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Resolving lipid isomers up to the double bond position level using reversed-phase chromatography, EAD fragmentation, and high-resolution mass spectrometry: Application to pancreatic cancer

Veröffentlichungen: Beitrag in FachzeitschriftArtikelPeer Reviewed

Abstract

Background: Electron-activated dissociation (EAD) is a radical-based fragmentation technique that provides detailed structural information on lipids in a single spectrum, including double-bond positions, sn-1/sn-2 assignment, and molecular species. Its broader application, however, remains limited by the low intensity of diagnostic fragments. An alternative computational approach, called LC=CL, which is an extension of the software Lipid Data Analyzer (LDA), leverages retention time (RT) information obtained by reversed-phase liquid chromatography (RPLC) to identify ω-positions in intact lipid species. Results: Here, we present an integrated RPLC-EAD-TOF-MS/MS workflow that combines LC=CL's RT-based with EAD's fragmentation-based annotation for deep structural characterization using a ZenoTOF 7600. This strategy was validated using both unlabeled and uniformly 13C-labeled yeast extracts. By combining the benefits of retention-time identification and radical-induced fragmentation, our method enables the reliable identification of double-bond locations and sn-positional isomers across 15 lipid classes. Significance: In the analysis of plasma samples from pancreatic ductal adenocarcinoma (PDAC) patients and healthy controls, we demonstrate the power of our strategy for unambiguously resolving lipid isomers, revealing structure-specific patterns of dysregulated lipids. A total of 353 lipids were identified across 15 classes composed of glycerolipids, glycerophospholipids, and sphingolipids. Our findings not only confirmed known biomarkers, but also revealed additional chain isomers (e.g., SM 18:1; O2/20:0 and SM 16:1; O2/22:0), where only one of them was differentially regulated. Moreover, we discovered novel double-bond location-specific regulations, such as differential regulation of PC 16:0/18:3(n-6) in PDAC patients, whereas the isomer PC 16:0/18:3(n-3) did not exhibit any significant changes. Such an observation would have remained concealed using conventional methods. Accordingly, the presented RPLC-EAD-TOF-MS/MS platform facilitates detailed structural lipidomics in biologically and clinically relevant samples.

OriginalspracheEnglisch
Aufsatznummer345225
FachzeitschriftAnalytica Chimica Acta
Jahrgang1398
DOIs
PublikationsstatusVeröffentlicht - 8 Mai 2026

Fördermittel

The authors thank all members of the Rampler, the Köllensperger (University of Vienna), the Hartler lab (University of Graz), and the Holčapek lab (University of Pardubice) for their valuable contributions in analytical methodology, biological samples, data analysis, team spirit, and interdisciplinary scientific exchange. We further thank Gerrit Hermann from Isotopic Solutions for the valuable cooperation on the labeled and unlabeled LILY lipid extracts. The research was funded by the University of Vienna and, in part, by the Austrian Science Fund (FWF) grant number 10.55776/P33891, the University of Graz. D.K. M.H. and M.V. acknowledge the support of project NU21-03-00499 sponsored by the Czech Health Research Council.

TrägerTrägernummer
Fonds zur Förderung der wissenschaftlichen Forschung (FWF)10.55776/P33891
Czech Health Research Council (AZV ČR)NU21-03-00499

UN SDGs

Dieser Output leistet einen Beitrag zu folgendem(n) Ziel(en) für nachhaltige Entwicklung

  1. SDG 3 – Gesundheit und Wohlergehen
    SDG 3 – Gesundheit und Wohlergehen

ÖFOS 2012

  • 104002 Analytische Chemie
  • 301302 Lipidforschung
  • 301904 Krebsforschung

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