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Distinct Adsorption Configurations and Self-Assembly Characteristics of Fibrinogen on Chemically Uniform and Alternating Surfaces including Block Copolymer Nanodomains

机译:纤维蛋白原在包括嵌段共聚物纳米域在内的化学均匀和交替表面上的独特吸附构型和自组装特征

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摘要

Understanding protein–surface interactions is crucial to solid-state biomedical applications whose functionality is directly correlated with the precise control of the adsorption configuration, surface packing, loading density, and bioactivity of protein molecules. Because of the small dimensions and highly amphiphilic nature of proteins, investigation of protein adsorption performed on nanoscale topology can shed light on subprotein-level interaction preferences. In this study, we examine the adsorption and assembly behavior of a highly elongated protein, fibrinogen, on both chemically uniform (as-is and buffered HF-treated SiO2/Si, and homopolymers of polystyrene and poly(methyl methacrylate)) and varying (polystyrene-block-poly(methyl methacrylate)) surfaces. By focusing on high-resolution imaging of individual protein molecules whose configurations are influenced by protein–surface rather than protein–protein interactions, fibrinogen conformations characteristic to each surface are identified and statistically analyzed for structural similarities/differences in key protein domains. By exploiting block copolymer nanodomains whose repeat distance is commensurate with the length of the individual protein, we determine that fibrinogen exhibits a more neutral tendency for interaction with both polystyrene and poly(methyl methacrylate) blocks relative to the case of common globular proteins. Factors affecting fibrinogen–polymer interactions are discussed in terms of hydrophobic and electrostatic interactions. In addition, assembly and packing attributes of fibrinogen are determined at different loading conditions. Primary orientations of fibrinogen and its rearrangements with respect to the underlying diblock nanodomains associated with different surface coverage are explained by pertinent protein interaction mechanisms. On the basis of two-dimensional stacking behavior, a protein assembly model is proposed for the formation of an extended fibrinogen network on the diblock copolymer.
机译:了解蛋白质-表面相互作用对于固态生物医学应用至关重要,固态生物医学应用的功能与蛋白质分子的吸附构型,表面堆积,负载密度和生物活性的精确控制直接相关。由于蛋白质的尺寸小且具有高度两亲性,因此在纳米级拓扑结构上进行蛋白质吸附研究可以揭示亚蛋白质水平相互作用的偏好。在这项研究中,我们研究了高度伸长的蛋白质纤维蛋白原在化学均一性(按原样和经HF处理的SiO2 / Si,以及聚苯乙烯和聚(甲基丙烯酸甲酯)的均聚物)上的吸附和组装行为。聚苯乙烯嵌段聚(甲基丙烯酸甲酯)表面。通过专注于单个蛋白质分子的高分辨率成像,其构型受蛋白质-表面而不是蛋白质-蛋白质相互作用的影响,可以鉴定每个表面特征的纤维蛋白原构象,并对其在关键蛋白质结构域的结构相似性/差异进行统计分析。通过利用重复距离与单个蛋白质的长度相称的嵌段共聚物纳米域,我们确定相对于普通球状蛋白质,纤维蛋白原与聚苯乙烯和聚甲基丙烯酸甲酯嵌段表现出更中性的相互作用趋势。从疏水和静电相互作用的角度讨论了影响纤维蛋白原与聚合物相互作用的因素。另外,在不同的加载条件下确定纤维蛋白原的组装和堆积属性。纤维蛋白原的主要方向及其相对于与不同表面覆盖率相关的潜在二嵌段纳米域的重排由相关的蛋白质相互作用机制解释。基于二维堆叠行为,提出了一种蛋白质组装模型,用于在二嵌段共聚物上形成扩展的纤维蛋白原网络。

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