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Hydrophobicity-dependent effects of polymers on different protein conformations

机译:聚合物对不同蛋白质构象的疏水性依赖性效应

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We have previously shown that increasing the hydrophobicity of PEG by adding a methyl group to every other monomer unit allowed the resulting polymer to alter protein folding and inhibit protein aggregation to amyloid fibrils. As a continuation of this work, we analyzed here the effects of this substitution on the structural properties of proteins capable of adopting multiple conformations (folded, and different partially folded states, e.g. a molten globule-like intermediate) at mild denaturing conditions. To this end, we have selected several proteins (a-lactalbumin, apomyoglobin, carbonic anhydrase, staphylococcal nuclease, and cytochrome c) and examined them at different conditions where they exist in different partially folded conformations (pH, temperature, salt concentrations, presence of cofactors). We were especially interested in the relative sensitivity of partially folded (e.g. molten globule) conformations of these proteins to the presence of polymers as these conformations are often the most sensitive to the environment. We used far-UV CD to test the changes in the protein secondary structure, near-UV CD to monitor changes in the tertiary structure, and quenching of intrinsic protein fluorescence by acrylamide to evaluate changes in the solvent accessibility of aromatic residues. We found that the complexity of the effect of polymers on protein structure cannot be ascribed solely to macromolecular crowding since the behavior of proteins in solutions containing polymers is dependent on protein and polymer structure. We also cannot exclude the possibility that the structures of both proteins and polymers determine the balance between attractive and repulsive forces that drive protein-polymer interactions.
机译:我们之前已经表明,通过将甲基添加到每个其他单体单元中,增加PEG的疏水性允许得到的聚合物来改变蛋白质折叠并抑制蛋白质聚集对淀粉样蛋白原纤维。作为这项工作的延续,我们分析了该取代对能够采用多个构象(折叠和不同部分折叠状态的蛋白质结构性质的影响,所述蛋白质在轻度变性条件下在轻度变性条件下进行多重构象(折叠和不同部分折叠状态。为此,我们选择了几种蛋白质(A-乳白蛋白酶,亚胺蛋白,碳酸酐酶,葡萄球菌核酸酶和细胞色素C),并在不同条件下检查它们,在不同部分折叠的构象(pH,温度,盐浓度,存在Cofactors)。我们特别感兴于这些蛋白质对这些蛋白质的部分折叠(例如熔化球)构象的相对敏感性,因为这些构象通常对环境最敏感。我们使用FAR-UV CD来测试蛋白质二级结构的变化,接近UV CD,以监测三级结构的变化,并通过丙烯酰胺淬灭内在蛋白质荧光,从而评价芳族残基的溶剂可接受性的变化。我们发现聚合物对蛋白质结构对蛋白质结构作用的复杂性不能仅仅归因于大分子挤在含有聚合物溶液中的蛋白质的行为取决于蛋白质和聚合物结构。我们也不能排除两种蛋白质和聚合物的结构的可能性决定了驱动蛋白质聚合物相互作用的吸引力和排斥力之间的平衡。

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  • 来源
    《RSC Advances 》 |2016年第49期| 共13页
  • 作者单位

    Univ S Florida Dept Mol Med Tampa FL 33612 USA;

    Univ S Florida Dept Mol Med Tampa FL 33612 USA;

    Univ Fed Rural Pernambuco Acad Unit Garanhuns BR-55296901 Garanhuns PE Brazil;

    Univ Fed Rural Pernambuco Dept Morphol &

    Anim Physiol BR-52171900 Recife PE Brazil;

    Univ S Florida Dept Mol Med Tampa FL 33612 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学 ;
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