Glycosylation changes as important factors for the susceptibility to urinary tract infection

Joemar Taganna1, Arjen R de Boer, Manfred Wuhrer

  • 1Unit for Molecular Glycobiology, VIB Department for Molecular Biomedical Research, Ghent University, Technologiepark 927, 9052 Ghent, Belgium.

Insights

Escherichia coli type 1 fimbriae use FimH to bind uroepithelial cells, increasing urinary tract infection risk, especially in diabetics. Changes in cell glycosylation, potentially due to apoptosis and disturbed glucose transport, enhance bacterial adherence.

Area of Science:

  • Microbiology
  • Cell Biology
  • Glycobiology

Background:

  • FimH, the adhesin of type 1 fimbriae in Escherichia coli, recognizes specific paucimannosidic glycans on host cell glycoproteins.
  • E. coli type 1 fimbriae are key virulence factors in urinary tract infections (UTIs) and inflammatory bowel diseases.
  • Diabetic patients, particularly women, exhibit increased susceptibility to recurrent UTIs, suggesting host-specific alterations.

Purpose of the Study:

  • To explore the mechanisms underlying altered glycosylation of uroepithelial cells in the context of FimH-mediated bacterial adhesion.
  • To investigate how conditions like diabetes mellitus may influence host cell glycosylation, thereby affecting E. coli adherence.

Main Methods:

  • Review of literature on FimH-ligand interactions, bacterial adhesion mechanisms, and host-pathogen interactions in UTIs.
  • Analysis of the role of glycosylation in uroepithelial cell receptors for FimH.
  • Hypothetical exploration of cellular processes, including apoptosis and vesicle trafficking, that could alter glycosylation.

Main Results:

  • FimH exhibits high-affinity binding to specific mannose glycans found on uroplakin Ia, uromodulin, and GP2 glycoproteins.
  • Bacterial adhesion can induce cellular signaling and apoptosis, potentially exposing immature glycoproteins on the cell surface.
  • Diabetes mellitus is associated with disturbed glucose transporter trafficking, impacting N-linked glycan biosynthesis and localization.

Conclusions:

  • Altered glycosylation of uroepithelial cells, potentially driven by apoptosis and metabolic changes like those in diabetes, enhances E. coli type 1 fimbriae adherence.
  • These glycosylation changes represent a plausible mechanism for the increased UTI prevalence and recurrence in diabetic individuals.
  • Understanding these host-pathogen interactions is crucial for developing targeted therapeutic strategies against recurrent UTIs.

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