Baujard-Lamotte L, Noinville S, Goubard F, Marque P, Pauthe E
Laboratoire ERRMECe, Université de Cergy-Pontoise, 95302 Cergy-Pontoise Cedex, France.
Colloids Surf B Biointerfaces. 2008 May 1;63(1):129-37. doi: 10.1016/j.colsurfb.2007.11.015. Epub 2007 Dec 4.
Fibronectin (FN), a large glycoprotein found in body fluids and in the extracellular matrix, plays a key role in numerous cellular behaviours. We investigate FN adsorption onto hydrophilic bare silica and hydrophobic polystyrene (PS) surfaces using Fourier transform infrared spectroscopy-attenuated total reflection (FTIR-ATR) in aqueous medium. Adsorption kinetics using different bulk concentrations of FN were followed for 2h and the surface density of adsorbed FN and its time-dependent conformational changes were determined. When adsorption occurs onto the hydrophilic surface, FN molecules keep their native conformation independent of the adsorption conditions, but the amount of adsorbed FN increases with time and the bulk concentration. Although the protein surface density is the same on the hydrophobic PS surface, this has a strong impact on the average conformation of the adsorbed FN layer. Indeed, interfacial hydration changes induced by adsorption onto the hydrophobic surface lead to a decrease in unhydrated beta-sheet content and cause an increase in hydrated beta-strand and hydrated random domain content of adsorbed FN. This conformational change is mainly dependent on the bulk concentration. Indeed, at low bulk concentrations, the secondary structures of adsorbed FN molecules undergo strong unfolding, allowing an extended and hydrated conformation of the protein. At high bulk concentrations, the molecular packing reduces the unfolding of the stereoregular structures of the FN molecules, preventing stronger spreading of the protein.
纤连蛋白(FN)是一种存在于体液和细胞外基质中的大型糖蛋白,在众多细胞行为中起关键作用。我们在水介质中使用傅里叶变换红外光谱-衰减全反射(FTIR-ATR)研究FN在亲水性裸二氧化硅和疏水性聚苯乙烯(PS)表面的吸附情况。跟踪了不同本体浓度的FN在2小时内的吸附动力学,并测定了吸附的FN的表面密度及其随时间的构象变化。当在亲水性表面发生吸附时,FN分子保持其天然构象,与吸附条件无关,但吸附的FN量随时间和本体浓度增加。尽管在疏水性PS表面上蛋白质表面密度相同,但这对吸附的FN层的平均构象有很大影响。实际上,吸附到疏水性表面引起的界面水合变化导致未水合的β-折叠含量减少,并使吸附的FN的水合β-链和水合无规结构域含量增加。这种构象变化主要取决于本体浓度。实际上,在低本体浓度下,吸附的FN分子的二级结构会发生强烈的展开,使蛋白质呈现伸展和水合的构象。在高本体浓度下,分子堆积减少了FN分子立体规则结构的展开,阻止了蛋白质更强的铺展。