Role of Class A Penicillin-Binding Proteins in PBP5-Mediated β-Lactam Resistance inEnterococcus faecalis
Open Access
- 1 March 2004
- journal article
- research article
- Published by American Society for Microbiology in Journal of Bacteriology
- Vol. 186 (5) , 1221-1228
- https://doi.org/10.1128/jb.186.5.1221-1228.2004
Abstract
Peptidoglycan polymerization complexes contain multimodular penicillin-binding proteins (PBP) of classes A and B that associate a conserved C-terminal transpeptidase module to an N-terminal glycosyltransferase or morphogenesis module, respectively. In Enterococcus faecalis, class B PBP5 mediates intrinsic resistance to the cephalosporin class of β-lactam antibiotics, such as ceftriaxone. To identify the glycosyltransferase partner(s) of PBP5, combinations of deletions were introduced in all three class A PBP genes of E. faecalis JH2-2 (ponA, pbpF, and pbpZ). Among mutants with single or double deletions, only JH2-2 ΔponA ΔpbpF was susceptible to ceftriaxone. Ceftriaxone resistance was restored by heterologous expression of pbpF from Enterococcus faecium but not by mgt encoding the monofunctional glycosyltransferase of Staphylococcus aureus. Thus, PBP5 partners essential for peptidoglycan polymerization in the presence of β-lactams formed a subset of the class A PBPs of E. faecalis, and heterospecific complementation was observed with an ortholog from E. faecium. Site-directed mutagenesis of pbpF confirmed that the catalytic serine residue of the transpeptidase module was not required for resistance. None of the three class A PBP genes was essential for viability, although deletion of the three genes led to an increase in the generation time and to a decrease in peptidoglycan cross-linking. As the E. faecalis chromosome does not contain any additional glycosyltransferase-related genes, these observations indicate that glycan chain polymerization in the triple mutant is performed by a novel type of glycosyltransferase. The latter enzyme was not inhibited by moenomycin, since deletion of the three class A PBP genes led to high-level resistance to this glycosyltransferase inhibitor.Keywords
This publication has 49 references indexed in Scilit:
- Synthesis of the l-Alanyl-l-alanine Cross-bridge of Enterococcus faecalis PeptidoglycanJournal of Biological Chemistry, 2002
- Balance between Two Transpeptidation Mechanisms Determines the Expression of β-Lactam Resistance in Enterococcus faeciumJournal of Biological Chemistry, 2002
- Role of Penicillin-Binding Protein 5 in Expression of Ampicillin Resistance and Peptidoglycan Structure in Enterococcus faeciumAntimicrobial Agents and Chemotherapy, 2001
- Recruitment of the mecA Gene Homologue of Staphylococcus sciuri into a Resistance Determinant and Expression of the Resistant Phenotype in Staphylococcus aureusJournal of Bacteriology, 2001
- Novel Mechanism of β-Lactam Resistance Due to Bypass of DD-Transpeptidation in Enterococcus faeciumJournal of Biological Chemistry, 2000
- Regulated interactions between partner and non-partner sensors and response regulators that control glycopeptide resistance gene expression in enterococciMicrobiology, 1999
- Cloning, sequencing and expression inEscherichia coliof the low-affinity penicillin binding protein ofEnterococcus faecalisFEMS Microbiology Letters, 1994
- Interspecies recombinational events during the evolution of altered PBP 2x genes in penicillin‐resistant clinical isolates of Streptococcus pneumoniaeMolecular Microbiology, 1991
- In Streptococcus faecium Penicillin-binding Protein 5 Alone Is Sufficient for Growth at Sub-maximal But Not at Maximal RateMicrobiology, 1986
- One or Two Low Affinity Penicillin-binding Proteins May Be Responsible for the Range of Susceptibility of Enterococcus faecium to BenzylpenicillinMicrobiology, 1985