Polymer brushes grafted from surfaces using controlled polymerization techniques, most notably surface-initiated atom-transfer radical polymerization (SI-ATRP), provide robust and reproducible platforms with precise control of surface properties. These platforms are especially useful in biologically oriented applications involving the confinement of membrane proteins onto solid supports, including screening of pharmaceuticals and biosensing. Here we investigate a tunable zwitterion-based polymeric interface that can guide the assembly of neutral lipid membranes with high mechanical stability and reproducibility on various synthetic materials. By controlling the polymer architecture using ATRP, we show that phospholipid membranes can be made...
Development of blood compatible membranes is critical for biomedical applications. Zwitterionic poly...
Biocompatible interfaces based on polymers that are covalently attached to surface at one end (polym...
We present a new molecular engineering approach in which a polymer-supported phospholipid bilayer is...
Polymer brushes grafted from surfaces using controlled polymerization techniques, most notably surfa...
Surface modification by the in situ growth of polymer chains from surface-anchored initiators (the “...
There is a growing need for functionalization strategies aimed to improve performance of platforms f...
Nanopores in arrays on silicon chips are functionalized with pH-responsive poly(methacrylic acid) (P...
AbstractAs an approach to create versatile model systems of the biological membrane we have recently...
Nanopores in arrays on silicon chips are functionalized with pH-responsive poly(methacrylic acid) (P...
Nanopores in arrays on silicon chips are functionalized with pH-responsive poly(methacrylic acid) (P...
A novel zwitterionic polymer functionalized porous membrane adsorber was obtained by grafting poly(...
In this work, a polyamide membrane was first prepared via in situ introduction of a surface-initiate...
Zwitterionic materials are the latest generation of materials for nonfouling interfaces and membrane...
We describe a stable and functional model biological membrane based on a polymerized lipid bilayer w...
Liposomes are self-assembled vesicles of amphiphilic lipid molecules, which have been investigated a...
Development of blood compatible membranes is critical for biomedical applications. Zwitterionic poly...
Biocompatible interfaces based on polymers that are covalently attached to surface at one end (polym...
We present a new molecular engineering approach in which a polymer-supported phospholipid bilayer is...
Polymer brushes grafted from surfaces using controlled polymerization techniques, most notably surfa...
Surface modification by the in situ growth of polymer chains from surface-anchored initiators (the “...
There is a growing need for functionalization strategies aimed to improve performance of platforms f...
Nanopores in arrays on silicon chips are functionalized with pH-responsive poly(methacrylic acid) (P...
AbstractAs an approach to create versatile model systems of the biological membrane we have recently...
Nanopores in arrays on silicon chips are functionalized with pH-responsive poly(methacrylic acid) (P...
Nanopores in arrays on silicon chips are functionalized with pH-responsive poly(methacrylic acid) (P...
A novel zwitterionic polymer functionalized porous membrane adsorber was obtained by grafting poly(...
In this work, a polyamide membrane was first prepared via in situ introduction of a surface-initiate...
Zwitterionic materials are the latest generation of materials for nonfouling interfaces and membrane...
We describe a stable and functional model biological membrane based on a polymerized lipid bilayer w...
Liposomes are self-assembled vesicles of amphiphilic lipid molecules, which have been investigated a...
Development of blood compatible membranes is critical for biomedical applications. Zwitterionic poly...
Biocompatible interfaces based on polymers that are covalently attached to surface at one end (polym...
We present a new molecular engineering approach in which a polymer-supported phospholipid bilayer is...