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Updated: Apr 30, 2026

Super-resolution Imaging of Proteus mirabilis Biofilm by Expansion Microscopy
Published on: July 18, 2025
Characterization of 17 chaperone-usher fimbriae encoded by Proteus mirabilis reveals strong conservation
Lisa Kuan1, Jessica N Schaffer1, Christos D Zouzias1
1Departments of Microbiology and Urology, New York University Medical Center, New York, NY, USA.
Abstract:
Proteus mirabilis is a Gram-negative enteric bacterium that causes complicated urinary tract infections, particularly in patients with indwelling catheters. Sequencing of clinical isolate P. mirabilis HI4320 revealed the presence of 17 predicted chaperone-usher fimbrial operons. We classified these fimbriae into three groups by their genetic relationship to other chaperone-usher fimbriae. Sixteen of these fimbriae are encoded by all seven currently sequenced P. mirabilis genomes. The predicted protein sequence of the major structural subunit for 14 of these fimbriae was highly conserved (≥ 95% identity), whereas three other structural subunits (Fim3A, UcaA and Fim6A) were variable. Further examination of 58 clinical isolates showed that 14 of the 17 predicted major structural subunit genes of the fimbriae were present in most strains (>85%). Transcription of the predicted major structural subunit genes for all 17 fimbriae was measured under different culture conditions designed to mimic conditions in the urinary tract. The majority of the fimbrial genes were induced during stationary phase, static culture or colony growth when compared to exponential-phase aerated culture. Major structural subunit proteins for six of these fimbriae were detected using MS of proteins sheared from the surface of broth-cultured P. mirabilis, demonstrating that this organism may produce multiple fimbriae within a single culture. The high degree of conservation of P. mirabilis fimbriae stands in contrast to uropathogenic Escherichia coli and Salmonella enterica, which exhibit greater variability in their fimbrial repertoires. These findings suggest there may be evolutionary pressure for P. mirabilis to maintain a large fimbrial arsenal.
Insights
Proteus mirabilis maintains a large fimbrial arsenal, with most fimbrial genes conserved across strains and induced in conditions mimicking the urinary tract. This contrasts with other bacteria, suggesting evolutionary pressure.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Genomics
Background:
- Proteus mirabilis is a Gram-negative bacterium causing complicated urinary tract infections, especially in catheterized patients.
- Fimbriae are crucial virulence factors involved in bacterial adhesion and colonization.
Purpose of the Study:
- To investigate the repertoire and conservation of chaperone-usher fimbriae in Proteus mirabilis.
- To analyze the expression patterns of fimbrial genes under various growth conditions.
Main Methods:
- Genome sequencing of clinical isolate P. mirabilis HI4320.
- Bioinformatic analysis of fimbrial operons and protein sequences.
- Comparative genomics across multiple P. mirabilis strains.
- Quantitative analysis of gene transcription under simulated urinary tract conditions.
- Mass spectrometry to detect surface-exposed fimbrial proteins.
Main Results:
- Seventeen predicted chaperone-usher fimbrial operons were identified in P. mirabilis HI4320.
- Sixteen fimbriae are conserved across sequenced P. mirabilis genomes, with 14 major structural subunits showing high sequence identity (≥95%).
- Most fimbrial genes (14/17) are present in over 85% of clinical isolates.
- Fimbrial gene expression is predominantly induced during stationary phase, static culture, or colony growth.
- Multiple fimbriae can be produced simultaneously by a single P. mirabilis culture.
Conclusions:
- Proteus mirabilis possesses a highly conserved and extensive fimbrial gene repertoire.
- The fimbrial expression is regulated by environmental cues relevant to urinary tract infections.
- This conserved fimbrial arsenal likely contributes to P. mirabilis's success in causing urinary tract infections and suggests strong evolutionary selection.
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