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Structural Assignment of Permethylated Oligosaccharide Subunits Using Sequential Tandem Mass Spectrometry

机译:使用顺序串联质谱法对全甲基化寡糖亚基的结构分配

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The sequential tandem mass spectrometry (MS↑(n)) capabilities offered by quadrupole ion trap instruments have been explored in a systematic study of permethylated oligosac-charides. Under collision-induced dissociation, protonated molecular species generated in the electrospray ionization mode yield simple and predictable mass spectra. Information on sequence, branching, and, to some extent, interglycosidic linkages can be deduced from fragments resulting from the cleavage of glycosidic bonds. simple rules for the structural assignment of carbohydrates have been established for the fragmentation of protonated species and subunits thereof and corroborated by ↑(18)O-labeling experiments. Moreover, sequential tandem mass spectrometry was demonstrated to allow the straightforward structural characterization of unknown carbohydrate moieties by comparing their CID spectra with those of a set of references. As the collision-induced dissociation patterns are not dependent on the number of prior tandem mass spectrometric steps, structures can be unambiguously assigned by match of the spectra. These findings establish the basis of MS↑(n) performed on a quadrupole ion trap instrument for elucidating structures of large carbohydrates, which can be virtually degraded in the mass spectrometer into smaller entities in one or several steps. This powerful technique has been applied, used in conjunction with specific CD↓(3) labeling, to the characterization of series of subunits generated from fucosylated and sialylated oligosaccharides, which are among the most important structures as far as biological activities are concerned.
机译:在对全甲基化寡糖的系统研究中,已经探索了四极杆离子阱仪器提供的连续串联质谱(MS↑(n))功能。在碰撞诱导的离解下,以电喷雾电离模式产生的质子化分子物种产生简单且可预测的质谱。关于序列,分支和在某种程度上糖苷间键的信息可以从糖苷键裂解产生的片段中推导出来。已经建立了碳水化合物结构分配的简单规则,用于质子化物种及其亚基的断裂,并通过↑(18)O标记实验得到了证实。此外,通过将串联碳水化合物质谱的CID光谱与一组参考文献的CID光谱进行比较,证明了顺序串联质谱法可以对未知碳水化合物部分进行简单的结构表征。由于碰撞引起的解离模式不取决于先前的串联质谱步骤的数量,因此可以通过光谱匹配来明确分配结构。这些发现建立了在四极离子阱仪器上进行的MS↑(n)的基础,该仪器用于阐明大型碳水化合物的结构,这些碳水化合物实际上可以在质谱仪中一步或几步降解为较小的实体。这项功能强大的技术已与特定的CD↓(3)标记结合使用,用于表征岩藻糖基化和唾液酸化寡糖产生的一系列亚基,就生物活性而言,它们是最重要的结构之一。

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