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等效碳数和类间保留时间转换可增强非靶向临床脂质组学中的脂质鉴定。

Equivalent Carbon Number and Interclass Retention Time Conversion Enhance Lipid Identification in Untargeted Clinical Lipidomics.

机构信息

Adelaide Medical School, Faculty of Health and Medical Sciences, University of Adelaide, Adelaide 5000, South Australia, Australia.

Vascular Research Centre, South Australian Health and Medical Research Institute, Adelaide 5000, South Australia, Australia.

出版信息

Anal Chem. 2022 Mar 1;94(8):3476-3484. doi: 10.1021/acs.analchem.1c03770. Epub 2022 Feb 14.

Abstract

Chromatography is often used as a method for reducing sample complexity prior to analysis by mass spectrometry, and the use of retention time (RT) is becoming increasingly popular to add valuable supporting information in lipid identification. The RT of lipids with the same headgroup in reversed-phase separation can be predicted using the equivalent carbon number (ECN) model. This model describes the effects of acyl chain length and degree of saturation on lipid RT. For the first time, we have found a robust correlation in the chromatographic separation of lipids with different headgroups that share the same fatty acid motive. This relationship can be exploited to perform interclass RT conversion (IC-RTC) by building a model from RT measurements from lipid standards that allows the prediction of RT of one lipid subclass based on another. Here, we utilize ECN modeling and IC-RTC to build a glycerophospholipid RT library with 517 entries based on 136 tandem mass spectrometry-characterized lipid RTs from NIST SRM-1950 plasma and lipid standards. The library was tested on a patient cohort undergoing coronary artery bypass grafting surgery ( = 37). A total of 156 unique circulating glycerophospholipids were identified, of which 52 (1 LPG, 24 PE, 5 PG, 18 PI, and 9 PS) were detected with IC-RTC, thereby demonstrating the utility of this technique for the identification of lipid species not found in commercial standards.

摘要

色谱法通常用于在通过质谱分析之前降低样品复杂性的方法,并且越来越多地使用保留时间 (RT) 来添加有价值的脂质鉴定辅助信息。在反相分离中,具有相同头基的脂质的 RT 可以使用等效碳数 (ECN) 模型来预测。该模型描述了酰基链长和饱和度对脂质 RT 的影响。我们首次发现具有相同脂肪酸基的不同头基的脂质在色谱分离中有很强的相关性。这种关系可用于通过从脂质标准品的 RT 测量值构建模型来进行类间 RT 转换 (IC-RTC),从而根据另一个脂质亚类预测一个脂质亚类的 RT。在这里,我们利用 ECN 建模和 IC-RTC 构建了一个基于 NIST SRM-1950 血浆和脂质标准品中 136 个串联质谱表征的脂质 RT 的甘油磷脂 RT 库,该库有 517 个条目。该库在接受冠状动脉旁路移植手术的患者队列(n = 37)中进行了测试。共鉴定出 156 种独特的循环甘油磷脂,其中 52 种(1 LPG、24 PE、5 PG、18 PI 和 9 PS)通过 IC-RTC 检测到,从而证明了该技术在鉴定商业标准中未发现的脂质物种方面的实用性。

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