Poad Berwyck L J, Jekimovs Lachlan J, Young Reuben S E, Wongsomboon Puttandon, Marshall David L, Hansen Felicia K M, Fulloon Therese, Pfrunder Michael C, Dodgen Tyren, Ritchie Mark, Wong Stephen C C, Blanksby Stephen J
Central Analytical Research Facility, Queensland University of Technology, Brisbane 4001, Australia.
School of Chemistry and Physics, Queensland University of Technology, Brisbane 4000, Australia.
Anal Chem. 2023 Oct 31;95(43):15917-15923. doi: 10.1021/acs.analchem.3c02658. Epub 2023 Oct 17.
Many families of lipid isomers remain unresolved by contemporary liquid chromatography-mass spectrometry approaches, leading to a significant underestimation of the structural diversity within the lipidome. While ion mobility coupled to mass spectrometry has provided an additional dimension of lipid isomer resolution, some isomers require a resolving power beyond the capabilities of conventional platforms. Here, we present the application of high-resolution traveling-wave ion mobility for the separation of lipid isomers that differ in (i) the location of a single carbon-carbon double bond, (ii) the stereochemistry of the double bond ( or ), or, for glycerolipids, (iii) the relative substitution of acyl chains on the glycerol backbone (-position). Collisional activation following mobility separation allowed identification of the carbon-carbon double-bond position and -position, enabling confident interpretation of variations in mobility peak abundance. To demonstrate the applicability of this method, double-bond and -position isomers of an abundant phosphatidylcholine composition were resolved in extracts from a prostate cancer cell line and identified by comparison to pure isomer reference standards, revealing the presence of up to six isomers. These findings suggest that ultrahigh-resolution ion mobility has broad potential for isomer-resolved lipidomics and is attractive to consider for future integration with other modes of ion activation, thereby bringing together advanced orthogonal separations and structure elucidation to provide a more complete picture of the lipidome.
许多脂质异构体家族仍无法通过当代液相色谱 - 质谱方法得到解析,导致脂质组内结构多样性被严重低估。虽然离子淌度与质谱联用为脂质异构体的解析提供了一个额外的维度,但一些异构体需要的分辨能力超出了传统平台的能力范围。在此,我们展示了高分辨率行波离子淌度在分离脂质异构体中的应用,这些异构体在以下方面存在差异:(i)单个碳 - 碳双键的位置;(ii)双键的立体化学结构(顺式或反式);或者对于甘油脂质而言,(iii)甘油主链上酰基链的相对取代位置(-位)。淌度分离后的碰撞活化使得能够确定碳 - 碳双键位置和 - 位,从而能够可靠地解释淌度峰丰度的变化。为了证明该方法的适用性,在前列腺癌细胞系提取物中解析了一种丰富的磷脂酰胆碱组成的双键和 - 位异构体,并通过与纯异构体参考标准品进行比较进行了鉴定,结果显示存在多达六种异构体。这些发现表明,超高分辨率离子淌度在异构体解析脂质组学方面具有广阔的潜力,并且考虑将其与其他离子活化模式进行未来整合很有吸引力,从而将先进的正交分离和结构解析结合起来,以提供更完整的脂质组图谱。