We present here a microfluidic device that generates sub-millimetric hollow hydrogel spheres, encapsulating cells and coated internally with a layer of reconstituted extracellular matrix (ECM) of a few microns thick. The spherical capsules, composed of alginate hydrogel, originate from the spontaneous instability of a multi-layered jet formed by co-extrusion using a coaxial flow device. We provide a simple design to manufacture this device using a DLP (digital light processing) 3D printer. Then, we demonstrate how the inner wall of the capsules can be decorated with a continuous ECM layer that is anchored to the alginate gel and mimics the basal membrane of a cellular niche. Finally, we used this approach to encapsulate human Neural Stem Ce...
Cellular transplantation is a promising technology with great clinical potential in regenerative med...
To fully exploit the potential of hydrogel micro-fibers in the design of regenerative medicinal mate...
To reflect human development, it is critical to create a substrate that can support long-term cell s...
International audienceWe present here a microfluidic device that generates sub-millimetric hollow hy...
A promising approach for engineering artificial stem cell niches is provided by high-throughput micr...
Human in vitro models of neural tissue with tunable microenvironment and defined spatial arrangement...
As the human population is getting older, neurodegenerative diseases are becoming an increasing thre...
Hydrogel-based artificial scaffolds play a vital role in shifting in vitro models from two-dimension...
During the central nervous system (CNS) morphogenesis, chemical gradients of morphogens such as reti...
The aim of this work is to design a natural polymers-based hydrogel for cell encapsulation of both m...
BACKGROUND: Three-dimensional (3D) in vitro models have been developed into more in vivo resembling ...
Stem cells capacity to self-renew and differentiate into specialized cell types, endow them with gre...
The advent of 3D printing technologies promises to make microfluidic organ-on-chip technologies more...
Cellular transplantation is a promising technology with great clinical potential in regenerative med...
To fully exploit the potential of hydrogel micro-fibers in the design of regenerative medicinal mate...
To reflect human development, it is critical to create a substrate that can support long-term cell s...
International audienceWe present here a microfluidic device that generates sub-millimetric hollow hy...
A promising approach for engineering artificial stem cell niches is provided by high-throughput micr...
Human in vitro models of neural tissue with tunable microenvironment and defined spatial arrangement...
As the human population is getting older, neurodegenerative diseases are becoming an increasing thre...
Hydrogel-based artificial scaffolds play a vital role in shifting in vitro models from two-dimension...
During the central nervous system (CNS) morphogenesis, chemical gradients of morphogens such as reti...
The aim of this work is to design a natural polymers-based hydrogel for cell encapsulation of both m...
BACKGROUND: Three-dimensional (3D) in vitro models have been developed into more in vivo resembling ...
Stem cells capacity to self-renew and differentiate into specialized cell types, endow them with gre...
The advent of 3D printing technologies promises to make microfluidic organ-on-chip technologies more...
Cellular transplantation is a promising technology with great clinical potential in regenerative med...
To fully exploit the potential of hydrogel micro-fibers in the design of regenerative medicinal mate...
To reflect human development, it is critical to create a substrate that can support long-term cell s...