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.

Journal of Bacteriology
|October 16, 2019
PubMed

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.