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Updated: Jun 25, 2026

An In Vitro Bladder Model of Catheter-Associated Urinary Tract Infection
Published on: June 24, 2025
Selective sugar transport supports Proteus mirabilis fitness in the urinary tract
Allyson E Shea1, Shiuhyang Kuo2, Surbhi Gupta2
1University of South Alabama, College of Medicine, Department of Microbiology and Immunology, Mobile, Alabama, United States of America.
Abstract:
Proteus mirabilis is a leading cause of complicated urinary tract infections (UTIs). Prior work showed P. mirabilis metabolizes sugars during experimental UTI, yet the role of sugar import systems in pathogenesis remains poorly defined. To investigate this, we generated a panel of 47 targeted mutants in predicted sugar transporter genes and assessed their growth in vitro and fitness in vivo. Growth screening in nutrient-rich and minimal media revealed carbon source-dependent defects in several phosphotransferase system (PTS) mutants, including ptsH and ptsI. Pooled insertion sequencing (In-seq) identified xapB, ptsH, and ptsI as in vivo fitness factors, with validation in a traditional murine co-challenge model. Functional studies showed that xapB, annotated as a xanthosine permease, did not support xanthosine or guanosine uptake in P. mirabilis, suggesting misannotation. Dissection of the PTS network revealed that a triple mutant lacking scrA, ulaC, and ptsG recapitulated the ptsH phenotype in vivo. To evaluate whether increased sugar availability exacerbates these defects, we modeled glucosuria using the SGLT2 inhibitor dapagliflozin in CBA/J mice. Dapagliflozin treatment significantly increased urinary glucose and enhanced P. mirabilis colonization. There was an inverse correlation between colonization and urinary glucose, but only in untreated mice. These findings reveal limitations in genome-based transporter annotation, establish a functional link between sugar import and P. mirabilis fitness during UTI, and demonstrate that host metabolic conditions such as glucosuria can influence the severity of infection.
Insights
Proteus mirabilis utilizes sugar import systems for urinary tract infection (UTI) fitness. Host glucosuria, or high urinary sugar, can worsen P. mirabilis infections by altering sugar availability.
Area of Science:
- Microbiology
- Infectious Diseases
- Molecular Biology
Background:
- Proteus mirabilis causes complicated urinary tract infections (UTIs).
- Sugar metabolism is crucial for P. mirabilis during UTIs, but sugar import systems' roles are unclear.
- Genome annotations for transporters may be inaccurate.
Purpose of the Study:
- Investigate the role of sugar import systems in P. mirabilis pathogenesis.
- Determine how host metabolic conditions like glucosuria affect P. mirabilis UTI.
- Validate findings using genetic and in vivo models.
Main Methods:
- Generated 47 targeted mutants in predicted sugar transporter genes.
- Assessed mutant growth in vitro and fitness in vivo using pooled insertion sequencing (In-seq) and murine co-challenge models.
- Modeled glucosuria in mice using an SGLT2 inhibitor (dapagliflozin).
Main Results:
- Several phosphotransferase system (PTS) mutants showed carbon source-dependent growth defects.
- In-seq and murine models identified xapB, ptsH, and ptsI as critical for in vivo fitness.
- A triple mutant (scrA, ulaC, ptsG) mimicked the ptsH in vivo phenotype.
- Dapagliflozin-induced glucosuria increased P. mirabilis colonization.
Conclusions:
- Genome-based transporter annotation has limitations; xapB was misannotated.
- Sugar import is functionally linked to P. mirabilis fitness during UTI.
- Host metabolic states, like glucosuria, significantly impact UTI severity.
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