The two-component system CrdRS mediates sub-inhibitory antibiotic-induced biofilm formation in Helicobacter pylori via bidirectional regulation of transporters PlpA and GlnP

ABSTRACT Biofilm formation by Helicobacter pylori is a major driver of antibiotic tolerance and treatment failure, yet the signaling pathways that trigger biofilm development under sub-inhibitory antibiotic pressure remain poorly understood. Here, we show that sub-MIC levels of metronidazole, amoxicillin, and ciprofloxacin potently induce dense H. pylori biofilms. Through transcriptomic and genetic analyses, we identify the two-component system CrdRS as a central signaling hub that orchestrates this response via the bidirectional regulation of two ATP-binding cassette (ABC) transporters. Phosphorylated CrdR binds to AC-rich promoter motifs to directly activate plpA , which encodes a substrate-binding protein that drives exopolysaccharide secretion and matrix assembly. Concomitantly, CrdR represses glnP , which encodes an inner-membrane permease, thereby relieving transcriptional inhibition of the L-asparaginase gene ansB . This derepression triggers aberrant reactive oxygen species (ROS) accumulation, which promotes oxidative stress-dependent biofilm maturation. Through phenotypic analysis of c rdRS deletion mutants, phosphorylation-defective point mutants (CrdR D53A and CrdS H173A ), and exogenous hydrogen peroxide (H₂O₂) induction, we demonstrate that CrdRS is required for mediating antibiotic-induced stress responses in a manner genetically separable from ROS sensing. Collectively, our findings establish a dual-mechanism model in which CrdRS orchestrates antibiotic-induced biofilm formation by simultaneously controlling matrix production and intracellular ROS generation. Notably, glnP expression was significantly lower in clinical multidrug-resistant isolates than in drug-sensitive ones, whereas plpA showed the opposite trend. These findings provide a mechanistic foundation for developing CrdRS-targeted strategies to combat biofilm-associated H. pylori infections.

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Publication Details

Journal
Antimicrobial Agents and Chemotherapy
Published
2026-10-05
DOI
https://doi.org/10.1128/aac.00882-26
Primary Topic
Bacterial biofilms and quorum sensing
Type
article
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article

The two-component system CrdRS mediates sub-inhibitory antibiotic-induced biofilm formation in Helicobacter pylori via bidirectional regulation of transporters PlpA and GlnP

徐书景, Yundong Sun, Jinmeng Liu, Mingzhong Zhao et al.
Antimicrobial Agents and Chemotherapy
Bacterial biofilms and quorum sensing
article

The two-component system CrdRS mediates sub-inhibitory antibiotic-induced biofilm formation in Helicobacter pylori via bidirectional regulation of transporters PlpA and GlnP

徐书景, Yundong Sun, Jinmeng Liu, Mingzhong Zhao, Ziyan Zhang, Wenyue Ma, Xiaoyu Wang, Wenxin Zhang, Han Yu, Lu Zhang, Wenjing Wang, Yanlin Sun
article en

Abstract

ABSTRACT Biofilm formation by Helicobacter pylori is a major driver of antibiotic tolerance and treatment failure, yet the signaling pathways that trigger biofilm development under sub-inhibitory antibiotic pressure remain poorly understood. Here, we show that sub-MIC levels of metronidazole, amoxicillin, and ciprofloxacin potently induce dense H. pylori biofilms. Through transcriptomic and genetic analyses, we identify the two-component system CrdRS as a central signaling hub that orchestrates this response via the bidirectional regulation of two ATP-binding cassette (ABC) transporters. Phosphorylated CrdR binds to AC-rich promoter motifs to directly activate plpA , which encodes a substrate-binding protein that drives exopolysaccharide secretion and matrix assembly. Concomitantly, CrdR represses glnP , which encodes an inner-membrane permease, thereby relieving transcriptional inhibition of the L-asparaginase gene ansB . This derepression triggers aberrant reactive oxygen species (ROS) accumulation, which promotes oxidative stress-dependent biofilm maturation. Through phenotypic analysis of c rdRS deletion mutants, phosphorylation-defective point mutants (CrdR D53A and CrdS H173A ), and exogenous hydrogen peroxide (H₂O₂) induction, we demonstrate that CrdRS is required for mediating antibiotic-induced stress responses in a manner genetically separable from ROS sensing. Collectively, our findings establish a dual-mechanism model in which CrdRS orchestrates antibiotic-induced biofilm formation by simultaneously controlling matrix production and intracellular ROS generation. Notably, glnP expression was significantly lower in clinical multidrug-resistant isolates than in drug-sensitive ones, whereas plpA showed the opposite trend. These findings provide a mechanistic foundation for developing CrdRS-targeted strategies to combat biofilm-associated H. pylori infections.

Antimicrobial Agents and Chemotherapy
Shandong University (CN)
Openalex Percentile: Top 21%
Bacterial biofilms and quorum sensing
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