Abstract
The analysis of gangliosides is extremely challenging, given their structural complexity, lack of reference standards, databases, and software solutions. Here, we introduce a fast 6 min high field asymmetric ion mobility spectrometry (FAIMS) shotgun lipidomics workflow, along with a dedicated software solution for ganglioside detection. By ramping FAIMS compensation voltages, ideal ranges for different ganglioside classes were obtained. FAIMS revealed both class- and charge-state separation behavior based on the glycan headgroup moiety. The number of sialic acids attached to the glycan moiety correlates positively with their preferred charge states, i.e., trisialylated gangliosides were mainly present as [M - 3H]3- ions, whereas [M - 4H]4- and [M - 5H]5- ions were observed for GQ1 and GP1. For data evaluation, we developed a shotgun/FAIMS extension for the open-source Lipid Data Analyzer (LDA), enabling automated annotation of gangliosides up to the molecular lipid species level. This extension utilized combined orthogonal fragmentation spectra from CID, HCD, and 213 nm UVPD ion activation methods and covers 29 ganglioside classes, including acetylated and fucosylated modifications. With our new workflow and software extension 117 unique gangliosides species were identified in porcine brain extracts. While conventional shotgun lipidomics favored the observation of singly charged ganglioside species, the utilization of FAIMS made multiply charged lipid species accessible, resulting in an increased number of detected species, primarily due to an improved signal-to-noise ratio arising from FAIMS charge state filtering. Therefore, this FAIMS-driven workflow, complemented by new software capabilities, offers a promising strategy for complex ganglioside and glycosphingolipid characterization in shotgun lipidomics.
| Original language | English |
|---|---|
| Journal | Analytical Chemistry |
| DOIs | |
| Publication status | E-pub ahead of print - 2024 |
Funding
K.H. was financed by the Austrian Science Fonds (FWF) within the research group program (10.55776/FG3) and a travel grant of the Doctoral School of Chemistry (DoSChem) of the University of Vienna, Faculty of Chemistry. The research was funded in part by the Australian Research Council, grant number DP190102464 to G.E.R. The authors thank all members of the Reid lab (University of Melbourne), Rampler lab and Koellensperger lab (University of Vienna) as well as the Hartler lab (University of Graz) for the great team spirit and scientific exchange across continents. We also thank Dr Shuai Nie and Huaqi Su for their scientific exchange and support with respect to the instrumentation located within the Mass Spectrometry and Proteomics Facility (MSPF) at the Bio21 Institute, University of Melbourne, where the study was performed.
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 3 Good Health and Well-being
Austrian Fields of Science 2012
- 104002 Analytical chemistry
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