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Legionella pneumophila Outer Membrane Vesicles: Isolation and Analysis of Their Pro-inflammatory Potential on Macrophages
Published on: February 22, 2017
Ribosomal Mutations Conferring Macrolide Resistance in Legionella pneumophila
Ghislaine Descours1,2,3,4, Christophe Ginevra5,2,3,4, Nathalie Jacotin4
1CIRI, Centre International de Recherche en Infectiologie, Equipe Pathogénèse des Légionelles, Lyon, France ghislaine.descours@univ-lyon1.fr.
Abstract:
Monitoring the emergence of antibiotic resistance is a recent issue in the treatment of Legionnaires' disease. Macrolides are recommended as first-line therapy, but resistance mechanisms have not been studied in Legionella species. Our aim was to determine the molecular basis of macrolide resistance in L. pneumophila Twelve independent lineages from a common susceptible L. pneumophila ancestral strain were propagated under conditions of erythromycin or azithromycin pressure to produce high-level macrolide resistance. Whole-genome sequencing was performed on 12 selected clones, and we investigated mutations common to all lineages. We reconstructed the dynamics of mutation for each lineage and demonstrated their involvement in decreased susceptibility to macrolides. The resistant mutants were produced in a limited number of passages to obtain a 4,096-fold increase in erythromycin MICs. Mutations affected highly conserved 5-amino-acid regions of L4 and L22 ribosomal proteins and of domain V of 23S rRNA (G2057, A2058, A2059, and C2611 nucleotides). The early mechanisms mainly affected L4 and L22 proteins and induced a 32-fold increase in the MICs of the selector drug. Additional mutations related to 23S rRNA mostly occurred later and were responsible for a major increase of macrolide MICs, depending on the mutated nucleotide, the substitution, and the number of mutated genes among the three rrl copies. The major mechanisms of the decreased susceptibility to macrolides in L. pneumophila and their dynamics were determined. The results showed that macrolide resistance could be easily selected in L. pneumophila and warrant further investigations in both clinical and environmental settings.
Insights
Antibiotic resistance is emerging in Legionnaires
Area of Science:
- Microbiology
- Molecular Biology
- Antimicrobial Resistance
Background:
- Legionnaires' disease treatment relies on macrolides, but resistance mechanisms in Legionella are unknown.
- Monitoring antibiotic resistance is crucial for effective disease management.
Purpose of the Study:
- To elucidate the molecular basis and dynamics of macrolide resistance in *L. pneumophila*.
- To understand how resistance develops under antibiotic pressure.
Main Methods:
- Propagating *L. pneumophila* lineages under erythromycin/azithromycin pressure.
- Whole-genome sequencing of resistant mutants.
- Analyzing mutations in ribosomal proteins (L4, L22) and 23S rRNA.
Main Results:
- High-level macrolide resistance (4,096-fold increase in MICs) was rapidly selected.
- Mutations in conserved regions of L4, L22 ribosomal proteins and 23S rRNA (G2057, A2058, A2059, C2611) were identified.
- Early mutations in L4/L22 increased resistance 32-fold, with later 23S rRNA mutations causing further significant increases.
Conclusions:
- Macrolide resistance can be easily selected in *L. pneumophila*.
- Understanding resistance mechanisms is vital for clinical and environmental surveillance of Legionnaires' disease.
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