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A Putative Microcin Amplifies Shiga Toxin 2a Production of Escherichia coli O157:H7
Hillary M Mosso1, Lingzi Xiaoli2, Kakolie Banerjee2
1The Huck Institutes of the Life Sciences, The Pennsylvania State University, University Park, Pennsylvania, USA.
Abstract:
Escherichia coli O157:H7 is a foodborne pathogen implicated in various multistate outbreaks. It encodes Shiga toxin on a prophage, and Shiga toxin production is linked to phage induction. An E. coli strain, designated 0.1229, that amplified Stx2a production when cocultured with E. coli O157:H7 strain PA2 was identified. Growth of PA2 in 0.1229 cell-free supernatants had a similar effect, even when supernatants were heated to 100°C for 10 min, but not after treatment with proteinase K. The secreted molecule was shown to use TolC for export and the TonB system for import. The genes sufficient for production of this molecule were localized to a 5.2-kb region of a 12.8-kb plasmid. This region was annotated, identifying hypothetical proteins, a predicted ABC transporter, and a cupin superfamily protein. These genes were identified and shown to be functional in two other E. coli strains, and bioinformatic analyses identified related gene clusters in similar and distinct bacterial species. These data collectively suggest that E. coli 0.1229 and other E. coli strains produce a microcin that induces the SOS response in target bacteria. Besides adding to the limited number of microcins known to be produced by E. coli, this study provides an additional mechanism by which stx2a expression is increased in response to the gut microflora.IMPORTANCE How the gut microflora influences the progression of bacterial infections is only beginning to be understood. Antibiotics are counterindicated for E. coli O157:H7 infections, limiting treatment options. An increased understanding of how the gut microflora directs O157:H7 virulence gene expression may lead to additional treatment options. This work identified E. coli strains that enhance the production of Shiga toxin by O157:H7 through the secretion of a proposed microcin. Microcins are natural antimicrobial peptides that target specific species, can act as alternatives to antibiotics, and mediate microbial competition. This work demonstrates another mechanism by which non-O157 E. coli strains may increase Shiga toxin production and adds to our understanding of microcins, a group of antimicrobials less well understood than colicins.
Insights
A newly identified molecule, a microcin, produced by Escherichia coli strain 0.1229 enhances Shiga toxin production in E. coli O157:H7. This discovery offers insights into gut microflora interactions and potential new therapeutic strategies against E. coli infections.
Area of Science:
- Microbiology
- Molecular Biology
- Food Safety
Background:
- Escherichia coli O157:H7 is a significant foodborne pathogen responsible for severe outbreaks.
- Shiga toxin production by E. coli O157:H7 is regulated by phage induction and influenced by the gut microflora.
Purpose of the Study:
- To investigate the mechanism by which a non-O157 E. coli strain (0.1229) enhances Shiga toxin production in E. coli O157:H7.
- To identify and characterize the molecule responsible for this enhanced toxin production.
Main Methods:
- Coculturing of E. coli strains and analysis of Shiga toxin production.
- Treatment of cell-free supernatants with heat and proteinase K to assess molecule stability.
- Genetic analysis to identify genes responsible for molecule production.
- Bioinformatic analysis to identify related gene clusters in other bacteria.
Main Results:
- E. coli strain 0.1229 secretes a molecule that induces Shiga toxin production in E. coli O157:H7.
- The molecule is heat-stable but sensitive to proteinase K, suggesting it is a peptide.
- Genes responsible for production are located on a 5.2-kb region of a plasmid and are functional in other E. coli strains.
- The molecule utilizes TolC for export and TonB for import.
Conclusions:
- E. coli strain 0.1229 produces a microcin that induces the SOS response, leading to increased Shiga toxin production in E. coli O157:H7.
- This finding reveals a novel mechanism of virulence gene regulation by the gut microflora.
- The identified microcin represents a potential alternative to antibiotics for treating bacterial infections.
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