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Commensal streptococci serve as a reservoir for β-lactam resistance genes in Streptococcus pneumoniae
Anders Jensen1, Oskar Valdórsson2, Niels Frimodt-Møller3
1Department of Biomedicine, Faculty of Health, Aarhus University, Aarhus, Denmark aj@biomed.au.dk.
Abstract:
Streptococcus pneumoniae is a leading cause of pneumonia, meningitis, septicemia, and middle ear infections. The incidence of S. pneumoniae isolates that are not susceptible to penicillin has risen worldwide and may be above 20% in some countries. Beta-lactam antibiotic resistance in pneumococci is associated with significant sequence polymorphism in penicillin-binding proteins (PBPs). Commensal streptococci, especially S. mitis and S. oralis, have been identified as putative donors of mutated gene fragments. However, no studies have compared sequences of the involved pbp genes in large collections of commensal streptococci with those of S. pneumoniae. We therefore investigated the sequence diversity of the transpeptidase region of the three pbp genes, pbp2x, pbp2b, and pbp1a in 107, 96, and 88 susceptible and nonsusceptible strains of commensal streptococci, respectively, at the nucleotide and amino acid levels to determine to what extent homologous recombination between commensal streptococci and S. pneumoniae plays a role in the development of beta-lactam resistance in S. pneumoniae. In contrast to pneumococci, extensive sequence variation in the transpeptidase region of pbp2x, pbp2b, and pbp1a was observed in both susceptible and nonsusceptible strains of commensal streptococci, conceivably reflecting the genetic diversity of the many evolutionary lineages of commensal streptococci combined with the recombination events occurring with intra- and interspecies homologues. Our data support the notion that resistance to beta-lactam antibiotics in pneumococci is due to sequences acquired from commensal Mitis group streptococci, especially S. mitis. However, several amino acid alterations previously linked to beta-lactam resistance in pneumococci appear to represent species signatures of the donor strain rather than being causal of resistance.
Insights
Beta-lactam antibiotic resistance in Streptococcus pneumoniae is linked to gene fragments from commensal streptococci. These resistance mechanisms may stem from species signatures rather than direct causal mutations.
Area of Science:
- Microbiology
- Genetics
- Antibiotic Resistance
Background:
- Streptococcus pneumoniae causes severe infections like pneumonia and meningitis.
- Increasing penicillin non-susceptibility in S. pneumoniae is a global health concern.
- Beta-lactam resistance in pneumococci is associated with mutations in penicillin-binding proteins (PBPs).
Purpose of the Study:
- To investigate sequence diversity in PBP genes of commensal streptococci.
- To compare these sequences with those in S. pneumoniae.
- To determine the role of homologous recombination in beta-lactam resistance development.
Main Methods:
- Analyzed nucleotide and amino acid sequences of pbp2x, pbp2b, and pbp1a transpeptidase regions.
- Examined 107, 96, and 88 strains of susceptible and non-susceptible commensal streptococci.
- Compared sequence variations between commensal strains and S. pneumoniae.
Main Results:
- Extensive sequence variation was found in PBP genes of both susceptible and non-susceptible commensal streptococci.
- This variation reflects genetic diversity and recombination events within streptococci.
- Data support the transfer of resistance-associated sequences from commensal Mitis group streptococci, particularly S. mitis.
Conclusions:
- Homologous recombination with commensal Mitis group streptococci contributes to beta-lactam resistance in S. pneumoniae.
- Some amino acid changes linked to resistance in S. pneumoniae may be species-specific signatures from donor strains.
- Further research is needed to differentiate resistance-causing mutations from species signatures.
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