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A novel efflux system in inducibly erythromycin-resistant strains of Streptococcus pyogenes
Eleonora Giovanetti1, Andrea Brenciani, Roberto Burioni
1Department of Microbiology and Biomedical Sciences, University of Ancona Medical School, 60131 Ancona, Italy.
Abstract:
Streptococcus pyogenes strains inducibly resistant (iMLS phenotype) to macrolide, lincosamide, and streptogramin B (MLS) antibiotics can be subdivided into three phenotypes: iMLS-A, iMLS-B, and iMLS-C. This study focused on inducibly erythromycin-resistant S. pyogenes strains of the iMLS-B and iMLS-C types, which are very similar and virtually indistinguishable in a number of phenotypic and genotypic features but differ clearly in their degree of resistance to MLS antibiotics (high in the iMLS-B type and low in the iMLS-C type). As expected, the iMLS-B and iMLS-C test strains had the erm(A) methylase gene; the iMLS-A and the constitutively resistant (cMLS) isolates had the erm(B) methylase gene; and a control M isolate had the mef(A) efflux gene. mre(A) and msr(A), i.e., other macrolide efflux genes described in gram-positive cocci, were not detected in any test strain. With a radiolabeled erythromycin method for determination of the intracellular accumulation of the drug in the absence or presence of an efflux pump inhibitor, active efflux of erythromycin was observed in the iMLS-B isolates as well as in the M isolate, whereas no efflux was demonstrated in the iMLS-C isolates. By the triple-disk (erythromycin plus clindamycin and josamycin) test, performed both in normal test medium and in the same medium supplemented with the efflux pump inhibitor, under the latter conditions iMLS-B and iMLS-C strains were no longer distinguishable, all exhibiting an iMLS-C phenotype. In conjugation experiments with an iMLS-B isolate as the donor and a Rif(r) Fus(r) derivative of an iMLS-C isolate as the recipient, transconjugants which shared the iMLS-B type of the donor under all respects, including the presence of an efflux pump, were obtained. These results indicate the existence of a novel, transferable efflux system, not associated with mef(A) or with other known macrolide efflux genes, that is peculiar to iMLS-B strains. Whereas the low-level resistance of iMLS-C strains to MLS antibiotics is apparently due to erm(A)-encoded methylase activity, the high-level resistance of iMLS-B strains appears to depend on the same methylase activity plus the new efflux system.
Insights
Streptococcus pyogenes strains with inducibly macrolide, lincosamide, and streptogramin B (MLS) resistance were studied. A novel, transferable efflux system was identified in high-resistance iMLS-B strains, distinct from known efflux genes.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Streptococcus pyogenes exhibits inducible resistance to macrolide, lincosamide, and streptogramin B (MLS) antibiotics, categorized into iMLS-A, iMLS-B, and iMLS-C phenotypes.
- iMLS-B and iMLS-C strains share genotypic and phenotypic similarities but differ in MLS antibiotic resistance levels (high for iMLS-B, low for iMLS-C).
Purpose of the Study:
- To investigate the mechanisms underlying the differential resistance levels in iMLS-B and iMLS-C Streptococcus pyogenes strains.
- To identify and characterize potential novel resistance mechanisms, particularly efflux systems, in these strains.
Main Methods:
- Genotypic analysis to detect erm(A) and mef(A) genes.
- Radiolabeled erythromycin accumulation assays with and without efflux pump inhibitors.
- Triple-disk diffusion tests with and without efflux pump inhibitors.
- Conjugation experiments to assess transferability of resistance.
Main Results:
- iMLS-B and iMLS-C strains harbored the erm(A) methylase gene; M isolates had mef(A).
- Active erythromycin efflux was detected in iMLS-B strains but not in iMLS-C strains.
- Conjugation experiments successfully transferred the iMLS-B phenotype, including the efflux pump, to an iMLS-C recipient.
- A novel, transferable efflux system, independent of mef(A) or other known macrolide efflux genes, was identified in iMLS-B strains.
Conclusions:
- The low-level MLS resistance in iMLS-C strains is attributed to erm(A)-encoded methylase activity.
- High-level MLS resistance in iMLS-B strains results from erm(A) methylase activity combined with a novel, transferable efflux system.
- This novel efflux system contributes significantly to macrolide resistance in Streptococcus pyogenes.