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Protein-nanoparticle interactions: the effects of surface compositional and structural heterogeneity are scale dependent

机译:Protein-nanoparticle交互:的影响表面成分和结构异质性是规模依赖

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Nanoparticles (NPs) in the biological environment are exposed to a large variety and concentration of proteins. Proteins are known to adsorb in a 'corona' like structure on the surface of NPs. In this study, we focus on the effects of surface compositional and structural heterogeneity on protein adsorption by examining the interaction of self-assembled monolayer coated gold NPs (AuNPs) with two types of proteins: ubiquitin and fibrinogen. This work was designed to systematically investigate the role of surface heterogeneity in nanoparticle-protein interaction. We have chosen the particles as well as the proteins to provide different types (in distribution and length-scale) of heterogeneity. The goal was to unveil the role of heterogeneity and of its length-scale in the particle-protein interaction. Dynamic light scattering and circular dichroism spectroscopy were used to reveal different interactions at pH above and below the isoelectric points of the proteins, which is related to the charge heterogeneity on the protein surface. At pH 7.4, there was only a monolayer of proteins adsorbed onto the NPs and the secondary structure of proteins remained intact. At pH 4.0, large aggregates of nanoparticle-protein complexes were formed and the secondary structures of the proteins were significantly disrupted. In terms of interaction thermodynamics, results from isothermal titration calorimetry showed that ubiquitin adsorbed differently onto (1) AuNPs with charged and nonpolar terminals organized into nano-scale structure (66-34 OT), (2) AuNPs with randomly distributed terminals (66-34 brOT), and (3) AuNPs with homogeneously charged terminals (MUS). This difference in adsorption behavior was not observed when AuNPs interacted with fibrinogen. The results suggested that the interaction between the proteins and AuNPs was influenced by the surface heterogeneity on the AuNPs, and this influence depends on the scale of surface heterogeneity and the size of the proteins.
机译:纳米粒子在生物环境中(NPs)暴露于多种浓度的蛋白质。“电晕”像NPs表面结构。这项研究中,我们专注于表面的影响组成和结构的异质性蛋白质吸附通过检查交互自组装单层涂布的黄金NPs(AuNPs)与两种类型的蛋白质:泛素纤维蛋白原。系统地研究表面的作用异质性在nanoparticle-protein交互。提供不同类型的蛋白质(分布和长度尺度)的异质性。目标是推出异质性的作用particle-protein及其长度尺度交互。圆二色性光谱被用来揭示不同的互动之上和pH值在等电点的蛋白质,这是电荷的异质性有关吗蛋白质表面。单层的蛋白质吸附到NPs和蛋白质的二级结构完好无损。nanoparticle-protein复合物形成蛋白质的二级结构明显中断。热力学等温滴定的结果量热法表明,泛素吸附到(1)AuNPs指控和不同非极性终端组织成纳米级结构(66 - 34 OT), (2) AuNPs随机分布式终端(66 - 34 brOT),和(3)AuNPs与均匀带电终端(亩)。差异不是吸附行为观察到当AuNPs与纤维蛋白原。结果表明,互动蛋白质和AuNPs之间的影响AuNPs表面的异质性,这影响取决于表面的规模异质性和蛋白质的大小。

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