Gabryelski Wojciech, Froese Kenneth L
Department of Public Health Sciences, University of Alberta, Edmonton, Alberta, Canada.
J Am Soc Mass Spectrom. 2003 Mar;14(3):265-77. doi: 10.1016/S1044-0305(03)00002-3.
A challenging aspect of structural elucidation of carbohydrates is gaining unambiguous information for anomers, linkage, and position isomers. Such isomers with identical mass can't be easily distinguished in mass spectrometry and a separation step is required prior to mass spectrometry identification. In our laboratory, gas-phase separation and differentiation of anomers, linkage, and position isomers of disaccharides was achieved using High-Field Asymmetric Waveform Ion Mobility Spectrometry (FAIMS). The FAIMS method responds to changes in ion mobility at high field rather than absolute values of ion mobility, and was shown to provide efficient separation and identification of disaccharide isomers at high sensitivity. Separation of analyzed disaccharide isomers can be accomplished at low nM level in a matter of seconds without sample purification or fractionation. Capability for examining a large population of ionic species of disaccharides by this method allowed for correlating structural details of disaccharide isomers with their separation properties in FAIMS. Results for disaccharide isomers indicate that this method could be applied to a larger group of carbohydrates.
碳水化合物结构解析的一个具有挑战性的方面是获得有关异头物、连接方式和位置异构体的确切信息。在质谱分析中,具有相同质量的此类异构体不易区分,在进行质谱鉴定之前需要进行分离步骤。在我们实验室中,使用高场不对称波形离子迁移谱(FAIMS)实现了二糖异头物、连接方式和位置异构体的气相分离与区分。FAIMS方法响应高场下离子迁移率的变化而非离子迁移率的绝对值,并且已证明能够以高灵敏度对二糖异构体进行有效分离和鉴定。无需样品纯化或分级分离,在数秒内就能以低纳摩尔水平完成分析的二糖异构体的分离。通过该方法检测大量二糖离子种类的能力,使得二糖异构体的结构细节与其在FAIMS中的分离特性相互关联成为可能。二糖异构体的结果表明,该方法可应用于更大类别的碳水化合物。