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Why do we fail with penicillin in the treatment of group A streptococcus infections?
Abstract:
Acute pharyngotonsillitis caused by beta-haemolytic group A streptococcus (GAS) is a common childhood disease. Phenoxymethyl penicillin remains the drug of choice, as no resistance has been reported so far. Nevertheless, the failure of penicillin to eradicate streptococci from the throat occurs in up to 35% of patients with pharyngotonsillitis, and might present clinical concern. Various explanations have been proposed over the years to account for this perplexing phenomenon. Among these are coexistence of oropharyngeal beta-lactamase-producing bacteria that degrade penicillin, growth interference by aerobic and anaerobic commensals, penicillin tolerance, reinfection, and poor antibiotic compliance. Although GAS has been considered an extracellular pathogen, recent studies have demonstrated that strains of this bacterium can internalize epithelial cells both in vitro and in vivo. The intracellular niche may protect the bacterium from penicillin that does not gain high intracellular concentration. In support of this hypothesis, GAS strains were shown to survive 4-7 days inside cultured epithelial cells. In addition, it was found that GAS strains isolated from patients with eradication failure harbour the internalization-associated gene, prtF1/sfbI, in higher prevalence than do strains recovered from patients with successful eradication. Thus, internalization and intracellular survival represent a novel explanation for penicillin eradication failure.
Insights
Penicillin treatment failure for strep throat may occur because group A streptococcus (GAS) bacteria can hide inside throat cells. This intracellular survival protects them from the antibiotic, explaining why some infections are hard to clear.
Area of Science:
- Microbiology
- Infectious Diseases
- Pediatrics
Background:
- Acute pharyngotonsillitis caused by group A Streptococcus (GAS) is a frequent childhood illness.
- Phenoxymethyl penicillin is the primary treatment, yet eradication failures occur in up to 35% of cases.
- Previous explanations for treatment failure include beta-lactamase-producing bacteria, commensal interference, tolerance, reinfection, and poor compliance.
Discussion:
- GAS, previously considered extracellular, can internalize into epithelial cells.
- The intracellular environment may shield bacteria from penicillin, which has limited intracellular penetration.
- GAS strains survive intracellularly for extended periods (4-7 days) in vitro.
Key Insights:
- GAS strains from patients with penicillin eradication failure exhibit higher prevalence of the internalization gene prtF1/sfbI.
- This suggests a correlation between internalization capability and treatment outcomes.
- Bacterial internalization and intracellular survival offer a new perspective on penicillin treatment failures.
Outlook:
- Further research into the mechanisms of GAS internalization is warranted.
- Investigating therapeutic strategies targeting intracellular bacteria could improve treatment efficacy.
- Understanding this phenomenon may lead to revised clinical guidelines for managing GAS infections.