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Cefoperazone-treated Mouse Model of Clinically-relevant Clostridium difficile Strain R20291
Published on: December 10, 2016
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.
Abstract:
Clostridioides difficile remains a key cause of healthcare-associated infection, with multidrug-resistant (MDR) lineages causing high-mortality (≥20%) outbreaks. Cephalosporin treatment is a long-established risk factor, and antimicrobial stewardship is a key control. A mechanism underlying raised cephalosporin MICs has not been identified in C. difficile, but among other species, this is often acquired via amino acid substitutions in cell wall transpeptidases (penicillin binding proteins [PBPs]). Here, we investigated five C. difficile transpeptidases (PBP1 to PBP5) for recent substitutions, associated cephalosporin MICs, and co-occurrence with fluoroquinolone resistance. Previously published genome assemblies (n = 7,096) were obtained, representing 16 geographically widespread lineages, including healthcare-associated ST1(027). Recent amino acid substitutions were found within PBP1 (n = 50) and PBP3 (n = 48), ranging from 1 to 10 substitutions per genome. β-Lactam MICs were measured for closely related pairs of wild-type and PBP-substituted isolates separated by 20 to 273 single nucleotide polymorphisms (SNPs). Recombination-corrected phylogenies were constructed to date substitution acquisition. Key substitutions such as PBP3 V497L and PBP1 T674I/N/V emerged independently across multiple lineages. They were associated with extremely high cephalosporin MICs; 1 to 4 doubling dilutions >wild-type, up to 1,506 μg/mL. Substitution patterns varied by lineage and clade, showed geographic structure, and occurred post-1990, coincident with the gyrA and/or gyrB substitutions conferring fluoroquinolone resistance. In conclusion, recent PBP1 and PBP3 substitutions are associated with raised cephalosporin MICs in C. difficile. Their co-occurrence with fluoroquinolone resistance hinders attempts to understand the relative importance of these drugs in the dissemination of epidemic lineages. Further controlled studies of cephalosporin and fluoroquinolone stewardship are needed to determine their relative effectiveness in outbreak control. IMPORTANCE Fluoroquinolone and cephalosporin use in healthcare settings has triggered outbreaks of high-mortality, multidrug-resistant C. difficile infection. Here, we identify a mechanism associated with raised cephalosporin MICs in C. difficile comprising amino acid substitutions in two cell wall transpeptidase enzymes (penicillin binding proteins). The higher the number of substitutions, the greater the impact on phenotype. Dated phylogenies revealed that substitutions associated with raised cephalosporin and fluoroquinolone MICs were co-acquired immediately before clinically important outbreak strains emerged. PBP substitutions were geographically structured within genetic lineages, suggesting adaptation to local antimicrobial prescribing. Antimicrobial stewardship of cephalosporins and fluoroquinolones is an effective means of C. difficile outbreak control. Genetic changes associated with raised MIC may impart a "fitness cost" after antibiotic withdrawal. Our study therefore identifies a mechanism that may explain the contribution of cephalosporin stewardship to resolving outbreak conditions. However, due to the co-occurrence of raised cephalosporin MICs and fluoroquinolone resistance, further work is needed to determine the relative importance of each.
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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