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Published on: January 27, 2021
Role of mprF1 and mprF2 in the pathogenicity of Enterococcus faecalis
Yinyin Bao1, Tuerkan Sakinc, Diana Laverde
1Division of Infectious Diseases, Department of Medicine, University Hospital Freiburg, Freiburg, Germany.
Background:
Enterococcus faecalis is one of the leading causes of nosocomial infections. Due to its innate and acquired resistance to most antibiotics, identification of new targets for antimicrobial treatment of E. faecalis is a high priority. The multiple peptide resistance factor MprF, which was first described in Staphylococcus aureus, modifies phosphatidylglycerol with lysin and reduces the negative charge of the membrane, thus increasing resistance to cationic antimicrobial peptides. We studied the effect of mprF in E. faecalis regarding influence on bacterial physiology and virulence.
Results:
Two putative mprF paralogs (mprF1 and mprF2) were identified in E. faecalis by BLAST search using the well-described S. aureus gene as a lead. Two deletion mutants in E. faecalis 12030 were created by homologous recombination. Analysis of both mutants by thin-layer chromatography showed that inactivation of mprF2 abolishes the synthesis of three distinct amino-phosphatidylglycerols (PGs). In contrast, deletion of mprF1 did not interfere with the biosynthesis of amino-PG. Inactivation of mprF2 increased susceptibility against several antimicrobial peptides and resulted in a 42% increased biofilm formation compared to wild-type mprF. However, resistance to opsonic killing was increased in the mutant, while virulence in a mouse bacteremia model was unchanged.
Conclusion:
Our data suggest that only mprF2 is involved in the aminoacylation of PG in enterococci, and is probably responsible for synthesis of Lys-PG, Ala-PG, and Arg-PG, while mprF1 does not seem to have a role in aminoacylation. As in other Gram-positive pathogens, aminoacylation through MprF2 increases resistance against cationic antimicrobial peptides. Unlike mprF found in other bacteria, mprF2 does not seem to be a major virulence factor in enterococci.
Insights
Enterococcus faecalis resistance to antibiotics is a major concern. Researchers found that the MprF2 protein in E. faecalis modifies cell membranes, increasing resistance to antimicrobial peptides but not significantly impacting virulence.
Area of Science:
- Microbiology
- Molecular Biology
- Antimicrobial Resistance
Background:
- Enterococcus faecalis is a leading cause of hospital-acquired infections.
- High antibiotic resistance necessitates new antimicrobial targets.
- The MprF protein modifies cell membranes, conferring resistance to antimicrobial peptides.
Purpose of the Study:
- To investigate the role of mprF genes in Enterococcus faecalis.
- To determine the impact of mprF on bacterial physiology and virulence.
Main Methods:
- BLAST search identified two putative mprF paralogs (mprF1, mprF2).
- Deletion mutants were created using homologous recombination.
- Thin-layer chromatography analyzed amino-phosphatidylglycerol synthesis.
Main Results:
- mprF2 inactivation abolished amino-phosphatidylglycerol synthesis.
- mprF2 deletion increased susceptibility to antimicrobial peptides.
- Biofilm formation increased by 42% in the mprF2 mutant, while resistance to opsonic killing increased.
Conclusions:
- Only mprF2 is involved in phosphatidylglycerol aminoacylation in enterococci.
- MprF2 enhances resistance to cationic antimicrobial peptides.
- mprF2 is not a major virulence factor in Enterococcus faecalis.
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