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Convergent Evolution Driven by Rifampin Exacerbates the Global Burden of Drug-Resistant Staphylococcus aureus
Romain Guérillot1, Anders Gonçalves da Silva1,2, Ian Monk1
1Department of Microbiology and Immunology, The University of Melbourne at the Doherty Institute for Infection and Immunity, Melbourne, Victoria, Australia.
Abstract:
Mutations in the beta-subunit of bacterial RNA polymerase (RpoB) cause resistance to rifampin (Rifr), a critical antibiotic for treatment of multidrug-resistant Staphylococcus aureus. In vitro studies have shown that RpoB mutations confer decreased susceptibility to other antibiotics, but the clinical relevance is unknown. Here, by analyzing 7,099 S. aureus genomes, we demonstrate that the most prevalent RpoB mutations promote clinically relevant phenotypic plasticity resulting in the emergence of stable S. aureus lineages, associated with increased risk of therapeutic failure through generation of small-colony variants (SCVs) and coresistance to last-line antimicrobial agents. We found eight RpoB mutations that accounted for 93% (469/505) of the total number of Rifr mutations. The most frequently selected amino acid substitutions affecting residue 481 (H481N/Y) were associated with worldwide expansions of Rifr clones spanning decades. Recreating the H481N/Y mutations confirmed no impact on S. aureus growth, but the H481N mutation promoted the emergence of a subpopulation of stable Rifr SCVs with reduced susceptibility to vancomycin and daptomycin. Recreating the other frequent RpoB mutations showed similar impacts on resistance to these last-line agents. We found that 86% of all Rifr isolates in our global sample carried the mutations promoting cross-resistance to vancomycin and 52% to both vancomycin and daptomycin. As four of the most frequent RpoB mutations confer only low-level Rifr, equal to or below some international breakpoints, we recommend decreasing these breakpoints and reconsidering the appropriate use of rifampin to reduce the fixation and spread of these clinically deleterious mutations. IMPORTANCE Increasing antibiotic resistance in the major human pathogen Staphylococcus aureus is threatening the ability to treat patients with these infections. Recent laboratory studies suggest that mutations in the gene commonly associated with rifampin resistance may also impact susceptibility to other last-line antibiotics in S. aureus; however, the overall frequency and clinical impact of these mutations are unknown. By mining a global collection of clinical S. aureus genomes and by mutagenesis experiments, this work reveals that common rifampin-induced rpoB mutations promote phenotypic plasticity that has led to the global emergence of stable, multidrug-resistant S. aureus lineages that are associated with increased risk of therapeutic failure through coresistance to other last-line antimicrobials. We recommend decreasing susceptibility breakpoints for rifampin to allow phenotypic detection of critical rpoB mutations conferring low resistance to rifampin and reconsidering the appropriate use of rifampin to reduce the fixation and spread of these deleterious mutations globally.
Insights
Common mutations causing rifampin resistance in Staphylococcus aureus also lead to resistance against last-line antibiotics. These RpoB mutations promote the emergence of multidrug-resistant lineages, increasing therapeutic failure risk.
Area of Science:
- Microbiology and Infectious Diseases
- Genomics and Molecular Biology
- Antimicrobial Resistance
Background:
- Mutations in the RNA polymerase beta-subunit (RpoB) confer rifampin resistance (Rifr) in Staphylococcus aureus.
- Previous in vitro studies suggested RpoB mutations might decrease susceptibility to other antibiotics, but clinical relevance remained unclear.
Purpose of the Study:
- To investigate the clinical relevance and genomic impact of prevalent RpoB mutations in Staphylococcus aureus.
- To determine if common RpoB mutations contribute to cross-resistance to last-line antibiotics and therapeutic failure.
Main Methods:
- Analysis of 7,099 clinical S. aureus genomes to identify prevalent Rifr-associated RpoB mutations.
- Recreation of specific RpoB mutations (H481N/Y and others) in S. aureus to assess phenotypic effects.
- Evaluation of susceptibility to vancomycin and daptomycin in mutated strains, including small-colony variants (SCVs).
Main Results:
- Eight RpoB mutations accounted for 93% of Rifr mutations, with H481N/Y substitutions linked to global Rifr clone expansion.
- H481N mutation did not affect growth but promoted stable Rifr SCVs with reduced susceptibility to vancomycin and daptomycin.
- 86% of Rifr isolates showed cross-resistance to vancomycin, and 52% to both vancomycin and daptomycin.
Conclusions:
- Prevalent RpoB mutations drive clinically relevant phenotypic plasticity, leading to stable, multidrug-resistant S. aureus lineages.
- These mutations increase the risk of therapeutic failure via SCV generation and cross-resistance to last-line agents.
- Recommendations include lowering rifampin susceptibility breakpoints and reconsidering its use to curb the spread of deleterious mutations.
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