The effect of surface chemistry on the adsorption characteristics of a fibronectin fragment (FNIII8–10) was investigated using fully atomistic molecular dynamics simulations. Model surfaces were constructed to replicate self-assembled monolayers terminated with methyl, hydroxyl, amine, and carboxyl moieties. It was found that adsorption of FNIII8–10 on charged surfaces is rapid, specific, and driven by electrostatic interactions, and that the anchoring residues are either polar uncharged or of opposing charge to that of the targeted surfaces. On charged surfaces the presence of a strongly bound layer of water molecules and ions hinders FNIII8–10 adsorption. In contrast, adsorption kinetics on uncharged surfaces are slow an...
We report atomistic simulations of the adsorption of a fibronectin type I module on a hydrophobic g...
We report atomistic simulations of the adsorption of a fibronectin type I module on a hydrophobic g...
We report atomistic simulations of the adsorption of a fibronectin type I module on a hydrophobic g...
The effect of surface chemistry on the adsorption characteristics of a fibronectin fragment (FNIII8&...
The effect of surface chemistry on the adsorption characteristics of a fibronectin fragment (FNIII8⁻...
The effect of surface chemistry on the adsorption characteristics of a fibronectin fragment (FNIII8⁻...
The effect of surface chemistry on the adsorption characteristics of a fibronectin fragment (FNIII8–...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
We report atomistic simulations of the adsorption of a fibronectin type I module on a hydrophobic g...
We report atomistic simulations of the adsorption of a fibronectin type I module on a hydrophobic g...
We report atomistic simulations of the adsorption of a fibronectin type I module on a hydrophobic g...
We report atomistic simulations of the adsorption of a fibronectin type I module on a hydrophobic g...
The effect of surface chemistry on the adsorption characteristics of a fibronectin fragment (FNIII8&...
The effect of surface chemistry on the adsorption characteristics of a fibronectin fragment (FNIII8⁻...
The effect of surface chemistry on the adsorption characteristics of a fibronectin fragment (FNIII8⁻...
The effect of surface chemistry on the adsorption characteristics of a fibronectin fragment (FNIII8–...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
The mechanism of human fibronectin adhesion synergy region (known as integrin binding region) in rep...
We report atomistic simulations of the adsorption of a fibronectin type I module on a hydrophobic g...
We report atomistic simulations of the adsorption of a fibronectin type I module on a hydrophobic g...
We report atomistic simulations of the adsorption of a fibronectin type I module on a hydrophobic g...
We report atomistic simulations of the adsorption of a fibronectin type I module on a hydrophobic g...