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LipidSpace: Simple Exploration, Reanalysis, and Quality Control of Large-Scale Lipidomics Studies

Veröffentlichungen: Beitrag in FachzeitschriftArtikelPeer Reviewed

Abstract

Lipid analysis gained significant importance due to the enormous range of lipid functions, e.g., energy storage, signaling, or structural components. Whole lipidomes can be quantitatively studied in-depth thanks to recent analytical advancements. However, the systematic comparison of thousands of distinct lipidomes remains challenging. We introduce LipidSpace, a standalone tool for analyzing lipidomes by assessing their structural and quantitative differences. A graph-based comparison of lipid structures is the basis for calculating structural space models and subsequently computing lipidome similarities. When adding study variables such as body weight or health condition, LipidSpace can determine lipid subsets across all lipidomes that describe these study variables well by utilizing machine-learning approaches. The user-friendly GUI offers four built-in tutorials and interactive visual interfaces with pdf export. Many supported data formats allow an efficient (re)analysis of data sets from different sources. An integrated interactive workflow guides the user through the quality control steps. We used this suite to reanalyze and combine already published data sets (e.g., one with about 2500 samples and 576 lipids in one run) and made additional discoveries to the published conclusions with the potential to fill gaps in the current lipid biology understanding. LipidSpace is available for Windows or Linux (https://lifs-tools.org).

OriginalspracheEnglisch
Seiten (von - bis)15236-15244
Seitenumfang9
FachzeitschriftAnalytical Chemistry
Jahrgang95
Ausgabenummer41
DOIs
PublikationsstatusVeröffentlicht - 4 Okt. 2023

Fördermittel

This study was supported by grants from the Human Frontier Science Program (RGP0002/2022), the \u201CFWF der Wissenschaftsfonds\u201D (P33298-B), and the \u201CBundesministerium fu\u0308r Bildung, Wissenschaft und Forschung\u201D BMBFW within the project DigiOmics4Austria (https://bit.ly/44A30s1). The authors received further support from the University of Vienna through seed funding and funding derived from the DosChem doctoral school program faculty of Chemistry. Further, the authors thank Dr. Bing Peng for her support and her preliminary work on this topic. Open Access is funded by the Austrian Science Fund (FWF). This study was supported by grants from the Human Frontier Science Program (RGP0002/2022), the \u201CFWF der Wissenschaftsfonds\u201D (P33298-B), and the \u201CBundesministerium fu\u0308r Bildung, Wissenschaft und Forschung\u201D BMBFW within the project DigiOmics4Austria ( https://bit.ly/44A30s1 ). The authors received further support from the University of Vienna through seed funding and funding derived from the DosChem doctoral school program faculty of Chemistry. Further, the authors thank Dr. Bing Peng for her support and her preliminary work on this topic.

ÖFOS 2012

  • 104002 Analytische Chemie

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