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Understanding glycoprotein behaviours using Raman and Raman optical activity spectroscopies: Characterising the entanglement induced conformational changes in oligosaccharide chains of mucin

机译:使用拉曼和拉曼光学活性光谱学了解糖蛋白行为:表征缠结诱导的粘蛋白寡糖链构象变化

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We illustrate the great potential of Raman and ROA spectroscopies for investigating the structure and organisation of glycoproteins and the complex matrices they can form. In combination these spectroscopic techniques are sensitive to changes in conformation revealing details of secondary and tertiary structures, probing hydrogen bonding interactions, as well as resolving side chain orientation and the absolute configuration of chiral substructures. To demonstrate this potential we have characterised the structural changes in a complex glycoprotein, mucin. Spectral changes were observed during the entanglement transition as the mucin concentration was increased. By applying two-dimensional correlation analysis (2DCos) to the ROA and Raman concentration-dependent spectral sets delicate transitions in mucin conformation could also be determined. From ~ 20-40 mg/ml conformational transitions assigned mainly to the sugar N-acetyl-d-galactosamine (GalNAc), which is the linking saccharide unit to the protein backbone, were monitored. Further changes in local oligosaccharide conformation above 40 mg/ml were also monitored, together with other structural transitions observed in the protein core, particularly β-structure formation. Consequently, these spectral techniques were shown to monitor the formation of transient entanglements formed by brush-brush interactions between oligosaccharide combs of mucin molecules identifying changes in both carbohydrate and protein moieties. This work clearly shows how these methods can be used to elucidate fresh insights into the complex behaviour of these large complex molecules.
机译:我们说明了拉曼和ROA光谱学在研究糖蛋白的结构和组织以及它们可以形成的复杂基质方面的巨大潜力。这些光谱技术组合起来对构象变化敏感,揭示了二级和三级结构的细节,探测氢键相互作用以及解析侧链取向和手性亚结构的绝对构型。为了证明这种潜力,我们已经表征了复杂糖蛋白粘蛋白的结构变化。随着粘蛋白浓度的增加,在纠缠过渡期间观察到光谱变化。通过对ROA和拉曼浓度依赖的光谱集应用二维相关分析(2DCos),还可以确定粘蛋白构象中的精细过渡。从〜20-40 mg / ml的构象转变主要被分配给糖N-乙酰基-d-半乳糖胺(GalNAc),后者是糖单元与蛋白质骨架的连接部分。还监测了高于40 mg / ml的局部低聚糖构象的进一步变化,以及蛋白质核心中观察到的其他结构转变,尤其是β结构的形成。因此,这些光谱技术显示出可以监测由粘蛋白分子的寡糖梳之间的刷子-刷子相互作用形成的瞬时纠缠的形成,从而确定了碳水化合物和蛋白质部分的变化。这项工作清楚地表明了如何使用这些方法阐明对这些大复杂分子的复杂行为的新鲜见解。

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