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非共价双键传感器用于不饱和脂肪酸的气相红外光谱学。

Non-covalent double bond sensors for gas-phase infrared spectroscopy of unsaturated fatty acids.

机构信息

Institut für Chemie und Biochemie, Freie Universität Berlin, 14195, Berlin, Germany.

Fritz-Haber-Institut der Max-Planck-Gesellschaft, 14195, Berlin, Germany.

出版信息

Anal Bioanal Chem. 2021 Jun;413(14):3643-3653. doi: 10.1007/s00216-021-03334-3. Epub 2021 May 6.

Abstract

The position and configuration of carbon-carbon double bonds in unsaturated fatty acids is crucial for their biological functions and influences health and disease. However, double bond isomers are not routinely distinguished by classical mass spectrometry workflows. Instead, they require sophisticated analytical approaches usually based on chemical derivatization and/or instrument modification. In this work, a novel strategy to investigate fatty acid double bond isomers (18:1) without prior chemical treatment or modification of the ion source was implemented by non-covalent adduct formation in the gas phase. Fatty acid adducts with sodium, pyridinium, trimethylammonium, dimethylammonium, and ammonium cations were characterized by a combination of cryogenic gas-phase infrared spectroscopy, ion mobility-mass spectrometry, and computational modeling. The results reveal subtle differences between double bond isomers and confirm three-dimensional geometries constrained by non-covalent ion-molecule interactions. Overall, this study on fatty acid adducts in the gas phase explores new avenues for the distinction of lipid double bond isomers and paves the way for further investigations of coordinating cations to increase resolution.

摘要

在不饱和脂肪酸中,碳-碳双键的位置和构型对于它们的生物功能至关重要,影响着健康和疾病。然而,经典的质谱工作流程通常无法区分双键异构体,这需要复杂的分析方法,通常基于化学衍生化和/或仪器改进。在这项工作中,我们提出了一种新策略,通过气相中非共价加合物的形成,无需对离子源进行预先的化学处理或修饰,来研究脂肪酸双键异构体(18:1)。通过低温气相红外光谱、离子淌度-质谱和计算建模相结合,对脂肪酸与钠离子、吡啶鎓离子、三甲铵离子、二甲铵离子和铵离子的加合物进行了表征。结果揭示了双键异构体之间的细微差异,并证实了由非共价离子-分子相互作用所约束的三维几何结构。总的来说,这项关于气相中脂肪酸加合物的研究为区分脂质双键异构体开辟了新途径,并为进一步研究配位阳离子以提高分辨率铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/77ea/8141490/830aad24ef70/216_2021_3334_Fig1_HTML.jpg

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