Induction of efflux-mediated macrolide resistance in Streptococcus pneumoniae
Scott T Chancey1, Xiaoliu Zhou, Dorothea Zähner
1Division of Infectious Diseases, Department of Medicine, Emory University School of Medicine, Atlanta, Georgia 30322, USA.
Abstract:
The antimicrobial efflux system encoded by the operon mef(E)-mel on the mobile genetic element MEGA in Streptococcus pneumoniae and other Gram-positive bacteria is inducible by macrolide antibiotics and antimicrobial peptides. Induction may affect the clinical response to the use of macrolides. We developed mef(E) reporter constructs and a disk diffusion induction and resistance assay to determine the kinetics and basis of mef(E)-mel induction. Induction occurred rapidly, with a >15-fold increase in transcription within 1 h of exposure to subinhibitory concentrations of erythromycin. A spectrum of environmental conditions, including competence and nonmacrolide antibiotics with distinct cellular targets, did not induce mef(E). Using 16 different structurally defined macrolides, induction was correlated with the amino sugar attached to C-5 of the macrolide lactone ring, not with the size (e.g., 14-, 15- or 16-member) of the ring or with the presence of the neutral sugar cladinose at C-3. Macrolides with a monosaccharide attached to C-5, known to block exit of the nascent peptide from the ribosome after the incorporation of up to eight amino acids, induced mef(E) expression. Macrolides with a C-5 disaccharide, which extends the macrolide into the ribosomal exit tunnel, disrupting peptidyl transferase activity, did not induce it. The induction of mef(E) did not require macrolide efflux, but the affinity of macrolides for the ribosome determined the availability for efflux and pneumococcal susceptibility. The induction of mef(E)-mel expression by inducing macrolides appears to be based on specific interactions of the macrolide C-5 saccharide with the ribosome that alleviate transcriptional attenuation of mef(E)-mel.
Insights
The mef(E)-mel efflux pump in Streptococcus pneumoniae is rapidly induced by specific macrolide antibiotics. This induction is linked to the macrolide
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- The mef(E)-mel operon in Gram-positive bacteria, including Streptococcus pneumoniae, encodes an antimicrobial efflux system.
- This system is inducible by macrolide antibiotics and antimicrobial peptides, potentially impacting treatment outcomes.
- Understanding the induction mechanism is crucial for addressing macrolide resistance.
Purpose of the Study:
- To investigate the kinetics and molecular basis of mef(E)-mel operon induction.
- To identify specific macrolide structural features that trigger mef(E)-mel expression.
- To elucidate the relationship between macrolide-ribosome interaction, efflux, and bacterial susceptibility.
Main Methods:
- Development of mef(E) reporter constructs.
- Disk diffusion induction and resistance assays.
- Testing a panel of 16 structurally diverse macrolides to determine induction triggers.
Main Results:
- Rapid induction (>15-fold increase in transcription within 1 hour) of mef(E) by subinhibitory erythromycin concentrations.
- Induction specificity: correlated with the C-5 amino sugar of the macrolide lactone ring, not ring size or cladinose presence.
- Macrolides with a C-5 monosaccharide induced mef(E), while those with a C-5 disaccharide did not.
- Induction is independent of macrolide efflux but influenced by macrolide-ribosome affinity.
Conclusions:
- Macrolide induction of mef(E)-mel expression is mediated by specific interactions of the C-5 saccharide with the ribosome.
- These interactions alleviate transcriptional attenuation of the mef(E)-mel operon.
- Ribosome binding affinity influences macrolide availability for efflux and subsequent bacterial susceptibility.
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