Department of Chemistry, University of Illinois Chicago, Chicago, Illinois 60607, United States.
Laboratory of Integrative Neuroscience, University of Illinois Chicago, Chicago, Illinois 60607, United States.
J Am Soc Mass Spectrom. 2023 Aug 2;34(8):1593-1597. doi: 10.1021/jasms.3c00061. Epub 2023 Jul 9.
MALDI-TOF MS is a powerful tool to analyze biomolecules, owing to its soft ionization nature that generally results in simple spectra of singly charged ions. Implementation of the technology in the imaging mode provides a means to spatially map analytes in situ. Recently, a new matrix, DBDA (1,4-dibenzylidenebenzene-1,4-diamine) was reported to facilitate the ionization of free fatty acids in negative ion mode. Building on this finding, we sought to implement DBDA for MALDI mass spectrometry imaging studies in brain tissue and successfully map oleic acid, palmitic acid, stearic acid, docosahexaenoic acid, and arachidonic acid using mouse brain sections. Moreover, we hypothesized that DBDA would provide superior ionization for sulfatides, a class of sulfolipids with multiple biological functions. Herein, we also demonstrate that DBDA is ideal for MALDI mass spectrometry imaging of fatty acids and sulfatides in brain tissue sections. Additionally, we show enhanced ionization of sulfatides using DBDA compared with three different traditionally used MALDI matrices. Together these results provide new opportunities for studies to measure sulfatides by MALDI-TOF MS.
基质辅助激光解吸电离飞行时间质谱(MALDI-TOF MS)是一种强大的分析生物分子的工具,由于其软电离特性,通常会产生简单的单电荷离子谱。该技术在成像模式下的应用提供了一种原位分析物空间定位的手段。最近,一种新的基质 DBDA(1,4-二苄叉苯-1,4-二胺)被报道可促进负离子模式下游离脂肪酸的电离。基于这一发现,我们试图将 DBDA 用于脑组织的 MALDI 质谱成像研究,并成功地对油酸、棕榈酸、硬脂酸、二十二碳六烯酸和花生四烯酸进行了定位。此外,我们假设 DBDA 将为鞘糖脂(一类具有多种生物学功能的硫酸脂)提供更优越的电离。本文还证明,DBDA 非常适合脑组织切片中脂肪酸和鞘糖脂的 MALDI 质谱成像。此外,与三种不同的传统 MALDI 基质相比,我们发现 DBDA 能增强鞘糖脂的电离。这些结果为通过 MALDI-TOF MS 测量鞘糖脂提供了新的机会。