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Induction of ribosome methylation in MLS-resistant Streptococcus pneumoniae by macrolides and ketolides
1AP52-1N, Antibacterial Department, Abbott Laboratories, Abbott Park, IL 60064, USA.
Abstract:
One major mechanism for resistance to macrolide antibiotics in Streptococcus pneumoniae is MLS (macrolide, lincosamide, and streptogramin B) resistance, manifested when the 23S rRNA is methylated by the product of an erm gene. This modification results in the decreased binding of all known macrolide, lincosamide, and streptogramin B antibiotics to the ribosome. More than 30 ermAM-containing clinical isolates of S. pneumoniae were examined in our lab and showed high-level resistance (MIC > or =128 microg/ml) to erythromycin, azithromycin, tylosin, clindamycin, and ketolide (macrolides that lack the cladinose sugar) TE-802. We found that the new generation of ketolides A965 and A088 displayed variable activity against the same group of resistant S. pneumoniae strains. To understand the basis of variability of the minimal inhibitory concentration (MIC) values of A965 and A088, we examined the effects of a series of macrolides and ketolides on the level of 23S rRNA methylation in five ermAM-containing resistant S. pneumoniae isolates. We show here that the basal levels of ribosomal methylation vary from strain to strain. The level of rRNA methylation can be strongly induced by erythromycin, azithromycin, and TE-802, resulting in high-level of resistance to these compounds. Ketolide A965 and A088, however, are weak inducers at sub-MIC drug concentrations, therefore showing variable activities in strains with differential methylation levels.
Insights
Macrolide resistance in Streptococcus pneumoniae often stems from 23S rRNA methylation. New ketolides show variable activity against resistant strains due to differing induction levels of this methylation.
Area of Science:
- Microbiology
- Molecular Biology
- Antibiotic Resistance
Background:
- Macrolide, lincosamide, and streptogramin B (MLS) resistance in Streptococcus pneumoniae is primarily mediated by 23S rRNA methylation.
- This ribosomal modification, driven by erm genes, reduces antibiotic binding, conferring high-level resistance.
Purpose of the Study:
- To investigate the variable activity of novel ketolides (A965, A088) against MLS-resistant Streptococcus pneumoniae.
- To elucidate the relationship between 23S rRNA methylation levels and the efficacy of different macrolides and ketolides.
Main Methods:
- Analysis of over 30 ermAM-positive clinical isolates of S. pneumoniae for resistance levels.
- Examination of 23S rRNA methylation induction by various macrolides and ketolides in five resistant strains.
Main Results:
- Erythromycin, azithromycin, and TE-802 strongly induce 23S rRNA methylation, leading to high resistance.
- Novel ketolides A965 and A088 are weak inducers of methylation at sub-MIC concentrations.
- Variable strain-to-strain basal methylation levels correlate with differential activity of A965 and A088.
Conclusions:
- The efficacy of new ketolides against resistant S. pneumoniae is influenced by their weak induction of ribosomal methylation.
- Understanding methylation induction is crucial for predicting the activity of novel macrolide-class antibiotics.