Department of Chemistry, University of California, Davis, Davis, CA 95616, USA.
Anal Biochem. 2012 May 15;424(2):87-96. doi: 10.1016/j.ab.2012.02.012. Epub 2012 Feb 25.
Mass spectrometry has been coupled with flash liquid chromatography to yield new capabilities for isolating nonchromophoric material from complicated biological mixtures. A flash liquid chromatography/tandem mass spectrometry (LC/MS/MS) method enabled fraction collection of milk oligosaccharides from biological mixtures based on composition and structure. The method is compatible with traditional gas pressure-driven flow flash chromatography widely employed in organic chemistry laboratories. The online mass detector enabled real-time optimization of chromatographic parameters to favor separation of oligosaccharides that would otherwise be indistinguishable from coeluting components with a nonspecific detector. Unlike previously described preparative LC/MS techniques, we have employed a dynamic flow connection that permits any flow rate from the flash system to be delivered from 1 to 200 ml/min without affecting the ionization conditions of the mass spectrometer. A new way of packing large amounts of graphitized carbon allowed the enrichment and separation of milligram quantities of structurally heterogeneous mixtures of human milk oligosaccharides (HMOs) and bovine milk oligosaccharides (BMOs). Abundant saccharide components in milk, such as lactose and lacto-N-tetraose, were separated from the rarer and less abundant oligosaccharides that have greater structural diversity and biological functionality. Neutral and acidic HMOs and BMOs were largely separated and enriched with a dual binary solvent system.
质谱已与快速液相色谱联用,为从复杂的生物混合物中分离非色素物质提供了新的功能。一种快速液相色谱/串联质谱(LC/MS/MS)方法能够根据组成和结构从生物混合物中分离乳寡糖。该方法与广泛应用于有机化学实验室的传统气压驱动流动快速色谱兼容。在线质谱检测器能够实时优化色谱参数,有利于分离否则会与非特异性检测器共洗脱的寡糖。与以前描述的制备 LC/MS 技术不同,我们采用了一种动态流量连接方式,允许从快速系统中以 1 至 200 ml/min 的任何流速输送,而不会影响质谱仪的电离条件。一种新的石墨化碳填充方式允许大量结构异构的人乳寡糖(HMO)和牛乳寡糖(BMO)混合物毫克量的富集和分离。乳中丰富的糖成分,如乳糖和乳-N-四糖,与结构多样性和生物学功能更大的稀有和较少的寡糖分离。中性和酸性 HMO 和 BMO 主要通过双二元溶剂系统分离和富集。