Laine R A, Yoon E, Mahier T J, Abbas S, de Lappe B, Jain R, Matta K
Department of Biochemistry, Louisiana State University, Baton Rouge.
Biol Mass Spectrom. 1991 Sep;20(9):505-14. doi: 10.1002/bms.1200200902.
Certain linkage positions in oligosaccharides can be discerned by collision-activated dissociation mass spectrometry, rationalized by molecular modelling. Previous work on synthetic oligosaccharides has suggested that daughter ion patterns can distinguish among intact compounds which terminate in alpha-L-fucose and have a penultimate amino sugar. The current study indicates that these observations can be extended to oligosaccharides terminating in beta-D-galactose. In addition, we have observed that protonated, ammoniated and lithiated molecular ions all produce linkage-specific daughter ion spectra in these two sets of oligosaccharides. Sodiated molecular ions could be fragmented usefully under high collision energy offset conditions; potassiated ions were stable and not dissociable under conditions available in a triple-quadrupole instrument. We also show linkage discernment among the permethylated set of these six synthetic oligosaccharides. Methylated derivatives of this set of compounds give more useful product ions, including a 3-linkage specific ion. A novel relationship was noted by a plot of collision energy against (daughter ion/parent ion) ratio, which gave a unique slope for each of the non-reducing terminal linkage positions 3, 4 and 6 in the set of six compounds. The slope of this plot is related to the ability of each linkage position in the oligosaccharide to absorb collisional energy. Rotational freedom of the individual glycosidic linkage is hypothesized to play a role in this phenomenon.
寡糖中的某些连接位置可通过碰撞激活解离质谱法识别,并通过分子建模进行合理化分析。先前对合成寡糖的研究表明,子离子模式可以区分以α-L-岩藻糖结尾且倒数第二个为氨基糖的完整化合物。当前研究表明,这些观察结果可以扩展到以β-D-半乳糖结尾的寡糖。此外,我们观察到质子化、氨化和锂化的分子离子在这两组寡糖中均产生连接特异性子离子光谱。在高碰撞能量偏移条件下,钠化分子离子可以有效地裂解;在三重四极杆仪器可用的条件下,钾化离子稳定且不可解离。我们还展示了这六种合成寡糖的全甲基化组之间的连接识别。这组化合物的甲基化衍生物产生更有用的产物离子,包括一个3-连接特异性离子。通过绘制碰撞能量与(子离子/母离子)比率的关系图,发现了一种新的关系,该图为六种化合物组中每个非还原末端连接位置3、4和6给出了独特的斜率。该图的斜率与寡糖中每个连接位置吸收碰撞能量的能力有关。据推测,单个糖苷键的旋转自由度在这一现象中起作用。