Interdisciplinary Centre for Nanostructured Materials and Interfaces (CIMaINa) and Physics Department, Università degli studi di Milano, Milan, Italy.
PLoS One. 2010 Jul 29;5(7):e11862. doi: 10.1371/journal.pone.0011862.
Protein adsorption is the first of a complex series of events that regulates many phenomena at the nano-bio interface, e.g. cell adhesion and differentiation, in vivo inflammatory responses and protein crystallization. A quantitative understanding of how nanoscale morphology influences protein adsorption is strategic for providing insight into all of these processes, however this understanding has been lacking until now.
METHODOLOGY/PRINCIPAL FINDINGS: Here we introduce novel methods for quantitative high-throughput characterization of protein-surface interaction and we apply them in an integrated experimental strategy, to study the adsorption of a panel of proteins on nanostructured surfaces. We show that the increase of nanoscale roughness (from 15 nm to 30 nm) induces a decrease of protein binding affinity (<or=90%) and a relevant increase in adsorbed proteins (<or=500%) beyond the corresponding increase of specific area. We demonstrate that these effects are caused by protein nucleation on the surface, which is promoted by surface nanoscale pores.
CONCLUSIONS/SIGNIFICANCE: These results show that the adsorption of proteins depends significantly on surface nanostructure and that the relevant morphological parameter regulating the protein adsorption process is the nanometric pore shape. These new findings improve our understanding of the role of nanostructures as a biomaterial design parameter and they have important implications for the general understanding of cell behavior on nanostructured surfaces.
蛋白质吸附是调控纳米生物界面多种现象(如细胞黏附与分化、体内炎症反应和蛋白质结晶)的一系列复杂事件中的第一步。定量理解纳米形貌如何影响蛋白质吸附对于深入了解所有这些过程具有重要意义,但直到现在,我们对此仍缺乏认识。
方法/主要发现:在这里,我们引入了定量高通量表征蛋白质-表面相互作用的新方法,并将其应用于综合实验策略中,以研究一系列蛋白质在纳米结构表面上的吸附。我们发现,纳米粗糙度的增加(从 15nm 增加到 30nm)会导致蛋白质结合亲和力降低(<或=90%),以及吸附蛋白质增加(<或=500%),超出了相应比表面积的增加。我们证明这些效应是由表面纳米孔引起的蛋白质成核引起的。
结论/意义:这些结果表明,蛋白质的吸附显著依赖于表面纳米结构,调控蛋白质吸附过程的相关形态学参数是纳米级孔形状。这些新发现提高了我们对纳米结构作为生物材料设计参数的作用的理解,对于普遍理解细胞在纳米结构表面上的行为具有重要意义。