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Updated: Apr 20, 2026

Genome-wide Gene Deletions in Streptococcus sanguinis by High Throughput PCR
Published on: November 23, 2012
Mechanisms of genome evolution of Streptococcus
Cheryl P Andam1, William P Hanage1
1Department of Epidemiology, Harvard School of Public Health, Boston, MA 02115, USA.
Abstract:
The genus Streptococcus contains 104 recognized species, many of which are associated with human or animal hosts. A globally prevalent human pathogen in this group is Streptococcus pneumoniae (the pneumococcus). While being a common resident of the upper respiratory tract, it is also a major cause of otitis media, pneumonia, bacteremia and meningitis, accounting for a high burden of morbidity and mortality worldwide. Recent findings demonstrate the importance of recombination and selection in driving the population dynamics and evolution of different pneumococcal lineages, allowing them to successfully evade the impacts of selective pressures such as vaccination and antibiotic treatment. We highlight the ability of pneumococci to respond to these pressures through processes including serotype replacement, capsular switching and horizontal gene transfer (HGT) of antibiotic resistance genes. The challenge in controlling this pathogen also lies in the exceptional genetic and phenotypic variation among different pneumococcal lineages, particularly in terms of their pathogenicity and resistance to current therapeutic strategies. The widespread use of pneumococcal conjugate vaccines, which target only a small subset of the more than 90 pneumococcal serotypes, provides us with a unique opportunity to elucidate how the processes of selection and recombination interact to generate a remarkable level of plasticity and heterogeneity in the pneumococcal genome. These processes also play an important role in the emergence and spread of multi-resistant strains, which continues to pose a challenge in disease control and/or eradication. The application of population of genomic approaches at different spatial and temporal scales will help improve strategies to control this global pathogen, and potentially other pathogenic streptococci.
Insights
Streptococcus pneumoniae, a leading cause of severe infections, evolves rapidly through genetic changes like recombination and horizontal gene transfer. Understanding these mechanisms is key to controlling antibiotic resistance and vaccine evasion in this pathogen.
Area of Science:
- Microbiology
- Genomics
- Evolutionary Biology
Background:
- Streptococcus pneumoniae (pneumococcus) is a significant human pathogen causing otitis media, pneumonia, bacteremia, and meningitis.
- It is a common inhabitant of the upper respiratory tract, contributing to substantial global morbidity and mortality.
- Pneumococcal evolution is driven by recombination and selection, enabling adaptation to pressures like vaccination and antibiotics.
Purpose of the Study:
- To investigate the role of recombination and selection in the population dynamics and evolution of Streptococcus pneumoniae lineages.
- To understand how pneumococci evade selective pressures such as vaccination and antibiotic treatment.
- To explore the genetic and phenotypic variation contributing to pathogenicity and therapeutic resistance.
Main Methods:
- Analysis of population genomic data at various spatial and temporal scales.
- Examination of evolutionary processes including recombination, selection, serotype replacement, capsular switching, and horizontal gene transfer (HGT).
- Investigating the impact of pneumococcal conjugate vaccines on driving evolutionary changes.
Main Results:
- Recombination and selection are crucial drivers of pneumococcal population dynamics and evolution.
- Pneumococci demonstrate adaptability through serotype replacement, capsular switching, and HGT of antibiotic resistance genes.
- Genetic and phenotypic variation among pneumococcal lineages contributes to challenges in disease control.
Conclusions:
- Pneumococcal plasticity and heterogeneity are generated by the interaction of selection and recombination.
- These evolutionary processes facilitate the emergence and spread of multi-drug resistant strains.
- Population genomic approaches are essential for improving control strategies against Streptococcus pneumoniae and other pathogenic streptococci.
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