Center for Proteomics and Metabolomics, Leiden University Medical Center (LUMC), Albinusdreef 2, 2333 ZA, Leiden, The Netherlands.
Escuela de Medicina y Ciencias de la Salud, Universidad del Rosario, Bogotá, 111221, Colombia.
Anal Bioanal Chem. 2020 Apr;412(10):2353-2363. doi: 10.1007/s00216-020-02460-8. Epub 2020 Feb 14.
Lipidomics has emerged as a powerful technique to study cellular lipid metabolism. As the lipidome contains numerous isomeric and isobaric species resulting in a significant overlap between different lipid classes, cutting-edge analytical technology is necessary for a comprehensive analysis of lipid metabolism. Just recently, differential mobility spectrometry (DMS) has evolved as such a technology, helping to overcome several analytical challenges. We here set out to apply DMS and the Lipidyzer™ platform to obtain a comprehensive overview of leukocyte-related lipid metabolism in the resting and activated states. First, we tested the linearity and repeatability of the platform by using HL60 cells. We obtained good linearities for most of the thirteen analyzed lipid classes (correlation coefficient > 0.95), and good repeatability (%CV < 15). By comparing the lipidome of neutrophils (PMNs), monocytes (CD14+), and lymphocytes (CD4+), we shed light on leukocyte-specific lipid patterns as well as lipidomic changes occurring through differential stimulation. For example, at the resting state, PMNs proved to contain higher amounts of triacylglycerides compared to CD4+ and CD14+ cells. On the other hand, CD4+ and CD14+ cells contained higher levels of phospholipids and ceramides. Upon stimulation, diacylglycerides, hexosylceramides, phosphatidylcholines, phosphoethanolamines, and lysophosphoethanolamines were upregulated in CD4+ cells and PMNs, whereas CD14+ cells did not show significant changes. By exploring the fatty acid content of the significantly upregulated lipid classes, we mainly found increased concentrations of very long and polyunsaturated fatty acids. Our results indicate the usefulness of the Lipidyzer™ platform for studying cellular lipid metabolism. Its application allowed us to explore the lipidome of leukocytes. Graphical abstract.
脂质组学已成为研究细胞脂质代谢的有力技术。由于脂质组包含许多同分异构和等质量的物质,导致不同脂质类别的重叠非常严重,因此需要先进的分析技术才能全面分析脂质代谢。最近,差分迁移谱(DMS)已经发展成为这样一种技术,有助于克服一些分析挑战。我们在这里应用 DMS 和 Lipidyzer™平台来全面了解静止和激活状态下白细胞相关的脂质代谢。首先,我们使用 HL60 细胞测试了该平台的线性度和重复性。我们获得了大多数分析的 13 种脂质类别的良好线性度(相关系数>0.95),并且重复性良好(%CV<15)。通过比较中性粒细胞(PMN)、单核细胞(CD14+)和淋巴细胞(CD4+)的脂质组,我们揭示了白细胞特有的脂质模式以及通过差异刺激发生的脂质组变化。例如,在静止状态下,PMN 被证明含有比 CD4+和 CD14+细胞更高的三酰基甘油。另一方面,CD4+和 CD14+细胞含有更高水平的磷脂和神经酰胺。在刺激后,CD4+细胞和 PMN 中上调了二酰基甘油、己糖神经酰胺、磷脂酰胆碱、磷酸乙醇胺和溶血磷酸乙醇胺,而 CD14+细胞没有明显变化。通过探索显著上调的脂质类别的脂肪酸含量,我们主要发现了非常长链和多不饱和脂肪酸浓度的增加。我们的结果表明,Lipidyzer™平台可用于研究细胞脂质代谢。它的应用使我们能够探索白细胞的脂质组。