OmpC-Dependent Bile Tolerance Contributes to E. coli Colonization of the Mammalian Intestine

Sudhir Doranga1, Tyrrell Conway1

  • 1Department of Microbiology and Molecular Genetics, Oklahoma State University, Stillwater, Oklahoma, USA.

Microbiology Spectrum
|April 4, 2023
PubMed

Insights

Escherichia coli intestinal colonization depends on balancing outer membrane proteins OmpC and OmpF. Fine-tuning these proteins via the EnvZ/OmpR system helps E. coli exclude toxic bile salts and thrive.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Gastroenterology

Background:

  • Escherichia coli colonization mechanisms in mammalian intestines are not fully understood.
  • The EnvZ/OmpR two-component system and outer membrane proteins are implicated in E. coli gut colonization.
  • Previous studies showed envZ mutants with higher OmpC and lower OmpF levels outcompeted wild-type E. coli.

Purpose of the Study:

  • To investigate the roles of the EnvZ/OmpR system and specific outer membrane proteins (OmpA, OmpC, OmpF) in E. coli intestinal colonization.
  • To determine how OmpC and OmpF levels influence E. coli's competitive fitness within the host intestine.

Main Methods:

  • Comparative colonization assays using wild-type and knockout E. coli mutants (envZ-ompR, ompA, ompC, ompF) in streptomycin-treated mice.
  • Outer membrane protein analysis using protein gels.
  • Sensitivity assays for bile salts.
  • RNA sequencing to analyze gene expression (EnvZ/OmpR system, ompC, ompF) in the intestinal environment.

Main Results:

  • Wild-type E. coli outcompeted envZ-ompR, ompA, and ompC knockout mutants.
  • An ompF knockout mutant, overproducing OmpC, showed enhanced colonization compared to wild-type.
  • The ompC mutant exhibited increased sensitivity to bile salts, impairing initial colonization.
  • RNA sequencing confirmed EnvZ/OmpR system activity, with ompC upregulation and ompF downregulation in the intestine.

Conclusions:

  • Fine-tuning of OmpC and OmpF levels is crucial for E. coli's competitive colonization in the mammalian intestine.
  • OmpC's smaller pore size likely excludes toxic bile salts, conferring a colonization advantage.
  • OmpF's larger pore size may allow toxic substances entry, hindering colonization.
  • The EnvZ/OmpR system regulates OmpC and OmpF to optimize E. coli's fitness in the intestinal environment.

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