The mechanisms of metronidazole resistance of Helicobacter pylori: A transcriptomic and biochemical study.

Microb Pathog

The Laboratory of Metalloproteins, College of Life Sciences, Sun Yat-Sen University, Guangzhou, 510275, China. Electronic address:

Published: October 2023

AI Article Synopsis

  • H. pylori is a stomach bacterium that causes various serious gastrointestinal issues, including ulcers and cancer, and its treatment often involves a triple therapy of antibiotics and a proton-pump inhibitor.
  • However, increasing drug resistance, particularly to metronidazole, is making it harder to effectively treat these infections, prompting a study to explore the mechanisms behind this resistance.
  • Researchers identified a strain of H. pylori with significantly higher resistance to metronidazole and found key changes in gene expression and biochemical activity that could inform the development of new treatments for resistant strains.

Article Abstract

Helicobacter pylori (H. pylori) is a bacterial pathogen in the stomach, causing gastritis, gastric ulcer, duodenal ulcer and even gastric cancer. The triple therapy containing one bismuth-containing compound or a proton-pump inhibitor with two antibiotics was the cornerstone of the treatment of H. pylori infections. However the drug resistance of Helicobacter pylori is more and more common, which leads to the continued decline in the radical cure rate. The purpose of this study was to investigate the mechanism of metronidazole resistance of H. pylori through transcriptomics and biochemical characterizations. In this study, a 128-time-higher metronidazole-resistant H. pylori strain compared to the sensitive strain was domesticated, and 374 significantly differential genes were identified by transcriptomic sequencing as compared to the metronidazole-sensitive strain. Through GO and KEGG enrichment analysis, antibiotic-resistance pathways were found to be mainly involved in redox, biofilm formation and ABC transportation, and the results were verified by qRT-PCR. The subsequent biochemical analysis found that the urease activity of the drug-resistant strain decreased, and whereas the capabilities of bacterial energy production, membrane production and diffusion ability increased. The work here will drop hints for the mechanisms of antibiotic-resistance of H. pylori and provide promising biomarkers for the further development of new-kind drugs to treat metronidazole-resistant H. pylori.

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Source
http://dx.doi.org/10.1016/j.micpath.2023.106303DOI Listing

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