabrication is the creation of 3D tissue constructs through scaffold-free, cell spheroid-only methods. The basic mechanism in this technology is spheroid fusion, which is driven by the minimization of energy, the same biophysical mechanism that governs spheroid formation. However, other factors such as oxygen and metabolite accessibility within spheroids impact on spheroid properties and their ability to form larger-scale structures. The goal of our work is to develop a simulation platform eventually capable of predicting the conditions that minimize metabolism-related cell loss within spheroids. To describe the behavior and dynamic properties of the cells in response to their neighbors and to transient nutrient c...
Tissue engineering and regenerative medicine may help to save people’s lives by fabricating new orga...
It is of great value to develop reliable in vitro models for cell biology and toxicology. However, e...
Biofabrication of living structures with desired topology and functionality requires the interdiscip...
AbstractAggregates of pre-sorted cells form structures called tissue spheroids that have been widely...
Background: Spheroids are in vitro quasi-spherical structures of cell aggregates, eventually culture...
3D bioprinting is a novel promising solution for living tissue fabrication, with several potential ...
Multicellular spheroids are important tools for studying tissue and cancer physiology in 3D and are ...
Abstract only availableEmbryonic development represents a sequence of spectacular morphogenetic tran...
Three-dimensional (3D) cell culture has tremendous advantages to closely mimic the in vivo architect...
Limitations in scaffold material properties, such as sub-optimal degradation time, highlight the nee...
© The Royal Society of Chemistry 2017. We report a simple technique for the high throughput generati...
Globally the number of people waiting for a lifesaving organ transplant heavily outweighs the number...
Three-dimensional (3D) cell spheroids are being increasingly applied in many research fields due to ...
International audienceThe traditional 3D culture systems in vitro lack the biological and mechanical...
Tissue engineering and regenerative medicine may help to save people’s lives by fabricating new orga...
It is of great value to develop reliable in vitro models for cell biology and toxicology. However, e...
Biofabrication of living structures with desired topology and functionality requires the interdiscip...
AbstractAggregates of pre-sorted cells form structures called tissue spheroids that have been widely...
Background: Spheroids are in vitro quasi-spherical structures of cell aggregates, eventually culture...
3D bioprinting is a novel promising solution for living tissue fabrication, with several potential ...
Multicellular spheroids are important tools for studying tissue and cancer physiology in 3D and are ...
Abstract only availableEmbryonic development represents a sequence of spectacular morphogenetic tran...
Three-dimensional (3D) cell culture has tremendous advantages to closely mimic the in vivo architect...
Limitations in scaffold material properties, such as sub-optimal degradation time, highlight the nee...
© The Royal Society of Chemistry 2017. We report a simple technique for the high throughput generati...
Globally the number of people waiting for a lifesaving organ transplant heavily outweighs the number...
Three-dimensional (3D) cell spheroids are being increasingly applied in many research fields due to ...
International audienceThe traditional 3D culture systems in vitro lack the biological and mechanical...
Tissue engineering and regenerative medicine may help to save people’s lives by fabricating new orga...
It is of great value to develop reliable in vitro models for cell biology and toxicology. However, e...
Biofabrication of living structures with desired topology and functionality requires the interdiscip...