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Updated: Apr 27, 2026

Isolation and Identification of Waterborne Antibiotic-Resistant Bacteria and Molecular Characterization of their Antibiotic Resistance Genes
Published on: March 3, 2023
Serratia marcescens arn, a PhoP-regulated locus necessary for polymyxin B resistance
Quei Yen Lin1, Yi-Lin Tsai1, Ming-Che Liu1
1Department and Graduate Institute of Clinical Laboratory Sciences and Medical Biotechnology, College of Medicine, National Taiwan University, Taipei, Taiwan, Republic of China.
Abstract:
Polymyxins, which are increasingly being used to treat infections caused by multidrug-resistant bacteria, perform poorly against Serratia marcescens. To investigate the underlying mechanisms, Tn5 mutagenesis was performed and two mutants exhibiting increased polymyxin B (PB) susceptibility were isolated. The mutants were found to have Tn5 inserted into the arnB and arnC genes. In other bacteria, arnB and arnC belong to the seven-gene arn operon, which is involved in lipopolysaccharide (LPS) modification. LPSs of arn mutants had greater PB-binding abilities than that of wild-type LPS. Further, we identified PhoP, a bacterial two-component response regulator, as a regulator of PB susceptibility in S. marcescens. By the reporter assay, we found PB- and low-Mg2+-induced expression of phoP and arn in the wild-type strain but not in the phoP mutant. Complementation of the phoP mutant with the full-length phoP gene restored the PB MIC and induction by PB and low Mg2+ levels, as in the wild type. An electrophoretic mobility shift assay (EMSA) further demonstrated that PhoP bound directly to the arn promoter. The PB challenge test confirmed that pretreatment with PB and low Mg2+ levels protected S. marcescens from a PB challenge in the wild-type strain but not in the phoP mutant. Real-time reverse transcriptase-PCR also indicated that PB serves as a signal to regulate expression of ugd, a gene required for LPS modification, in S. marcescens through a PhoP-dependent pathway. Finally, we found that PB-resistant clinical isolates displayed greater expression of arnA upon exposure to PB than did susceptible isolates. This is the first report to describe the role of S. marcescens arn in PB resistance and its modulation by PB and Mg2+ through the PhoP protein.
Insights
Polymyxin B (PB) resistance in Serratia marcescens involves lipopolysaccharide (LPS) modification regulated by PhoP. This study reveals how PB and magnesium influence PB susceptibility through the PhoP-dependent arn operon.
Area of Science:
- Microbiology
- Molecular Biology
- Drug Resistance
Background:
- Polymyxins are crucial for treating multidrug-resistant bacterial infections.
- Serratia marcescens exhibits poor susceptibility to polymyxins, necessitating investigation into resistance mechanisms.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying polymyxin B (PB) resistance in Serratia marcescens.
- To identify key regulators and pathways involved in PB susceptibility and resistance.
Main Methods:
- Tn5 mutagenesis to isolate mutants with increased PB susceptibility.
- Reporter assays and electrophoretic mobility shift assays (EMSA) to study gene regulation.
- Real-time reverse transcriptase-PCR to analyze gene expression patterns.
Main Results:
- Mutants with Tn5 insertions in arnB and arnC showed increased PB susceptibility due to altered lipopolysaccharide (LPS) modification.
- The two-component response regulator PhoP was identified as a key regulator of PB susceptibility.
- PB and low magnesium induced PhoP and arn operon expression in a PhoP-dependent manner.
- PhoP directly binds to the arn promoter, modulating LPS modification genes like ugd.
- PB-resistant clinical isolates showed higher arnA expression upon PB exposure.
Conclusions:
- The arn operon, involved in LPS modification, plays a critical role in S. marcescens' resistance to PB.
- The PhoP regulatory system modulates PB susceptibility by controlling the expression of LPS modification genes in response to PB and magnesium levels.
- This study provides novel insights into the polymyxin resistance mechanisms in S. marcescens, highlighting the PhoP-dependent pathway.
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