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Updated: Jun 9, 2025

Development of a Polymicrobial Colony Biofilm Model to Test Antimicrobials in Cystic Fibrosis
Published on: September 20, 2024
Metabolic interplay between Proteus mirabilis and Enterococcus faecalis facilitates polymicrobial biofilm formation
Benjamin C Hunt1, Vitus Brix1, Joseph Vath1
1Department of Microbiology and Immunology, Jacobs School of Medicine and Biomedical Sciences, State University of New York at Buffalo, Buffalo, New York, USA.
Abstract:
Biofilms play an important role in the development and pathogenesis of catheter-associated urinary tract infection (CAUTI). Proteus mirabilis and Enterococcus faecalis are common CAUTI pathogens that persistently co-colonize the catheterized urinary tract and form biofilms with increased biomass and antibiotic resistance. In this study, we uncover the metabolic interplay that drives biofilm enhancement and examine the contribution to CAUTI severity. Through compositional and proteomic biofilm analyses, we determined that the increase in biofilm biomass stems from an increase in the protein fraction of the polymicrobial biofilm. We further observed an enrichment in proteins associated with ornithine and arginine metabolism in polymicrobial biofilms compared with single-species biofilms. We show that arginine/ornithine antiport by E. faecalis promotes arginine biosynthesis and metabolism in P. mirabilis, ultimately driving the increase in polymicrobial biofilm protein content without affecting viability of either species. We further show that disrupting E. faecalis ornithine antiport alters the metabolic profile of polymicrobial biofilms and prevents enhancement, and this defect was complemented by supplementation with exogenous ornithine. In a murine model of CAUTI, ornithine antiport did not contribute to E. faecalis colonization but was required for the increased incidence of urinary stone formation and bacteremia that occurs during polymicrobial CAUTI with P. mirabilis. Thus, disrupting metabolic interplay between common co-colonizing species may represent a viable strategy for reducing risk of bacteremia.IMPORTANCEChronic infections often involve the formation of antibiotic-resistant biofilm communities that include multiple different microbes, which pose a challenge for effective treatment. In the catheterized urinary tract, potential pathogens persistently co-colonize for long periods of time and the interactions between them can lead to more severe disease outcomes. In this study, we identified the metabolite L-ornithine as a key mediator of disease-enhancing interactions between two common and challenging pathogens, Enterococcus faecalis and Proteus mirabilis. Disrupting ornithine-mediated interactions may therefore represent a strategy to prevent polymicrobial biofilm formation and decrease risk of severe disease.
Insights
Metabolic interactions between common catheter-associated urinary tract infection pathogens, Proteus mirabilis and Enterococcus faecalis, enhance biofilm formation. Disrupting L-ornithine transport in E. faecalis reduces biofilm enhancement and associated CAUTI severity.
Area of Science:
- Microbiology
- Infectious Diseases
- Metabolic Engineering
Background:
- Biofilms are critical in catheter-associated urinary tract infections (CAUTI), often involving polymicrobial communities.
- Proteus mirabilis and Enterococcus faecalis are frequent CAUTI co-colonizers, forming robust biofilms with increased antibiotic resistance.
- Understanding inter-species metabolic crosstalk is key to mitigating CAUTI severity.
Purpose of the Study:
- To investigate the metabolic interplay driving enhanced biofilm formation in polymicrobial CAUTI.
- To examine the contribution of this interplay to CAUTI pathogenesis and severity.
- To identify potential therapeutic targets for disrupting detrimental microbial interactions.
Main Methods:
- Compositional and proteomic analyses of single-species and polymicrobial biofilms.
- Investigation of arginine/ornithine metabolism and transport mechanisms.
- Murine model of CAUTI to assess the in vivo role of E. faecalis ornithine antiport.
Main Results:
- Polymicrobial biofilms exhibit increased protein content, driven by enhanced ornithine and arginine metabolism.
- E. faecalis arginine/ornithine antiport promotes P. mirabilis metabolism, increasing biofilm protein without affecting viability.
- Disruption of E. faecalis ornithine antiport prevents biofilm enhancement and reduces CAUTI-induced urinary stone formation and bacteremia in vivo.
Conclusions:
- L-ornithine-mediated metabolic interplay between E. faecalis and P. mirabilis significantly enhances polymicrobial biofilm formation and CAUTI severity.
- Targeting E. faecalis ornithine antiport disrupts this interaction, preventing biofilm enhancement and reducing disease.
- Disrupting inter-species metabolic crosstalk offers a potential strategy to combat chronic polymicrobial infections and reduce CAUTI complications.

