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Multiple Low-Reactivity Class B Penicillin-Binding Proteins Are Required for Cephalosporin Resistance in Enterococci
Dušanka Djorić1, Jaime L Little1, Christopher J Kristich2
1Department of Microbiology and Immunology, Center for Infectious Disease Research, Medical College of Wisconsin, Milwaukee, Wisconsin, USA.
Abstract:
Enterococcus faecalis and Enterococcus faecium are commensals of the gastrointestinal tract of most terrestrial organisms, including humans, and are major causes of health care-associated infections. Such infections are difficult or impossible to treat, as the enterococcal strains responsible are often resistant to multiple antibiotics. One intrinsic resistance trait that is conserved among E. faecalis and E. faecium is cephalosporin resistance, and prior exposure to cephalosporins is one of the most well-known risk factors for acquisition of an enterococcal infection. Cephalosporins inhibit peptidoglycan biosynthesis by acylating the active-site serine of penicillin-binding proteins (PBPs) to prevent the PBPs from catalyzing cross-linking during peptidoglycan synthesis. For decades, a specific PBP (known as Pbp4 or Pbp5) that exhibits low reactivity toward cephalosporins has been thought to be the primary PBP required for cephalosporin resistance. We analyzed other PBPs and report that in both E. faecalis and E. faecium, a second PBP, PbpA(2b), is also required for resistance; notably, the cephalosporin ceftriaxone exhibits a lethal effect on the ΔpbpA mutant. Strikingly, PbpA(2b) exhibits low intrinsic reactivity with cephalosporins in vivo and in vitro Unlike the Δpbp5 mutant, the ΔpbpA mutant exhibits a variety of phenotypic defects in growth kinetics, cell wall integrity, and cellular morphology, indicating that PbpA(2b) and Pbp5(4) are not functionally redundant and that PbpA(2b) plays a more central role in peptidoglycan synthesis. Collectively, our results shift the current understanding of enterococcal cephalosporin resistance and suggest a model in which PbpA(2b) and Pbp5(4) cooperate to coordinately mediate peptidoglycan cross-linking in the presence of cephalosporins.
Insights
Enterococcus strains are resistant to cephalosporins due to two penicillin-binding proteins (PBPs). PbpA(2b) and Pbp5 are crucial for resistance, with PbpA(2b) playing a central role in peptidoglycan synthesis.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Enterococcus faecalis and Enterococcus faecium are common causes of healthcare-associated infections.
- These bacteria often exhibit multidrug resistance, complicating treatment.
- Cephalosporin resistance is a conserved trait in these species, linked to penicillin-binding proteins (PBPs).
Purpose of the Study:
- To investigate the roles of different PBPs in cephalosporin resistance in E. faecalis and E. faecium.
- To identify the key PBPs involved in maintaining cell wall integrity under cephalosporin pressure.
- To challenge the existing model of cephalosporin resistance mediated solely by Pbp5.
Main Methods:
- Analysis of PBP function in Enterococcus mutants lacking specific PBP genes (e.g., ΔpbpA, Δpbp5).
- In vitro and in vivo assays to assess cephalosporin reactivity with PBPs.
- Phenotypic characterization of mutant strains, including growth kinetics, cell wall integrity, and morphology.
Main Results:
- PbpA(2b) is essential for cephalosporin resistance in both E. faecalis and E. faecium, with ceftriaxone being lethal to ΔpbpA mutants.
- PbpA(2b) exhibits low intrinsic reactivity to cephalosporins, similar to Pbp5.
- ΔpbpA mutants display significant defects in growth, cell wall integrity, and morphology, indicating PbpA(2b) has a critical role beyond Pbp5.
Conclusions:
- PbpA(2b) is a critical PBP for cephalosporin resistance and peptidoglycan synthesis in enterococci.
- PbpA(2b) and Pbp5 are not functionally redundant; PbpA(2b) plays a more central role.
- A revised model suggests PbpA(2b) and Pbp5 cooperate to mediate peptidoglycan cross-linking during cephalosporin exposure.
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