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Updated: Aug 18, 2026

Gastric Mucosa Quantitative Polymerase Chain Reaction Analysis for Detecting Helicobacter pylori and Antibiotic Resistance
Published on: March 7, 2025
A Helicobacter pylori TolC efflux pump confers resistance to metronidazole
Karin van Amsterdam1, Aldert Bart, Arie van der Ende
1Department of Medical Microbiology, Academic Medical Center, P.O. Box 22660, 1100 DD Amsterdam, The Netherlands.
Abstract:
In Helicobacter pylori, the contribution of efflux proteins to antibiotic resistance is not well established. As translocases that act in parallel may have overlapping substrate specificities, the loss of function of one such translocase may be compensated for by that of another translocase with no effect on susceptibilities to antibiotics. The genome of H. pylori 26695 was assessed for the presence of putative translocases and outer membrane efflux or TolC-like proteins which could interact to form efflux systems involved in drug resistance. Twenty-seven translocases were identified, of which HP1184 was the sole representative of the multidrug and toxic compound extrusion family of translocases and which could thus have a unique substrate specificity. In addition, four TolC-like proteins (HP0605, HP0971, HP1327, and HP1489) were identified. Thus, it is feasible that inactivation of a TolC-like protein would affect the functions of multiple translocases. We aimed to determine whether efflux systems contribute to antimicrobial susceptibility by evaluation of the susceptibility profiles of an HP1184-knockout mutant, four mutants in which one of the four TolC homologs was inactivated, as well as a mutant in which both HP0605 and HP0971 were inactivated. The HP1184- and HP1489-knockout mutants both showed increased susceptibilities to ethidium bromide, while the HP0605-knockout mutant exhibited increased susceptibilities to novobiocin and sodium deoxycholate. The HP0605 and HP0971 double-knockout mutant was also more susceptible to metronidazole, in addition to being susceptible to novobiocin and sodium deoxycholate. Thus, active efflux is an eminent means of resistance to antimicrobials in H. pylori and resembles the situation in other bacteria.
Insights
Efflux systems in Helicobacter pylori contribute significantly to antibiotic resistance. Disrupting specific efflux proteins, like HP1184 and TolC homologs, increases susceptibility to various antimicrobial agents.
Area of Science:
- Microbiology
- Molecular Biology
- Genomics
Background:
- The role of efflux proteins in Helicobacter pylori antibiotic resistance remains unclear.
- Overlapping substrate specificities of translocases can mask resistance phenotypes upon single gene inactivation.
Purpose of the Study:
- To investigate the contribution of efflux systems to antimicrobial resistance in H. pylori.
- To identify specific translocases and TolC-like proteins involved in drug efflux.
Main Methods:
- Genome-wide assessment for putative translocases and TolC-like proteins in H. pylori 26695.
- Construction and susceptibility profiling of knockout mutants for HP1184, TolC homologs (HP0605, HP0971, HP1327, HP1489), and a double mutant (HP0605/HP0971).
Main Results:
- HP1184 and HP1489 knockout mutants showed increased susceptibility to ethidium bromide.
- HP0605 knockout mutant exhibited increased susceptibility to novobiocin and sodium deoxycholate.
- The HP0605/HP0971 double mutant was more susceptible to novobiocin, sodium deoxycholate, and metronidazole.
Conclusions:
- Active efflux is a critical mechanism for antimicrobial resistance in H. pylori.
- Specific efflux proteins, including HP1184 and TolC homologs, play distinct roles in mediating resistance to different compounds.
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