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The DNA Phosphorothioation Restriction-Modification System Influences the Antimicrobial Resistance of Pathogenic
Congrui Xu1, Jing Rao1, Yuqing Xie1
1Brain Center, Department of Neurosurgery, Key Laboratory of Combinatorial Biosynthesis and Drug Discovery Ministry of Education, Zhongnan Hospital of Wuhan University, School of Pharmaceutical Sciences, Wuhan University, Wuhan, China.
Abstract:
Bacterial defense barriers, such as DNA methylation-associated restriction-modification (R-M) and the CRISPR-Cas system, play an important role in bacterial antimicrobial resistance (AMR). Recently, a novel R-M system based on DNA phosphorothioate (PT) modification has been shown to be widespread in the kingdom of Bacteria as well as Archaea. However, the potential role of the PT R-M system in bacterial AMR remains unclear. In this study, we explored the role of PT R-Ms in AMR with a series of common clinical pathogenic bacteria. By analyzing the distribution of AMR genes related to mobile genetic elements (MGEs), it was shown that the presence of PT R-M effectively reduced the distribution of horizontal gene transfer (HGT)-derived AMR genes in the genome, even in the bacteria that did not tend to acquire AMR genes by HGT. In addition, unique gene variation analysis based on pangenome analysis and MGE prediction revealed that the presence of PT R-M could suppress HGT frequency. Thus, this is the first report showing that the PT R-M system has the potential to repress HGT-derived AMR gene acquisition by reducing the HGT frequency. IMPORTANCE In this study, we demonstrated the effect of DNA PT modification-based R-M systems on horizontal gene transfer of AMR genes in pathogenic bacteria. We show that there is no apparent association between the genetic background of the strains harboring PT R-Ms and the number of AMR genes or the kinds of gene families. The strains equipped with PT R-M harbor fewer plasmid-derived, prophage-derived, or integrating mobile genetic element (iMGE)-related AMR genes and have a lower HGT frequency, but the degree of inhibition varies among different bacteria. In addition, compared with Salmonella enterica and Escherichia coli, Klebsiella pneumoniae prefers to acquire MGE-derived AMR genes, and there is no coevolution between PT R-M clusters and bacterial core genes.
Insights
The DNA phosphorothioate (PT) modification-based restriction-modification (R-M) system limits the spread of antimicrobial resistance (AMR) genes in bacteria by reducing horizontal gene transfer (HGT). This discovery offers new insights into bacterial defense mechanisms against AMR.
Area of Science:
- Microbiology
- Genetics
- Molecular Biology
Background:
- Bacterial defense systems like restriction-modification (R-M) and CRISPR-Cas are crucial for antimicrobial resistance (AMR).
- A novel DNA phosphorothioate (PT) modification-based R-M system is prevalent in Bacteria and Archaea, but its role in AMR is unknown.
Purpose of the Study:
- To investigate the role of PT R-M systems in bacterial AMR.
- To determine if PT R-M systems influence the acquisition of AMR genes via horizontal gene transfer (HGT).
Main Methods:
- Analysis of AMR gene distribution on mobile genetic elements (MGEs) in clinical pathogenic bacteria.
- Pangenome analysis and MGE prediction to assess gene variation and HGT frequency.
- Comparative analysis of AMR gene acquisition in different bacterial species (e.g., Klebsiella pneumoniae, Salmonella enterica, Escherichia coli).
Main Results:
- PT R-M systems significantly reduce the prevalence of HGT-derived AMR genes in bacterial genomes.
- The presence of PT R-M correlates with lower HGT frequency, irrespective of the bacteria's general tendency to acquire AMR genes.
- Strains with PT R-M have fewer AMR genes linked to plasmids, prophages, or integrating MGEs (iMGEs), though inhibition levels vary.
Conclusions:
- The PT R-M system acts as a barrier against the acquisition of HGT-derived AMR genes by suppressing HGT frequency.
- No direct correlation exists between the genetic background of PT R-M-harboring strains and the quantity or types of AMR genes.
- Bacterial species exhibit differential preferences for acquiring MGE-derived AMR genes, with no observed coevolution between PT R-M and core bacterial genes.
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