Le Faouder Pauline, Soullier Julia, Tremblay-Franco Marie, Tournadre Anthony, Martin Jean-François, Guitton Yann, Carlé Caroline, Caspar-Bauguil Sylvie, Denechaud Pierre-Damien, Bertrand-Michel Justine
MetaboHUB-MetaToul-Lipidomique, MetaboHUB-ANR-11-INBS-0010, Inserm U1297/Université Paul Sabatier Toulouse III, 31432 Toulouse, France.
MetaboHUB-MetaToul-Axiom, MetaboHUB-ANR-11-INBS-0010, INRAE Toxalim, Université Paul Sabtier, 31027 Toulouse, France.
Metabolites. 2021 May 11;11(5):305. doi: 10.3390/metabo11050305.
Lipids are essential cellular constituents that have many critical roles in physiological functions. They are notably involved in energy storage and cell signaling as second messengers, and they are major constituents of cell membranes, including lipid rafts. As a consequence, they are implicated in a large number of heterogeneous diseases, such as cancer, diabetes, neurological disorders, and inherited metabolic diseases. Due to the high structural diversity and complexity of lipid species, the presence of isomeric and isobaric lipid species, and their occurrence at a large concentration scale, a complete lipidomic profiling of biological matrices remains challenging, especially in clinical contexts. Using supercritical fluid chromatography coupled with high-resolution mass spectrometry, we have developed and validated an untargeted lipidomic approach to the profiling of plasma and blood. Moreover, we have tested the technique using the Dry Blood Spot (DBS) method and found that it allows for the easy collection of blood for analysis. To develop the method, we performed the optimization of the separation and detection of lipid species on pure standards, reference human plasma (SRM1950), whole blood, and DBS. These analyses allowed an in-house lipid data bank to be built. Using the MS-Dial software, we developed an automatic process for the relative quantification of around 500 lipids species belonging to the 6 main classes of lipids (including phospholipids, sphingolipids, free fatty acids, sterols, and fatty acyl-carnitines). Then, we compared the method using the published data for SRM 1950 and a mouse blood sample, along with another sample of the same blood collected using the DBS method. In this study, we provided a method for blood lipidomic profiling that can be used for the easy sampling of dry blood spots.
脂质是细胞的重要组成部分,在生理功能中发挥着许多关键作用。它们作为第二信使,尤其参与能量储存和细胞信号传导,并且是细胞膜(包括脂筏)的主要成分。因此,它们与大量不同类型的疾病有关,如癌症、糖尿病、神经疾病和遗传性代谢疾病。由于脂质种类具有高度的结构多样性和复杂性,存在同分异构体和等压脂质种类,且它们在很大的浓度范围内存在,对生物基质进行完整的脂质组分析仍然具有挑战性,尤其是在临床环境中。我们使用超临界流体色谱与高分辨率质谱联用技术,开发并验证了一种用于血浆和血液分析的非靶向脂质组学方法。此外,我们使用干血斑(DBS)方法对该技术进行了测试,发现它便于采集血液进行分析。为了开发该方法,我们对纯标准品、参考人血浆(SRM1950)、全血和DBS上脂质种类的分离和检测进行了优化。这些分析使得能够建立一个内部脂质数据库。使用MS-Dial软件,我们开发了一个自动流程,用于对属于6大类脂质(包括磷脂、鞘脂、游离脂肪酸、甾醇和脂肪酰肉碱)的约500种脂质种类进行相对定量。然后,我们将该方法与已发表的SRM 1950数据、小鼠血液样本以及使用DBS方法采集的同一血液的另一个样本进行了比较。在本研究中,我们提供了一种用于血液脂质组分析的方法,该方法可用于轻松采集干血斑样本。