Bioadhesive micropatterns, capable of laterally confining cells to a 2D lattice, have proven effective in simulating the in vivo tissue environment. They reveal fundamental aspects of the role of adhesion in cell mechanics, proliferation, and differentiation. Here we present an approach based on photochemistry for the fabrication of synthetic polymer micropatterns. Perfluorophenyl azide (PFPA), upon deep-UV exposure, forms a reactive nitrene capable of covalently linking to a molecule that is in close proximity. PFPA has been grafted onto a backbone of poly(allyl amine), which readily forms a self-assembled monolayer on silicon wafers or glass. A film of polystyrene was applied by spin-coating, and by laterally confining the UV exposure th...
We describe a straightforward approach to the covalent immobilization of cytophilic proteins by micr...
We present a method to produce micropatterns of cells on tissue culture substrates. A network of dee...
Thiol–ene radical coupling is increasingly used for the biofunctionalization of biomaterials. Thiol–...
The ability to control protein and cell positioning on a microscopic scale is crucial in many biomed...
The microenvironment of cells in vivo is defined by spatiotemporal patterns of chemical and biophysi...
AbstractBackground: Bioactive molecules that are covalently immobilized in patterns on surfaces have...
Protein micropatterned surfaces integrated with microfluidics are useful in numerous bioanalytical a...
Mimicking the in vivo microenvironment of cells is a challenging task in engineering in vitro cell m...
Creating patterns of biomolecules and cells has been applied widely in many fields associated with t...
This work used a hydrophobic polymer pair, i.e. polystyrene (PS) and polyisoprene (PI), to construct...
We present a simple cost-effective benchtop protocol to functionalize glass and polydimethylsiloxane...
We developed a surface micropatterning technique to control the cell adhesion and protein adsorption...
We describe a straightforward approach to the covalent immobilization of cytophilic proteins by micr...
We present a detailed characterization of fibronectin (FN) adsorption and cell adhesion on poly(ethy...
In vivo, cells are sensitive to the stiffness of their microenvironment and to the spatial organizat...
We describe a straightforward approach to the covalent immobilization of cytophilic proteins by micr...
We present a method to produce micropatterns of cells on tissue culture substrates. A network of dee...
Thiol–ene radical coupling is increasingly used for the biofunctionalization of biomaterials. Thiol–...
The ability to control protein and cell positioning on a microscopic scale is crucial in many biomed...
The microenvironment of cells in vivo is defined by spatiotemporal patterns of chemical and biophysi...
AbstractBackground: Bioactive molecules that are covalently immobilized in patterns on surfaces have...
Protein micropatterned surfaces integrated with microfluidics are useful in numerous bioanalytical a...
Mimicking the in vivo microenvironment of cells is a challenging task in engineering in vitro cell m...
Creating patterns of biomolecules and cells has been applied widely in many fields associated with t...
This work used a hydrophobic polymer pair, i.e. polystyrene (PS) and polyisoprene (PI), to construct...
We present a simple cost-effective benchtop protocol to functionalize glass and polydimethylsiloxane...
We developed a surface micropatterning technique to control the cell adhesion and protein adsorption...
We describe a straightforward approach to the covalent immobilization of cytophilic proteins by micr...
We present a detailed characterization of fibronectin (FN) adsorption and cell adhesion on poly(ethy...
In vivo, cells are sensitive to the stiffness of their microenvironment and to the spatial organizat...
We describe a straightforward approach to the covalent immobilization of cytophilic proteins by micr...
We present a method to produce micropatterns of cells on tissue culture substrates. A network of dee...
Thiol–ene radical coupling is increasingly used for the biofunctionalization of biomaterials. Thiol–...