Penicillin Binding Protein Substitutions Cooccur with Fluoroquinolone Resistance in Epidemic Lineages of

Kate E Dingle1,2, Jane Freeman3,4, Xavier Didelot5

  • 1Nuffield Department of Clinical Medicine, John Radcliffe Hospital, Oxford University, Oxford, United Kingdom.

Mbio
|April 5, 2023
PubMed

Insights

New research reveals that amino acid substitutions in penicillin-binding proteins (PBPs) are linked to increased cephalosporin resistance in Clostridioides difficile. These changes, often co-occurring with fluoroquinolone resistance, contribute to multidrug-resistant infections.

Area of Science:

  • Microbiology
  • Genetics
  • Infectious Diseases

Background:

  • Clostridioides difficile is a major cause of healthcare-associated infections, with multidrug-resistant strains leading to high-mortality outbreaks.
  • Cephalosporin use is a known risk factor, and antimicrobial stewardship is crucial for control.
  • Mechanisms for cephalosporin resistance in C. difficile, unlike other bacteria, were not well understood.

Purpose of the Study:

  • To investigate recent amino acid substitutions in C. difficile penicillin-binding proteins (PBPs).
  • To determine the association of these substitutions with cephalosporin minimum inhibitory concentrations (MICs).
  • To examine the co-occurrence of these substitutions with fluoroquinolone resistance.

Main Methods:

  • Analysis of 7,096 publicly available C. difficile genome assemblies.
  • Measurement of beta-lactam MICs in wild-type versus PBP-substituted isolates.
  • Construction of recombination-corrected phylogenies to date substitution emergence.

Main Results:

  • Recent amino acid substitutions were identified in PBP1 (50 genomes) and PBP3 (48 genomes).
  • Key substitutions (e.g., PBP3 V497L, PBP1 T674I/N/V) emerged independently across lineages.
  • These substitutions significantly increased cephalosporin MICs (up to 1,506 μg/mL) and coincided with fluoroquinolone resistance acquisition.

Conclusions:

  • Recent substitutions in PBP1 and PBP3 are associated with elevated cephalosporin MICs in C. difficile.
  • Co-occurrence with fluoroquinolone resistance complicates understanding drug impact on epidemic lineages.
  • Further studies on cephalosporin and fluoroquinolone stewardship are needed for effective outbreak control.

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