An unprecedented generic system allowing the 3D printing of peptide-functionalized hydrogels by soft sol–gel inorganic polymerization is presented. Hybrid silylated inorganic/bioorganic blocks are mixed in biological buffer in an appropriate ratio, to yield a multicomponent bioink that can be printed as a hydrogel without using any photochemical or organic reagent. Hydrolysis and condensation of the silylated precursors occur during the printing process and result in a covalent network in which molecules are linked through siloxane bonds. The viscosity of the colloidal solution used as bioink was monitored in order to set up the optimal conditions for extrusion printing. Grid-patterned hydrogel scaffolds containing a hybrid integrin ligand ...
Progress in biofabrication technologies is mainly hampered by the limited number of suitable hydroge...
The fabrication of 3D constructs using 3D bioprinting techniques aims ...
A multimaterial bio-ink method using polyethylene glycol crosslinking is presented for expanding the...
An unprecedented generic system allowing the 3D printing of peptide-functionalized hydrogels by soft...
International audienceAn unprecedented generic system allowing the 3D printing of peptide-functional...
An unprecedented generic system allowing the 3D printing of peptide-functionalized hydrogels by soft...
International audienceAn unprecedented generic system allowing the 3D printing of peptide-functional...
An unprecedented generic system allowing the 3D printing of peptide-functionalized hydrogels by soft...
International audienceAn unprecedented generic system allowing the 3D printing of peptide-functional...
An unprecedented generic system allowing the 3D printing of peptide-functionalized hydrogels by soft...
International audiencePhysical hydrogels prepared from natural biopolymers are the most popular comp...
Progress within the field of biofabrication is hindered by a lack of suitable hydrogel formulations....
Progress within the field of biofabrication is hindered by a lack of suitable hydrogel formulations....
Progress within the field of biofabrication is hindered by a lack of suitable hydrogel formulations....
Thanks to their unique advantages, additive manufacturing technologies are revolutionizing almost al...
Progress in biofabrication technologies is mainly hampered by the limited number of suitable hydroge...
The fabrication of 3D constructs using 3D bioprinting techniques aims ...
A multimaterial bio-ink method using polyethylene glycol crosslinking is presented for expanding the...
An unprecedented generic system allowing the 3D printing of peptide-functionalized hydrogels by soft...
International audienceAn unprecedented generic system allowing the 3D printing of peptide-functional...
An unprecedented generic system allowing the 3D printing of peptide-functionalized hydrogels by soft...
International audienceAn unprecedented generic system allowing the 3D printing of peptide-functional...
An unprecedented generic system allowing the 3D printing of peptide-functionalized hydrogels by soft...
International audienceAn unprecedented generic system allowing the 3D printing of peptide-functional...
An unprecedented generic system allowing the 3D printing of peptide-functionalized hydrogels by soft...
International audiencePhysical hydrogels prepared from natural biopolymers are the most popular comp...
Progress within the field of biofabrication is hindered by a lack of suitable hydrogel formulations....
Progress within the field of biofabrication is hindered by a lack of suitable hydrogel formulations....
Progress within the field of biofabrication is hindered by a lack of suitable hydrogel formulations....
Thanks to their unique advantages, additive manufacturing technologies are revolutionizing almost al...
Progress in biofabrication technologies is mainly hampered by the limited number of suitable hydroge...
The fabrication of 3D constructs using 3D bioprinting techniques aims ...
A multimaterial bio-ink method using polyethylene glycol crosslinking is presented for expanding the...