Hydrogels based on poly(ethylene glycol) (PEG) are commonly used for studies related to cell fate and tissue engineering. Here we present a new covalent layer-by-layer build-up process leading to PEG coatings of nanometer size called "nanogel films". Compared to macroscopic hydrogels, such nanogels should provide a fine control over the structure and the thickness of the coating. Alternated deposition of bifunctional and tetra functional PEG molecules reacting through thiol/maleimide click chemistry is evaluated by quartz crystal microbalance. We first study parameters influencing the build-up process of such coatings and demonstrate the importance of (i) the nature of the first deposited layer, (ii) the PEG concentrations and (iii) the len...
Crosslinked polymer networks have wide application in biomaterials, from soft hydrogel scaffolds for...
Poly(ethylene glycol) (PEG) based biomaterials offer a number of advantages for applications in biom...
The behavior of cells cultured in two-dimensions (2D) greatly differs from that in three-dimensions ...
Die vorliegende Arbeit zeigt einen Weg auf, mit dem auf Basis von Additions- und Kondensationsreakti...
In this work a novel, relatively simple, and fast method for patterning of gold nanoparticles (Au NP...
Clickable nanogel solutions were synthesized by using the copper catalyzed azide/alkyne cycloadditio...
Biofabrication is a new field of research where cells are fabricated together with materials in auto...
In this work a novel, relatively simple, and fast method for patterning of gold nanoparticles (Au NP...
Surface functionalization plays an important role in the design of biomedical implants, especially w...
Photochemical ligation strategies in hydrogel materials are crucial to model spatiotemporal phenomen...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Chemical Engineering, 2004.Includes...
Since the emergence of hydrogels as carriers for cells, bioactive molecules, and even metallic nanop...
Hydrogels are cross-linked networks of highly hydrophilic polymer chains. When reduced to colloidal ...
Telechelic polymers with hydrophilic midblocks (poly(ethylene glycol), PEG) and hydrophobic end grou...
Since the emergence of hydrogels as carriers for cells, bioactive molecules, and even metallic nanop...
Crosslinked polymer networks have wide application in biomaterials, from soft hydrogel scaffolds for...
Poly(ethylene glycol) (PEG) based biomaterials offer a number of advantages for applications in biom...
The behavior of cells cultured in two-dimensions (2D) greatly differs from that in three-dimensions ...
Die vorliegende Arbeit zeigt einen Weg auf, mit dem auf Basis von Additions- und Kondensationsreakti...
In this work a novel, relatively simple, and fast method for patterning of gold nanoparticles (Au NP...
Clickable nanogel solutions were synthesized by using the copper catalyzed azide/alkyne cycloadditio...
Biofabrication is a new field of research where cells are fabricated together with materials in auto...
In this work a novel, relatively simple, and fast method for patterning of gold nanoparticles (Au NP...
Surface functionalization plays an important role in the design of biomedical implants, especially w...
Photochemical ligation strategies in hydrogel materials are crucial to model spatiotemporal phenomen...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Chemical Engineering, 2004.Includes...
Since the emergence of hydrogels as carriers for cells, bioactive molecules, and even metallic nanop...
Hydrogels are cross-linked networks of highly hydrophilic polymer chains. When reduced to colloidal ...
Telechelic polymers with hydrophilic midblocks (poly(ethylene glycol), PEG) and hydrophobic end grou...
Since the emergence of hydrogels as carriers for cells, bioactive molecules, and even metallic nanop...
Crosslinked polymer networks have wide application in biomaterials, from soft hydrogel scaffolds for...
Poly(ethylene glycol) (PEG) based biomaterials offer a number of advantages for applications in biom...
The behavior of cells cultured in two-dimensions (2D) greatly differs from that in three-dimensions ...