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Interaction of Differently Sized, Shaped, and Functionalized Silver and Gold Nanoparticles with Glycosylated versus Nonglycosylated Transferrin

机译:用糖基化与糖基化的糖基化与甘油膜化的相互作用相互作用。

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Exposure of nanomaterials (NMs) to biological medium results in their direct interaction with biomolecules and the formation of a dynamic biomolecular layer known as the biomolecular corona. Despite numerous published data on nano-biointeractions, the role of protein glycosylation in the formation, characteristics, and fate of such nano-biocomplexes has been almost completely neglected, although most serum proteins are glycosylated. This study aimed to systematically investigate the differences in interaction of metallic NPs with glycosylated vs nonglycosylated transferrin. To reach this aim, we compared interaction mechanisms between differently sized, shaped, and surface-functionalized silver NMs and gold NMs to commercially available human transferrin (TRF), a glycosylated protein, and to its nonglycosylated recombinant form (ngTRF). Bovine serum albumin (BSA) was also included in the study for comparative purposes. Characterization of NMs was performed using transmission electron microscopy and dynamic and electrophoretic light scattering techniques. Fluorescence quenching and circular dichroism methods were used to evaluate protein binding constants on the nanosurface and conformational changes after the protein-NM interactions, respectively. Competitive binding of TRF, ngTRF, and BSA to the surface of different NMs was evaluated by separating them after extraction from protein corona by gel electrophoresis following quantification with a commercial protein assay. The results showed that the binding strength between NMs and transferrin and the changes in the secondary protein structure largely depend not only on NM physicochemical properties but also on the protein glycosylation status. Data gained by this study highlight the relevance of protein glycosylation for all future design, development, and efficacy and safety assessment of NMs.
机译:纳米材料(NMs)暴露在生物介质中会导致它们与生物分子直接相互作用,并形成一个动态的生物分子层,称为生物分子电晕。尽管发表了大量关于纳米生物相互作用的数据,但蛋白质糖基化在此类纳米生物复合物的形成、特征和命运中的作用几乎被完全忽视,尽管大多数血清蛋白质都是糖基化的。本研究旨在系统研究金属NP与糖基化和非糖基化转铁蛋白相互作用的差异。为了达到这一目的,我们比较了不同大小、形状和表面功能化的银NMs和金NMs与市售的人转铁蛋白(TRF)(一种糖基化蛋白质)及其非糖基化重组形式(ngTRF)之间的相互作用机制。出于比较目的,牛血清白蛋白(BSA)也包括在研究中。利用透射电子显微镜、动态和电泳光散射技术对NMs进行了表征。荧光猝灭法和圆二色谱法分别用于评估纳米表面上的蛋白质结合常数和蛋白质-纳米相互作用后的构象变化。TRF、ngTRF和BSA与不同NMs表面的竞争结合通过凝胶电泳从蛋白质冠状体中提取后分离出来,然后用商业蛋白质分析进行定量,从而进行评估。结果表明,NMs与转铁蛋白的结合强度和二级蛋白质结构的变化不仅在很大程度上取决于NM的理化性质,而且还取决于蛋白质的糖基化状态。本研究获得的数据强调了蛋白质糖基化与NMs的所有未来设计、开发、疗效和安全性评估的相关性。

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