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手性分辨质谱成像分析酸性磷脂

Isomer-Resolved Mass Spectrometry Imaging of Acidic Phospholipids.

机构信息

The Maastricht MultiModal Molecular Imaging (M4I) institute, Division of Imaging Mass Spectrometry (IMS), Maastricht University, 6229 ER Maastricht, The Netherlands.

Central Analytical Research Facility, Queensland University of Technology, Brisbane, Queensland 4000, Australia.

出版信息

J Am Soc Mass Spectrom. 2023 Oct 4;34(10):2269-2277. doi: 10.1021/jasms.3c00192. Epub 2023 Aug 15.

Abstract

The biological functions of lipids are entirely dependent on their molecular structures with even small changes in structure─such as different sites of unsaturation─providing critical markers for changes in the underlying metabolism. Conventional mass spectrometry imaging (MSI) approaches, however, face the twin challenges of mixture and structural complexity and are typically unable to differentiate lipid isomers that differ only in the position(s) of carbon-carbon double bonds. Recent coupling of ozone-induced dissociation (OzID) with matrix-assisted laser desorption/ionization (MALDI)-MSI has demonstrated the potential to map changes in individual double-bond isomers, thus enabling visualization of the modulation in lipid desaturation in adjacent tissue types. This has, to date, only been performed in positive-ion mode due to a generally higher abundance of phosphatidylcholines (PC) in mammalian tissues and the efficient desorption/ionization of this lipid subclass. Many other glycerophospholipids (GPLs), however, are better detected in negative-ion mode as deprotonated anions. Recently, OzID has been implemented on a traveling-wave ion-mobility mass spectrometer (Waters, SYNAPT G2-S) that provides a 50-fold increase in the rate of the gas-phase reaction between ionized lipids and ozone and a commensurate increase in sensitivity for isomer-resolved mass spectrometry. These gains are exploited here to interrogate the distributions of anionic GPL isomers in biological tissues, covering the subclasses phosphatidylserine (PS), phosphatidylethanolamine (PE), phosphatidylinositol (PI), phosphatidylglycerol (PG), and phosphatidic acid (PA). Exploiting both ozone- and collision-induced dissociation in a single acquisition simultaneously identifies sites of unsaturation and acyl chain composition from the same mass spectrum.

摘要

脂质的生物学功能完全取决于其分子结构,即使结构上的微小变化——例如不饱和位置的不同——也为代谢底层的变化提供了关键标记。然而,传统的质谱成像(MSI)方法面临混合物和结构复杂性的双重挑战,通常无法区分仅在碳-碳双键位置不同的脂质异构体。最近,臭氧诱导解离(OzID)与基质辅助激光解吸/电离(MALDI)-MSI 的耦合已经证明了对单个双键异构体进行成像的潜力,从而能够可视化脂质去饱和在相邻组织类型中的调制。到目前为止,这仅在正离子模式下进行,因为哺乳动物组织中磷酯酰胆碱(PC)的丰度通常较高,并且该脂质亚类的解吸/电离效率较高。然而,许多其他甘油磷脂(GPL)在负离子模式下作为去质子阴离子更好地被检测到。最近,OzID 已经在飞行波离子迁移质谱仪(Waters,SYNAPT G2-S)上实现,该质谱仪提供了 50 倍的电离脂质与臭氧之间气相反应的速率提高,以及对异构体分辨质谱的相应灵敏度提高。在这里,这些增益被用来检测生物组织中阴离子 GPL 异构体的分布,涵盖了亚类磷脂酰丝氨酸(PS)、磷脂酰乙醇胺(PE)、磷脂酰肌醇(PI)、磷脂酰甘油(PG)和磷脂酸(PA)。在单个采集过程中同时利用臭氧和碰撞诱导解离,可以从同一质谱中确定不饱和位置和酰基链组成。

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