Unusual Lipid Components of Legionella gormanii Membranes

Elżbieta Chmiel1, Christina E Galuska2, Piotr Koper1

  • 1Department of Genetics and Microbiology, Institute of Biological Science, Faculty of Biology and Biotechnology, Maria Curie-Skłodowska University, Akademicka 19, 20-033 Lublin, Poland.

Metabolites
|May 28, 2022
PubMed

Insights

This study characterizes the unique lipidome of Legionella gormanii membranes, revealing unusual sphingolipids like ceramides. These findings advance bacterial chemotaxonomy and understanding of Legionnaires

Area of Science:

  • Microbiology
  • Lipidomics
  • Bacterial Chemotaxonomy

Background:

  • Legionella spp. cause Legionnaires' disease, with L. gormanii being a significant cause of community-acquired pneumonia.
  • Understanding bacterial membrane lipid composition is crucial for chemotaxonomy and potential therapeutic targets.

Purpose of the Study:

  • To characterize the lipidome of L. gormanii outer and inner membranes.
  • To investigate the significance of lipidomic analysis in bacterial chemotaxonomy.
  • To identify novel lipid components in L. gormanii.

Main Methods:

  • Lipidomic analysis using ultra-high performance liquid chromatography-mass spectrometry (UHPLC-MS).
  • Detection and characterization of individual molecular species of membrane lipids.
  • Culturing L. gormanii with and without exogenous choline to compare lipid profiles.

Main Results:

  • Identified glycerolipids, phospholipids (most abundant), and sphingolipids (ceramides, hexosylceramides) in L. gormanii membranes.
  • Revealed two distinct phosphatidylcholine synthesis pathways: PE-methylation (PmtA) and PC synthase (Pcs).
  • Detected ceramides and hexosylceramides, previously unreported in Legionella, suggesting a unique lipid profile.

Conclusions:

  • L. gormanii possesses a complex and unusual lipidome, including eukaryotic-like sphingolipids.
  • Lipidomic profiling provides valuable chemotaxonomic data for Legionella species.
  • The presence of ceramides in L. gormanii expands our knowledge of bacterial lipid diversity.

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