Department of Chemistry, University of Georgia, Athens, GA, USA.
Genome Center of Wisconsin, University of Wisconsin-Madison, Madison, WI, 53706, USA.
J Am Soc Mass Spectrom. 2017 Sep;28(9):1844-1854. doi: 10.1007/s13361-017-1709-9. Epub 2017 Jun 6.
The structural characterization of sulfated glycosaminoglycan (GAG) carbohydrates remains an important target for analytical chemists attributable to challenges introduced by the natural complexity of these mixtures and the defined need for molecular-level details to elucidate biological structure-function relationships. Tandem mass spectrometry has proven to be the most powerful technique for this purpose. Previously, electron detachment dissociation (EDD), in comparison to other methods of ion activation, has been shown to provide the largest number of useful cleavages for de novo sequencing of GAG oligosaccharides, but such experiments are restricted to Fourier transform ion cyclotron resonance mass spectrometers (FTICR-MS). Negative electron transfer dissociation (NETD) provides similar fragmentation results, and can be achieved on any mass spectrometry platform that is designed to accommodate ion-ion reactions. Here, we examine for the first time the effectiveness of NETD-Orbitrap mass spectrometry for the structural analysis of GAG oligosaccharides. Compounds ranging in size from tetrasaccharides to decasaccharides were dissociated by NETD, producing both glycosidic and cross-ring cleavages that enabled the location of sulfate modifications. The highly-sulfated, heparin-like synthetic GAG, Arixtra, was also successfully sequenced by NETD. In comparison to other efforts to sequence GAG chains without fully ionized sulfate constituents, the occurrence of sulfate loss peaks is minimized by judicious precursor ion selection. The results compare quite favorably to prior results with electron detachment dissociation (EDD). Significantly, the duty cycle of the NETD experiment is sufficiently short to make it an effective tool for on-line separations, presenting a straightforward path for selective, high-throughput analysis of GAG mixtures. Graphical Abstract ᅟ.
糖胺聚糖(GAG)碳水化合物的结构特征仍然是分析化学家的一个重要目标,这归因于这些混合物的天然复杂性带来的挑战,以及阐明生物结构-功能关系所需的分子水平细节。串联质谱已被证明是最有效的技术。以前,与其他离子活化方法相比,电子脱附解离(EDD)已被证明可以为 GAG 寡糖的从头测序提供最多数量的有用裂解,但此类实验仅限于傅里叶变换离子回旋共振质谱仪(FTICR-MS)。负电子转移解离(NETD)提供类似的碎裂结果,并且可以在任何设计用于容纳离子-离子反应的质谱平台上实现。在这里,我们首次考察了 NETD-Orbitrap 质谱法在 GAG 寡糖结构分析中的有效性。通过 NETD 解离大小从四糖到十糖的化合物,产生糖苷和交联环裂解,从而能够确定硫酸酯修饰的位置。高度硫酸化的肝素样合成 GAG,Arixtra,也通过 NETD 成功测序。与其他不将完全电离的硫酸盐成分纳入 GAG 链测序的努力相比,通过明智的前体离子选择,最小化了硫酸盐损失峰的出现。结果与电子脱附解离(EDD)的先前结果相当。重要的是,NETD 实验的占空比足够短,可以使其成为在线分离的有效工具,为 GAG 混合物的选择性、高通量分析提供了直接途径。