Han Xianlin, Yang Kui, Yang Jingyue, Fikes Kora N, Cheng Hua, Gross Richard W
Division of Bioorganic Chemistry and Molecular Pharmacology, Washington University School of Medicine, St. Louis, Missouri 63110, USA.
J Am Soc Mass Spectrom. 2006 Feb;17(2):264-74. doi: 10.1016/j.jasms.2005.11.003. Epub 2006 Jan 18.
The external electric field induces a separation of cations from negative electrolyte ions in the infusate while differential ionization of molecular species that possess differential electrical propensities can be induced in either the positive- or negative-ion mode during the electrospray ionization process. These physical and electrical processes that occur in the electrospray ion source have been used to selectively ionize lipid classes possessing different electrical propensities that are now known as "intrasource separation and selective ionization". However, the chemical principles underlying charge-dependent alterations in ionization efficiencies responsible for the selective ionization of lipid classes are not known with certainty. Herein, we examined the multiple factors that contribute to intrasource separation and selective ionization of lipid classes under optimal instrumental conditions. We demonstrated that many different lipid classes could be selectively ionized in the ion source and that intrasource resolution of distinct molecular constituents was independent of lipid concentration, flow rate, and residual ions under most experimental conditions. Moreover, the presence of alkaline conditions facilitates the selective ionization of many lipid classes through a mechanism independent of the design of the ESI ion source. Collectively, this study provides an empirical foundation for understanding the chemical mechanisms underlying intrasource separation and selective ionization of lipid classes that can potentially be used for global analysis of cellular lipidomes without the need for chromatographic separation.
外部电场会使输注液中的阳离子与负电解质离子分离,而在电喷雾电离过程中,具有不同电学倾向的分子物种的差异电离可在正离子或负离子模式下诱导发生。电喷雾离子源中发生的这些物理和电学过程已被用于选择性地电离具有不同电学倾向的脂质类别,现在这被称为“源内分离和选择性电离”。然而,导致脂质类别选择性电离的电离效率中与电荷相关的变化背后的化学原理尚不确定。在此,我们研究了在最佳仪器条件下促成脂质类别源内分离和选择性电离的多种因素。我们证明,许多不同的脂质类别可在离子源中被选择性电离,并且在大多数实验条件下,不同分子成分的源内分辨率与脂质浓度、流速和残留离子无关。此外,碱性条件的存在通过一种独立于电喷雾电离(ESI)离子源设计的机制促进了许多脂质类别的选择性电离。总体而言,本研究为理解脂质类别源内分离和选择性电离背后的化学机制提供了一个经验基础,这可能用于无需色谱分离的细胞脂质组的全局分析。