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Digital PCR for Detection and Quantification of Fluoroquinolone Resistance in Legionella pneumophila
Aurélie Hennebique1,2, Marie Bidart3,4, Sophie Jarraud5,6
1Institut de Biologie et de Pathologie, Centre Hospitalier Universitaire Grenoble Alpes, Grenoble, France ahennebique@chu-grenoble.fr sboisset@chu-grenoble.fr.
Abstract:
The emergence of fluoroquinolone (FQ)-resistant mutants of Legionella pneumophila in infected humans was previously reported using a next-generation DNA sequencing (NGS) approach. This finding could explain part of the therapeutic failures observed in legionellosis patients treated with these antibiotics. The aim of this study was to develop digital PCR (dPCR) assays allowing rapid and accurate detection and quantification of these resistant mutants in respiratory samples, especially when the proportion of mutants in a wild-type background is low. We designed three dPCRgyrA assays to detect and differentiate the wild-type and one of the three gyrA mutations previously described as associated with FQ resistance in L. pneumophila: at positions 248C→T (T83I), 259G→A (D87N), and 259G→C (D87H). To assess the performance of these assays, mixtures of FQ-resistant and -susceptible strains of L. pneumophila were analyzed, and the results were compared with those obtained with Sanger DNA sequencing and real-time quantitative PCR (qPCR) technologies. The dPCRgyrA assays were able to detect mutated gyrA sequences in the presence of wild-type sequences at up to 1:1,000 resistant/susceptible allele ratios. By comparison, Sanger DNA sequencing and qPCR were less sensitive, allowing the detection of gyrA mutants at up to 1:1 and 1:10 ratios, respectively. When testing 38 respiratory samples from 23 legionellosis patients (69.6% treated with an FQ), dPCRgyrA detected small amounts of gyrA mutants in four (10.5%) samples from three (13.0%) patients. These results demonstrate that dPCR is a highly sensitive alternative to quantify FQ resistance in L. pneumophila, and it could be used in clinical practice to detect patients that could be at higher risk of therapeutic failure.
Insights
Digital PCR (dPCR) assays can detect fluoroquinolone-resistant *Legionella pneumophila* mutants at low levels. This highly sensitive method aids in identifying patients at risk of therapeutic failure in legionellosis treatment.
Area of Science:
- Molecular Biology
- Antimicrobial Resistance
- Infectious Diseases
Background:
- Fluoroquinolone (FQ)-resistant *Legionella pneumophila* mutants have emerged, contributing to therapeutic failures in legionellosis.
- Accurate detection of low-proportion mutants is crucial for predicting treatment outcomes.
Purpose of the Study:
- To develop and validate digital PCR (dPCR) assays for rapid and sensitive detection of FQ-resistant *L. pneumophila* *gyrA* mutations.
- To compare the sensitivity of dPCR with Sanger sequencing and real-time quantitative PCR (qPCR).
Main Methods:
- Designed three dPCR assays targeting specific *gyrA* mutations associated with FQ resistance in *L. pneumophila*.
- Tested assay performance using mixtures of resistant and susceptible strains.
- Analyzed clinical respiratory samples from legionellosis patients.
Main Results:
- dPCR assays detected *gyrA* mutants at resistant/susceptible allele ratios as low as 1:1,000, significantly outperforming Sanger sequencing (1:1) and qPCR (1:10).
- dPCR identified low-level *gyrA* mutants in 10.5% of respiratory samples from legionellosis patients.
- Four patients (13.0%) had detectable *gyrA* mutants, suggesting potential FQ resistance.
Conclusions:
- dPCR offers a highly sensitive method for quantifying FQ resistance in *L. pneumophila*.
- This technique can be valuable in clinical settings to identify patients at higher risk of therapeutic failure.
- dPCR facilitates early detection of antimicrobial resistance in *Legionella* infections.
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