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Probing adsorption and aggregation of insulin at a poly(acrylic acid) brush

机译:探索胰岛素在聚丙烯酸刷上的吸附和聚集

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A planar poly(acrylic acid) (PAA) brush provides an unusual substrate for the unspecific immobilization of proteins on material surfaces. At neutral pH-values, proteins adsorb at a PAA brush when the ionic strength of the protein solution is low. In contrast, raising the ionic strength to a few 100 mM transforms a PAA brush into a rather protein-resistant surface coating. Moreover, a PAA brush represents a mild environment for adsorbed proteins which preserves their secondary structure and biological activity. In this study, we focus on the biocompatibility of a PAA brush with an insulin solution. Insulin can form amyloid fibrils, which may also be triggered by interfaces. Using neutron reflectometry and attenuated total reflection-Fourier transform infrared (ATR-FTIR) spectroscopy, the effects of pD value, ionic strength, and glycerol concentration on the density profile and the secondary structure of adsorbed insulin molecules at a PAA brush have been studied. At pD 7, insulin adsorbs at a PAA brush despite its negative net charge. As has been found for other proteins in earlier studies, increasing the ionic strength of the insulin solution to 500 mM decreases the amount of adsorbed insulin drastically. In contrast, at pD 2, addition of salt to the insulin solution induces a thick insulin adsorbate at a PAA brush suggesting both protein-brush and protein-protein interactions, i.e., insulin adsorption and aggregation to be effective. However, in the presence of 2 M glycerol, insulin adsorption is largely suppressed. Furthermore, no major alterations of the secondary structure of adsorbed insulin can be detected by ATR-FTIR spectroscopy under all conditions studied. Hence, the performed experiments demonstrate that a PAA brush does not promote the formation of insulin amyloid structures, which represents a fundamentally new aspect of the biocompatibility of this material surface coating.
机译:平面聚丙烯酸(PAA)刷为蛋白质在材料表面上的非特异性固定提供了一种不寻常的基质。在中性pH值下,当蛋白质溶液的离子强度较低时,蛋白质会吸附在PAA刷上。相反,将离子强度提高到几百mM会使PAA刷变成相当耐蛋白质的表面涂层。此外,PAA刷代表了吸附蛋白质的温和环境,可保留其二级结构和生物活性。在这项研究中,我们专注于PAA刷与胰岛素溶液的生物相容性。胰岛素可以形成淀粉样蛋白原纤维,也可能由界面触发。使用中子反射计和衰减全反射傅里叶红外光谱(ATR-FTIR),研究了pD值,离子强度和甘油浓度对PAA刷上吸附的胰岛素分子的密度分布和二级结构的影响。在pD 7时,尽管其净负电荷,胰岛素仍会吸附在PAA刷上。正如在早期研究中发现的其他蛋白质一样,将胰岛素溶液的离子强度提高到500 mM会极大地减少胰岛素的吸附量。相反,在pD 2处,在胰岛素溶液中加盐会在PAA刷上引起浓厚的胰岛素吸附,表明蛋白质刷和蛋白质-蛋白质相互作用(即胰岛素吸附和聚集)均有效。然而,在2M甘油的存在下,胰岛素吸附被大大抑制。此外,在所有研究的条件下,通过ATR-FTIR光谱都无法检测到吸附的胰岛素二级结构的重大变化。因此,进行的实验表明,PAA刷不会促进胰岛素淀粉样结构的形成,这代表了这种材料表面涂层生物相容性的一个根本新方面。

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