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Published on: February 23, 2021
Predominant role of msr(D) over mef(A) in macrolide resistance in Streptococcus pyogenes
Yan Zhang1,2, Ichiro Tatsuno1, Ryo Okada1
1Department of Bacteriology, Nagoya City University Graduate School of Medical Sciences, Nagoya, Japan.
Abstract:
In Japan, the number of patients with streptococcal toxic shock syndrome is reported to be increasing. mef(A) gene-positive macrolide-resistant emm1 strains are thought to possibly contribute to the rise in the frequency of STSS. Although analyses of macrolide-resistant mechanisms, including mef(A) resistance, have been performed mainly in Streptococcus pneumoniae, the role of this gene in Streptococcus pyogenes has not been completely investigated. Therefore, to the best of our knowledge, we established the first mef(A)-knockout strain using an emm1-type S. pyogenes strain, and tested its susceptibility to erythromycin, clarithromycin and azithromycin. We found that the antimicrobial susceptibilities were almost identical to those of the parental strain. Hence, we established a knockout strain for another gene, msr(D), that is located immediately downstream of mef(A). The macrolide resistances of the resulting strain significantly decreased, and were further altered when both mef(A) and msr(D) were knocked out. The introduction of the msr(D) gene into a macrolide-sensitive strain conferred more resistance than the introduction of the mef(A) gene. The erythromycin susceptibilities of knockout strains were further dissected using two additional emm4- and emm75-type S. pyogenes strains. We found almost identical results for both strains except for the mef(A) knockout emm4 type, whose susceptibility was altered, although the change was less than that for the msr(D) knockout. These results suggest that both mef(A) and msr(D) are involved in macrolide resistance in S. pyogenes, and that the msr(D) gene plays a more predominant role in macrolide resistance than mef(A).
Insights
Streptococcus pyogenes macrolide resistance is linked to mef(A) and msr(D) genes. The msr(D) gene plays a more significant role in conferring resistance than mef(A) in this pathogen.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Increasing incidence of streptococcal toxic shock syndrome (STSS) in Japan.
- Association of mef(A) gene-positive macrolide-resistant emm1 strains with rising STSS frequency.
- Limited investigation into the role of mef(A) in Streptococcus pyogenes macrolide resistance compared to Streptococcus pneumoniae.
Purpose of the Study:
- To investigate the role of mef(A) and msr(D) genes in macrolide resistance in Streptococcus pyogenes.
- To establish the first mef(A)-knockout strain in an emm1-type S. pyogenes.
- To compare the contribution of mef(A) and msr(D) to macrolide resistance.
Main Methods:
- Construction of mef(A)-knockout and msr(D)-knockout S. pyogenes strains (emm1, emm4, emm75 types).
- Antimicrobial susceptibility testing against erythromycin, clarithromycin, and azithromycin.
- Gene introduction experiments to assess the resistance conferred by mef(A) and msr(D).
Main Results:
- The mef(A)-knockout strain showed minimal change in antimicrobial susceptibility compared to the parental strain.
- The msr(D)-knockout strain exhibited significantly decreased macrolide resistance.
- Combined mef(A) and msr(D) knockout further altered resistance. Introduction of msr(D) conferred more resistance than mef(A).
Conclusions:
- Both mef(A) and msr(D) genes contribute to macrolide resistance in Streptococcus pyogenes.
- The msr(D) gene plays a more predominant role in macrolide resistance than the mef(A) gene.
- Findings provide insights into macrolide resistance mechanisms in S. pyogenes, relevant to STSS.
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