Targeted lysosomal activation in bladder epithelium enhances clearance of intracellular uropathogenic Escherichia coli

Recurrent urinary tract infections (UTIs) are a major clinical burden, driven in part by the ability of uropathogenic Escherichia coli (UPEC) to establish intracellular niches within the bladder epithelium, where bacteria withstand antibiotics and host defenses. The oral bacterial lysate OM-89 (Uro-Vaxom), a clinically approved and globally used therapy for the prevention and management of recurrent UTIs for several decades, reduces recurrence rates, but its cellular mechanisms of action remain incompletely understood. Here, we demonstrate that OM-89 strengthens antimicrobial defenses in bladder epithelial cells and, in combination with antibiotic therapy, limits post-antibiotic bacterial regrowth in epithelial infection models. OM-89 promotes lysosomal acidification and increases lysosomal protease activity in bladder organoids and differentiated epithelial monolayers, thereby directing intracellular UPEC toward degradative compartments. In parallel, OM-89 enhances intracellular accumulation of multiple antibiotic classes. These effects are conserved across distinct UPEC strains and in both murine and human epithelial models. Our findings demonstrate that bladder epithelial antimicrobial pathways can be pharmacologically reinforced to influence treatment outcomes by enhancing intracellular bacterial clearance.

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Publication Details

Journal
PLoS Pathogens
Published
2026-09-25
DOI
https://doi.org/10.1371/journal.ppat.1014448
Primary Topic
Urinary Tract Infections Management
Type
article
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article

Targeted lysosomal activation in bladder epithelium enhances clearance of intracellular uropathogenic Escherichia coli

Christian Pasquali, Kathrin Tomasek, Allison M. Burns, Gauri Paduthol et al.
PLoS Pathogens
Urinary Tract Infections Management
article

Targeted lysosomal activation in bladder epithelium enhances clearance of intracellular uropathogenic Escherichia coli

Christian Pasquali, Kathrin Tomasek, Allison M. Burns, Gauri Paduthol, Mario Romani, Valentin Borgeat, Léa Schlunke, Kristina Skurvydaite, John D. McKinney
article en

Abstract

Recurrent urinary tract infections (UTIs) are a major clinical burden, driven in part by the ability of uropathogenic Escherichia coli (UPEC) to establish intracellular niches within the bladder epithelium, where bacteria withstand antibiotics and host defenses. The oral bacterial lysate OM-89 (Uro-Vaxom), a clinically approved and globally used therapy for the prevention and management of recurrent UTIs for several decades, reduces recurrence rates, but its cellular mechanisms of action remain incompletely understood. Here, we demonstrate that OM-89 strengthens antimicrobial defenses in bladder epithelial cells and, in combination with antibiotic therapy, limits post-antibiotic bacterial regrowth in epithelial infection models. OM-89 promotes lysosomal acidification and increases lysosomal protease activity in bladder organoids and differentiated epithelial monolayers, thereby directing intracellular UPEC toward degradative compartments. In parallel, OM-89 enhances intracellular accumulation of multiple antibiotic classes. These effects are conserved across distinct UPEC strains and in both murine and human epithelial models. Our findings demonstrate that bladder epithelial antimicrobial pathways can be pharmacologically reinforced to influence treatment outcomes by enhancing intracellular bacterial clearance.

PLoS PathogensVol. 22(9)
OM Pharma (Switzerland) (CH), École Polytechnique Fédérale de Lausanne (CH)
Good health and well-being
Openalex Percentile: Top 11%
Urinary Tract Infections Management
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