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Expression of the mef(E) gene encoding the macrolide efflux pump protein increases in Streptococcus pneumoniae with
Aleksandra K Wierzbowski1, Dave Boyd, Michael Mulvey
1Department of Medical Microbiology, Faculty of Medicine, University of Manitoba, Winnipeg, Manitoba, Canada.
Abstract:
Active macrolide efflux is a major mechanism of macrolide resistance in Streptococcus pneumoniae in many parts of the world, especially North America. In Canada, this active macrolide efflux in S. pneumoniae is predominantly due to acquisition of the mef(E) gene. In the present study, we assessed the mef(E) gene sequence as well as mef(E) expression in variety of low- and high-level macrolide-resistant, clindamycin-susceptible (M-phenotype) S. pneumoniae isolates (erythromycin MICs, 1 to 32 microg/ml; clindamycin MICs, < or = 0.25 microg/ml). Southern blot hybridization with mef(E) probe and EcoRI digestion and relative real-time reverse transcription-PCR were performed to study the mef(E) gene copy number and expression. Induction of mef(E) expression was analyzed by Etest susceptibility testing pre- and postincubation with subinhibitory concentrations of erythromycin, clarithromycin, azithromycin, telithromycin, and clindamycin. The macrolide efflux gene, mef(E), was shown to be a single-copy gene in all 23 clinical S. pneumoniae isolates tested, and expression post-macrolide induction increased 4-, 6-, 20-, and 200-fold in isolates with increasing macrolide resistance (erythromycin MICs 2, 4, 8, and 32 microg/ml, respectively). Sequencing analysis of the macrolide efflux genetic assembly (mega) revealed that mef(E) had a 16-bp deletion 153 bp upstream of the putative start codon in all 23 isolates. A 119-bp intergenic region between mef(E) and mel was sequenced, and a 99-bp deletion was found in 11 of the 23 M-phenotype S. pneumoniae isolates compared to the published mega sequence. However, the mef(E) gene was fully conserved among both high- and low-level macrolide-resistant isolates. In conclusion, increased expression of mef(E) is associated with higher levels of macrolide resistance in macrolide-resistant S. pneumoniae.
Insights
Macrolide resistance in Streptococcus pneumoniae is often due to the mef(E) gene. Increased expression of this efflux gene correlates with higher resistance levels in these bacteria.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Active macrolide efflux is a primary mechanism of macrolide resistance in Streptococcus pneumoniae, particularly in North America.
- The mef(E) gene is the predominant cause of this efflux-mediated resistance in Canadian S. pneumoniae isolates.
Purpose of the Study:
- To investigate the sequence and expression of the mef(E) gene in macrolide-resistant, clindamycin-susceptible S. pneumoniae.
- To correlate mef(E) gene copy number and expression levels with varying degrees of macrolide resistance.
Main Methods:
- Southern blot hybridization and EcoRI digestion to determine mef(E) gene copy number.
- Quantitative real-time reverse transcription-PCR to assess mef(E) gene expression.
- Etest susceptibility testing to analyze mef(E) expression induction by macrolide antibiotics.
Main Results:
- The mef(E) gene was consistently found as a single-copy gene in all tested isolates.
- Macrolide induction led to a significant increase in mef(E) expression, ranging from 4-fold to 200-fold with increasing erythromycin resistance.
- Sequencing revealed a conserved 16-bp deletion upstream of the mef(E) start codon in all isolates and a variable 99-bp deletion in the intergenic region between mef(E) and mel in some isolates.
Conclusions:
- Increased mef(E) gene expression is directly associated with higher levels of macrolide resistance in S. pneumoniae.
- The mef(E) gene sequence was conserved, suggesting regulatory mechanisms control its expression levels.
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