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Klebsiella pneumoniae l-Fucose Metabolism Promotes Gastrointestinal Colonization and Modulates Its Virulence
Andrew W Hudson1, Andrew J Barnes1, Andrew S Bray1
1Department of Microbiology and Immunology, Wake Forest School of Medicine, Winston-Salem, North Carolina, USA.
Abstract:
Colonization of the gastrointestinal (GI) tract by Klebsiella pneumoniae is generally considered asymptomatic. However, gut colonization allows K. pneumoniae to either translocate to sterile site within the same host or transmit through the fecal-oral route to another host. K. pneumoniae gut colonization is poorly understood, but knowledge of this first step toward infection and spread is critical for combatting its disease manifestations. K. pneumoniae must overcome colonization resistance (CR) provided by the host microbiota to establish itself within the gut. One such mechanism of CR is through nutrient competition. Pathogens that metabolize a broad range of substrates have the ability to bypass nutrient competition and overcome CR. Herein, we demonstrate that in response to mucin-derived fucose, the conserved fucose metabolism operon (fuc) of K. pneumoniae is upregulated in the murine gut, and we subsequently show that fucose metabolism promotes robust gut colonization. Growth studies using cecal filtrate as a proxy for the gut lumen illustrate the growth advantage that the fuc operon provides K. pneumoniae. We further show that fucose metabolism allows K. pneumoniae to be competitive with a commensal Escherichia coli isolate (Nissle). However, Nissle is eventually able to outcompete K. pneumoniae, suggesting that it can be utilized to enhance CR. Finally, we observed that fucose metabolism positively modulates hypermucoviscosity, autoaggregation, and biofilm formation but not capsule biogenesis. Together, these insights enhance our understanding of the role of alternative carbon sources in K. pneumoniae gut colonization and the complex relationship between metabolism and virulence in this species.
Insights
Klebsiella pneumoniae uses fucose metabolism to colonize the gut, enhancing its virulence. Commensal E. coli can outcompete K. pneumoniae, suggesting a strategy to improve colonization resistance.
Area of Science:
- Microbiology
- Gut Microbiome Research
- Bacterial Pathogenesis
Background:
- Klebsiella pneumoniae gut colonization is a critical step for disease development and spread.
- Colonization resistance (CR) mechanisms, like nutrient competition by microbiota, prevent pathogen establishment.
- Understanding how K. pneumoniae overcomes CR is vital for controlling infections.
Purpose of the Study:
- To investigate the role of fucose metabolism in K. pneumoniae gut colonization.
- To determine if fucose metabolism provides a competitive advantage against gut microbiota.
- To explore the impact of fucose metabolism on K. pneumoniae virulence factors.
Main Methods:
- Murine gut colonization models to study K. pneumoniae.
- Analysis of the fucose metabolism operon (fuc) regulation and function.
- In vitro growth competition assays with K. pneumoniae and E. coli Nissle.
- Assessment of virulence factor modulation, including hypermucoviscosity and biofilm formation.
Main Results:
- Fucose metabolism operon (fuc) is upregulated in the murine gut, promoting K. pneumoniae colonization.
- Fucose metabolism confers a growth advantage in the gut lumen and competitiveness against E. coli Nissle.
- E. coli Nissle eventually outcompetes K. pneumoniae, indicating potential for enhanced CR.
- Fucose metabolism positively affects hypermucoviscosity, autoaggregation, and biofilm formation.
Conclusions:
- Fucose metabolism is a key factor enabling K. pneumoniae gut colonization by overcoming nutrient competition.
- Metabolism of alternative carbon sources influences bacterial virulence and host-microbe interactions.
- Commensal bacteria like E. coli Nissle may be leveraged to enhance colonization resistance against K. pneumoniae.

