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Convergent Evolution of Antibiotic Tolerance in Patients with Persistent Methicillin-Resistant Staphylococcus aureus
Mitra M Elgrail1, Edwin Chen1, Marla G Shaffer1
1Department of Medicine, Division of Infectious Diseases, University of Pittsburghgrid.21925.3d School of Medicine, Pittsburgh, Pennsylvania, USA.
Abstract:
Severe infections caused by methicillin-resistant Staphylococcus aureus (MRSA) are often complicated by persistent bacteremia (PB) despite active antibiotic therapy. Antibiotic resistance rarely contributes to MRSA-PB, suggesting an important role for antibiotic tolerance pathways. To identify bacterial factors associated with PB, we sequenced the whole genomes of 206 MRSA isolates derived from 20 patients with PB and looked for genetic signatures of adaptive within-host evolution. We found that genes involved in the tricarboxylic acid cycle (citZ and odhA) and stringent response (rel) bore repeated, independent, protein-altering mutations across multiple infections, indicative of convergent evolution. Both pathways have been linked previously to antibiotic tolerance. Mutations in citZ were identified most frequently, and further study showed they caused antibiotic tolerance through the loss of citrate synthase activity. Isolates harboring mutant alleles (citZ, odhA, and rel) were sampled at a low frequency from each patient but were detected in 10 (50%) of the patients. These results suggest that subpopulations of antibiotic-tolerant mutants emerge commonly during MRSA-PB. Methicillin-resistant Staphylococcus aureus (MRSA) is a leading cause of hospital-acquired infection. In severe cases, bacteria invade the bloodstream and cause bacteremia, a condition associated with high mortality. We analyzed the genomes of serial MRSA isolates derived from patients with bacteremia that persisted through active antibiotic therapy and found a frequent evolution of pathways leading to antibiotic tolerance. Antibiotic tolerance is distinct from antibiotic resistance, and the role of tolerance in clinical failure of antibiotic therapy is defined poorly. Our results show genetic evidence that perturbation of specific metabolic pathways plays an important role in the ability of MRSA to evade antibiotics during severe infection.
Insights
Subpopulations of antibiotic-tolerant methicillin-resistant Staphylococcus aureus (MRSA) commonly emerge during persistent bacteremia, evading antibiotic treatment by altering metabolic pathways like the tricarboxylic acid cycle.
Area of Science:
- Microbiology
- Genomics
- Infectious Diseases
Background:
- Severe methicillin-resistant Staphylococcus aureus (MRSA) infections can lead to persistent bacteremia (PB) despite antibiotic treatment.
- Antibiotic resistance is rarely the cause of MRSA-PB, indicating a role for antibiotic tolerance pathways.
Purpose of the Study:
- To identify bacterial factors contributing to persistent bacteremia in MRSA infections.
- To investigate genetic signatures of within-host evolution in MRSA during PB.
Main Methods:
- Whole-genome sequencing of 206 MRSA isolates from 20 patients with PB.
- Analysis of genetic mutations in genes related to the tricarboxylic acid cycle and stringent response.
Main Results:
- Convergent evolution was observed, with repeated, independent mutations in genes like citZ, odhA, and rel.
- Mutations in citZ were most frequent, causing antibiotic tolerance by impairing citrate synthase activity.
- Antibiotic-tolerant mutant subpopulations were detected in 50% of patients, though at low frequencies.
Conclusions:
- Subpopulations of antibiotic-tolerant MRSA mutants frequently emerge during persistent bacteremia.
- Perturbation of specific metabolic pathways, such as the tricarboxylic acid cycle, is crucial for MRSA's ability to evade antibiotics in severe infections.
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