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Structure of the low-affinity penicillin-binding protein 5 PBP5fm in wild-type and highly penicillin-resistant
W Zorzi1, X Y Zhou, O Dardenne
1Centre d'Ingénierie des Protéines, Université de Liège, Sart Tilman, Belgium.
Abstract:
Among its penicillin-binding proteins (PBPs), Enterococcus faecium possesses a low-affinity PBP5, PBP5fm, which is the main target involved in beta-lactam resistance. A 7.7-kb EcoRI chromosomal fragment of E. faecium D63r containing the pbp5fm gene was cloned and sequenced. Two open reading frames (ORFs) were found. A 2,037-bp ORF encoded the deduced 73.8-kDa PBP5fm, the amino acid sequences of which were, respectively, 99.8, 78.5, and 62% homologous to those of the low-affinity plasmid-encoded PBP3r of Enterococcus hirae S185r and the chromosome-encoded PBP5 of E. hirae R40 and Enterococcus faecalis 56R. A second 597-bp ORF, designated psrfm, was found 2.3 kb upstream of pbp5fm. It appeared to be 285 bp shorter than and 74% homologous with the regulatory gene psr of E. hirae ATCC 9790. Different clinical isolates of E. faecium, for which a wide range of benzylpenicillin MICs were observed, showed that the increases in MICs were related to two mechanisms. For some strains of intermediate resistance (MICs of 16 to 64 micrograms/ml), the increased level of resistance could be explained by the presence of larger quantities of PBP5fm which had an affinity for benzylpenicillin (second-order rate constant of protein acylation [k+2/K] values of 17 to 25 M(-1) s(-1)) that remained unchanged. For the two most highly resistant strains, EFM-1 (MIC, 90 micrograms/ml) and H80721 (MIC, 512 micrograms/ml), the resistance was related to different amino acid substitutions yielding very-low-affinity PBP5fm variants (k+2/K < or = 1.5 M(-1) s(-1)) which were synthesized in small quantities. More specifically, it appeared, with a three-dimensional model of the C-terminal domain of PBP5fm, that the substitutions of Met-485, located in the third position after the conserved SDN triad, by Thr in EFM-1 and by Ala in H80721 were the most likely cause of the decreasing affinity of PBP5fm observed in these strains.
Insights
Enterococcus faecium resistance to beta-lactams is linked to its penicillin-binding protein 5 (PBP5fm). Increased PBP5fm quantity causes intermediate resistance, while specific amino acid changes in PBP5fm lead to high-level resistance.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Enterococcus faecium utilizes low-affinity penicillin-binding protein 5 (PBP5fm) as a primary target for beta-lactam resistance.
- Understanding the genetic and molecular basis of PBP5fm's role in resistance is crucial for developing effective treatments.
Purpose of the Study:
- To clone, sequence, and characterize the pbp5fm gene and its associated regulatory elements in Enterococcus faecium.
- To investigate the mechanisms underlying varying levels of benzylpenicillin resistance in clinical isolates.
Main Methods:
- Cloning and sequencing of a 7.7-kb EcoRI chromosomal fragment containing the pbp5fm gene from E. faecium D63r.
- Sequence analysis to identify open reading frames (ORFs) and compare homology with related genes.
- Determination of benzylpenicillin minimum inhibitory concentrations (MICs) and kinetic analysis of PBP5fm affinity.
Main Results:
- Two ORFs were identified: pbp5fm encoding PBP5fm and psrfm, a putative regulatory gene.
- Intermediate resistance correlated with increased quantities of PBP5fm with unchanged benzylpenicillin affinity.
- High-level resistance was associated with specific amino acid substitutions (Met-485 to Thr or Ala) in PBP5fm, drastically reducing its affinity for benzylpenicillin.
Conclusions:
- Two distinct mechanisms contribute to beta-lactam resistance in E. faecium via PBP5fm: overexpression and altered protein affinity.
- Amino acid substitutions, particularly at position 485, are critical determinants of high-level resistance by compromising PBP5fm's interaction with beta-lactams.
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