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The Importance of Protonation in the Investigation of Protein Phosphorylation Using Raman Spectroscopy and Raman Optical Activity

机译:质子化在拉曼光谱和拉曼光学活性研究蛋白磷酸化中的重要性

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The effect of protonation on amino acid monomers and protein phosphorylation was studied by means of a combination of Raman scattering and Raman optical activity (ROA). In the past, identifying spectral variations in phosphorylated proteins arising from either the phosphate stretch or amide vibrational modes has proven to be challenging mainly due to the loss of amide and P(velence)O band intensity in the presence of phosphate. By contrast, we have developed a novel strategy based on the careful monitoring of the sample pH and thereby modified the protonation state, such that these difficulties can be overcome and phosphate-derived vibrations are readily visualized with both Raman and ROA. Variations in pH-dependent spectral sets of phosphorylated amino acid monomers serine and threonine demonstrated that the protonation state could be determined by the intensity of the monobasic (-OPO_(3)H~(-)) phosphate stretch band occurring at approx1080 cm~(-1) versus the dibasic (-OPO_(3)~(2-)) band measured at approx980 cm~(-1) in both Raman and ROA. Furthermore, by adjustment of the pH of aqueous samples of the phosphoprotein a-casein and comparing this result with dephosphorylated a-casein, spectral variations in phosphate stretch bands and amide bands could be easily determined. Consequently, structural variations due to both protonation and dephosphorylation could be distinguished, demonstrating the potential of Raman and ROA for future investigations of phosphoprotein structure and interactions.
机译:通过结合拉曼散射和拉曼光学活性(ROA)研究了质子化对氨基酸单体和蛋白质磷酸化的影响。过去,主要是由于在存在磷酸盐的情况下酰胺的损失和P(velence)O谱带强度的丧失,鉴定由磷酸盐延伸或酰胺振动模式引起的磷酸化蛋白质的光谱变化已证明具有挑战性。相比之下,我们已经基于对样品pH值的仔细监测,开发了一种新颖的策略,从而改变了质子化状态,从而可以克服这些困难,并且使用拉曼和ROA都能轻松观察到磷酸盐衍生的振动。磷酸化的氨基酸单体丝氨酸和苏氨酸的pH依赖光谱集的变化表明,质子化状态可以由在大约1080 cm〜()处发生的一价(-OPO_(3)H〜(-))磷酸根伸缩带的强度决定。 -1)与二元(-OPO_(3)〜(2-))谱带在拉曼和ROA中均在约980 cm〜(-1)处测得。此外,通过调节磷蛋白α-酪蛋白水溶液样品的pH并将该结果与去磷酸化α-酪蛋白进行比较,可以轻松确定磷酸伸展带和酰胺带的光谱变化。因此,可以区分由于质子化和去磷酸化而引起的结构变化,证明了拉曼和ROA在未来研究磷蛋白结构和相互作用方面的潜力。

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