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Published on: June 24, 2025
Phospholipids and Fatty Acids Affect the Colonization of Urological Catheters by Proteus mirabilis
Paulina Stolarek1, Przemysław Bernat2, Dominika Szczerbiec1
1Department of Biology of Bacteria, Faculty of Biology and Environmental Protection, University of Lodz, Banacha 12/16, 90-237 Lodz, Poland.
Abstract:
Proteus mirabilis-mediated CAUTIs are usually initiated by the adherence of bacteria to a urinary catheter surface. In this paper, three isolates of different origin and exhibiting different adhesion abilities were investigated in search of any changes in lipidome components which might contribute to P. mirabilis adhesion to catheters. Using GC-MS and LC-MS/MS techniques, 21 fatty acids and 27 phospholipids were identified in the examined cells. The comparison of the profiles of phospholipids and fatty acids obtained for catheter-attached cells and planktonic cells of the pathogens indicated C11:0 and PE 37:2 levels as values which could be related to P. mirabilis adhesion to a catheter, as well as cis C16:1, PE 32:0, PE 33:0, PE 38:2, PG 33:1, PG 34:0, PE 30:1, PE 32:1 and PG 30:2 levels as values which could be associated with cell hydrophobicity. Based on DiBAC4 (3) fluorescence intensity and an affinity to p-xylene, it was found that the inner membrane depolarization, as well as strong cell-surface hydrophobicity, were important for P. mirabilis adhesion to a silicone catheter. A generalized polarization of Laurdan showed lower values for P. mirabilis cells attached to the catheter surface than for planktonic cells, suggesting lower packing density of membrane components of the adherent cells compared with tightly packed, stiffened membranes of the planktonic cells. Taken together, these data indicate that high surface hydrophobicity, fluidization and depolarization of P. mirabilis cell membranes enable colonization of a silicone urinary catheter surface.
Insights
Proteus mirabilis causes urinary tract infections by adhering to catheters. Changes in cell membrane lipids, including increased hydrophobicity and depolarization, facilitate this adhesion.
Area of Science:
- Microbiology
- Biochemistry
- Medical Science
Background:
- Catheter-associated urinary tract infections (CAUTIs) are a significant healthcare concern.
- Proteus mirabilis adhesion to urinary catheters is a key step in CAUTI pathogenesis.
Purpose of the Study:
- To investigate lipidome changes in Proteus mirabilis associated with catheter adhesion.
- To identify specific fatty acids and phospholipids contributing to bacterial adherence.
Main Methods:
- Gas chromatography-mass spectrometry (GC-MS) and liquid chromatography-tandem mass spectrometry (LC-MS/MS) were used.
- Analysis of fatty acid and phospholipid profiles in planktonic versus catheter-attached cells.
- Assessment of cell membrane properties like hydrophobicity and depolarization.
Main Results:
- Specific fatty acids (e.g., C11:0) and phospholipids (e.g., PE 37:2) were linked to P. mirabilis catheter adhesion.
- Increased cell surface hydrophobicity and inner membrane depolarization were observed in adherent cells.
- Lower membrane component packing density was noted in catheter-attached bacteria.
Conclusions:
- High surface hydrophobicity, membrane fluidization, and depolarization are crucial for P. mirabilis colonization of silicone catheters.
- Understanding these lipidome alterations can inform strategies to prevent CAUTIs.
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