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Adsorption-induced changes in enzyme bioactivity correlated with adsorbed protein orientation and conformation.

机译:吸附诱导的酶生物活性变化与吸附的蛋白质方向和构象有关。

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摘要

Systems using immobilized enzymes are attractive for a wide range of industrial and medical applications because they allow for fabrication of stable, reusable substrates with a highly specific functionality. The performance of these systems is greatly influenced by the orientation and conformation of the immobilized enzymes. To investigate these relationships, we have developed and applied methods to quantitatively assess the secondary structure of adsorbed enzyme layers on planar surfaces using circular dichroism (CD) spectropolarimetry and evaluate their bioactivity using colorimetric assays. When combined with knowledge of an enzyme's native structure, these methods provide a means to correlate changes in enzyme bioactivity post-adsorption with its adsorbed orientation and conformation. Using this approach, we investigated the adsorption behavior of a set of model enzymes [trypsin (TRP; 23.8 kDa), lysozyme (HEWL; 14.4 kDA), xylanase (XYL; 21.3 kDa), and glucose oxidase (GOx; 160 kDa)] on OH-, CH3-, NH2-, and COOH-terminated alkanethiol self-assembled monolayer (SAM) surfaces. The bioactivities of the small proteins, TRP, HEWL, and XYL, had pronounced variations between the different SAM surfaces despite their structural stability, highlighting the role of adsorbed orientation on bioactivity. In contrast, GOx, which is a much larger protein, exhibited wide variations in both its structure and bioactivity after adsorption, with adsorption-induced conformational changes actually enhancing its bioactivity. In order to gain further insights into adsorbed orientation and conformation, adsorbed HEWL and GOx layers on the various SAMs were chemically modified with dimethyl(2-hydroxy-5-nitrobenzyl)sulfonium bromide (DHNBS), which selectively labels solvent accessible tryptophan residues. Analysis of tryptophans labeled when the protein is in solution vs. when adsorbed can provide insights into the orientation of the adsorbed protein and adsorption-induced changes in its tertiary structure. The ratio of modified tryptophans per HEWL molecule decreased on every surface in comparison to the free floating protein, indicating that these hydrophobic residues were interacting with the surface, rendering them solvent inaccessible. Furthermore, it suggests that the protein was not exposing new tryptophans to solution due to adsorption-induced unfolding. In contrast to HEWL, the number of modified tryptophans per GOx molecule increased after adsorption on the four SAMs, which clearly shows that the tertiary structure of GOx is significantly altered by adsorption. These results reinforce the CD data that GOx undergoes substantial conformational changes upon adsorption causing previously inaccessible residues to be solvent accessible post-adsorption. These results provide new insights into protein-surface interactions at the molecular level and demonstrate that adsorption can either promote or inhibit bioactivity depending on how the surface chemistry influences the orientation and conformational state of the protein on the surface.
机译:使用固定化酶的系统对广泛的工业和医学应用具有吸引力,因为它们允许制造具有高度特定功能的稳定,可重复使用的底物。这些系统的性能在很大程度上受到固定化酶的方向和构象的影响。为了研究这些关系,我们开发并应用了方法,使用圆二色性(CD)光谱极化法定量评估平面上吸附的酶层的二级结构,并使用比色分析评估其生物活性。当与酶的天然结构的知识相结合时,这些方法提供了一种将酶吸附后生物活性的变化与其吸附的方向和构象相关联的方法。使用这种方法,我们研究了一组模型酶[胰蛋白酶(TRP; 23.8 kDa),溶菌酶(HEWL; 14.4 kDA),木聚糖酶(XYL; 21.3 kDa)和葡萄糖氧化酶(GOx; 160 kDa)]的吸附行为。在OH-,CH3-,NH2-和COOH封端的烷硫醇自组装单层(SAM)表面上形成。尽管小蛋白TRP,HEWL和XYL具有结构稳定性,但它们的生物活性却在不同的SAM表面之间具有明显的变化,突出了吸附方向对生物活性的作用。相反,GOx是一种大得多的蛋白质,吸附后其结构和生物活性均表现出很大的差异,而吸附诱导的构象变化实际上增强了其生物活性。为了进一步了解吸附的取向和构象,使用二甲基(2-羟基-5-硝基苄基)溴化ulf(DHNBS)对各种SAM上的吸附的HEWL和GOx层进行了化学修饰,后者选择性地标记了溶剂可接近的色氨酸残基。分析蛋白质在溶液中与被吸附时所标记的色氨酸,可以洞悉被吸附蛋白质的方向以及被吸附诱导的三级结构变化。与游离的浮动蛋白相比,每个HEWL分子中每个细胞的修饰色氨酸的比率都降低了,这表明这些疏水残基正在与表面相互作用,从而使溶剂难以接近。此外,这表明由于吸附诱导的展开,该蛋白质没有使新的色氨酸暴露于溶液中。与HEWL相反,在四个SAM上吸附后,每个GOx分子修饰的色氨酸的数量增加,这清楚地表明GOx的三级结构被吸附显着改变。这些结果增强了CD数据,即GOx吸附后会发生构象变化,从而导致先前难以接近的残留物在吸附后成为溶剂可接近的。这些结果提供了在分子水平上蛋白质-表面相互作用的新见解,并表明吸附可以促进或抑制生物活性,这取决于表面化学如何影响蛋白质在表面上的取向和构象状态。

著录项

  • 作者

    Fears, Kenan Patrick.;

  • 作者单位

    Clemson University.;

  • 授予单位 Clemson University.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 133 p.
  • 总页数 133
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;
  • 关键词

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