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深度脂质组学和不饱和脂质异构体的分子成像:以 mCPBA 环氧化引发的通用策略。

Deep Lipidomics and Molecular Imaging of Unsaturated Lipid Isomers: A Universal Strategy Initiated by mCPBA Epoxidation.

机构信息

National Taiwan University Hospital and College of Medicine , Taipei 100 , Taiwan.

出版信息

Anal Chem. 2019 Sep 17;91(18):11905-11915. doi: 10.1021/acs.analchem.9b02667. Epub 2019 Aug 26.

Abstract

Cellular lipidome is highly regulated through lipogenesis, rendering diverse double-bond positional isomers (C═C isomer) of a given unsaturated lipid species. In recent years, there are increasing reports indicating the physiological roles of C═C isomer compositions associated with diseases, while the biochemistry has not been broadly investigated due to the challenge in characterizing lipid isomers inherent to conventional mass spectrometry-based lipidomics. To address this challenge, we reported a universal, user-friendly, derivatization-based strategy, (CPBA poxidation for ipid ouble-bond dentification), which enables both large-scale identification and spatial mapping of biological C═C isomers using commercial mass spectrometers without any instrument modification. With the developed liquid-chromatography mass spectrometry (LC-MS) lipidomics workflow, we elucidated more than 100 isomers among monounsaturated and polyunsaturated fatty acids and glycerophospholipids in human serum, where uncommon isomers of low abundance were quantified for the first time. The capability of MELDI-LC-MS in lipidome analysis was further demonstrated using the differentiated 3T3-L1 adipocytes, providing an insight into the cellular lipid reprogramming upon stearoyl-coenzyme A desaturase 1 (SCD1) inhibition. Finally, we highlighted the versatility of MELDI coupled with ambient mass spectrometry imaging to spatially resolve cancer-associated alteration of lipid isomers in a metastatic mouse tissue section. Our results suggested that MELDI will contribute to current lipidomics pipelines with a deeper level of structural information, allowing us to investigate the underlying lipid biochemistry.

摘要

细胞脂质组通过脂肪生成受到高度调节,从而产生给定不饱和脂质种类的多种双键位置异构体(C═C 异构体)。近年来,越来越多的报告表明与疾病相关的 C═C 异构体组成具有生理作用,而由于基于常规质谱脂质组学的脂质异构体表征具有挑战性,因此生物化学尚未得到广泛研究。为了解决这一挑战,我们报告了一种通用的、用户友好的衍生化策略,(CPBA 氧化用于脂质双键鉴定),该策略可使用商业质谱仪对生物 C═C 异构体进行大规模鉴定和空间定位,而无需对仪器进行任何修改。通过开发的液相色谱质谱(LC-MS)脂质组学工作流程,我们在人血清中的单不饱和和多不饱和脂肪酸和甘油磷脂中阐明了 100 多种异构体,其中首次对低丰度的罕见异构体进行了定量。MELDI-LC-MS 在脂质组分析中的能力还通过分化的 3T3-L1 脂肪细胞得到了进一步证明,为 SCD1 抑制后细胞脂质重编程提供了深入的了解。最后,我们强调了 MELDI 与环境质谱成像相结合的多功能性,以空间解析转移性小鼠组织切片中与癌症相关的脂质异构体改变。我们的结果表明,MELDI 将通过更深入的结构信息为当前的脂质组学管道做出贡献,使我们能够研究潜在的脂质生物化学。

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