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Isolation and Identification of Waterborne Antibiotic-Resistant Bacteria and Molecular Characterization of their Antibiotic Resistance Genes
Published on: March 3, 2023
Genome-wide identification of ampicillin resistance determinants in Enterococcus faecium
Xinglin Zhang1, Fernanda L Paganelli, Damien Bierschenk
1Department of Medical Microbiology, University Medical Center Utrecht, Utrecht, The Netherlands.
Abstract:
Enterococcus faecium has become a nosocomial pathogen of major importance, causing infections that are difficult to treat owing to its multi-drug resistance. In particular, resistance to the β-lactam antibiotic ampicillin has become ubiquitous among clinical isolates. Mutations in the low-affinity penicillin binding protein PBP5 have previously been shown to be important for ampicillin resistance in E. faecium, but the existence of additional resistance determinants has been suggested. Here, we constructed a high-density transposon mutant library in E. faecium and developed a transposon mutant tracking approach termed Microarray-based Transposon Mapping (M-TraM), leading to the identification of a compendium of E. faecium genes that contribute to ampicillin resistance. These genes are part of the core genome of E. faecium, indicating a high potential for E. faecium to evolve towards β-lactam resistance. To validate the M-TraM results, we adapted a Cre-lox recombination system to construct targeted, markerless mutants in E. faecium. We confirmed the role of four genes in ampicillin resistance by the generation of targeted mutants and further characterized these mutants regarding their resistance to lysozyme. The results revealed that ddcP, a gene predicted to encode a low-molecular-weight penicillin binding protein with D-alanyl-D-alanine carboxypeptidase activity, was essential for high-level ampicillin resistance. Furthermore, deletion of ddcP sensitized E. faecium to lysozyme and abolished membrane-associated D,D-carboxypeptidase activity. This study has led to the development of a broadly applicable platform for functional genomic-based studies in E. faecium, and it provides a new perspective on the genetic basis of ampicillin resistance in this organism.
Insights
Enterococcus faecium exhibits widespread ampicillin resistance due to multiple genetic factors. A new method, Microarray-based Transposon Mapping (M-TraM), identified key genes, including ddcP, essential for this resistance and lysozyme sensitivity.
Area of Science:
- Microbiology
- Genetics
- Antimicrobial Resistance
Background:
- Enterococcus faecium is a significant nosocomial pathogen.
- Multi-drug resistance, particularly to ampicillin, complicates treatment.
- Previous studies identified PBP5 mutations, but other resistance factors are suspected.
Purpose of the Study:
- To identify novel genetic determinants of ampicillin resistance in Enterococcus faecium.
- To develop and validate a high-throughput functional genomics platform for E. faecium.
Main Methods:
- Construction of a high-density transposon mutant library in E. faecium.
- Application of Microarray-based Transposon Mapping (M-TraM) for gene identification.
- Validation using a Cre-lox system for targeted, markerless gene deletion.
Main Results:
- M-TraM identified a comprehensive set of genes contributing to ampicillin resistance.
- Four validated genes, including ddcP, were confirmed to influence ampicillin resistance.
- ddcP deletion resulted in high-level ampicillin susceptibility, lysozyme sensitivity, and loss of D,D-carboxypeptidase activity.
Conclusions:
- ddcP is crucial for high-level ampicillin resistance in E. faecium.
- The M-TraM platform offers a powerful tool for E. faecium functional genomics.
- This study expands the understanding of the genetic basis of β-lactam resistance in this pathogen.
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