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Recombination in Streptococcus pneumoniae Lineages Increase with Carriage Duration and Size of the Polysaccharide
Chrispin Chaguza1, Cheryl P Andam2, Simon R Harris3
1Department of Clinical Infection, Microbiology and Immunology, Institute of Infection and Global Health, University of Liverpool, Liverpool, United Kingdom Microbial Ecology, Malawi-Liverpool-Wellcome Trust Clinical Research Programme, University of Malawi, College of Medicine, Blantyre, Malawi Chrispin.Chaguza@liverpool.ac.uk whanage@hsph.harvard.edu.
Abstract:
Streptococcus pneumoniae causes a high burden of invasive pneumococcal disease (IPD) globally, especially in children from resource-poor settings. Like many bacteria, the pneumococcus can import DNA from other strains or even species by transformation and homologous recombination, which has allowed the pneumococcus to evade clinical interventions such as antibiotics and pneumococcal conjugate vaccines (PCVs). Pneumococci are enclosed in a complex polysaccharide capsule that determines the serotype; the capsule varies in size and is associated with properties including carriage prevalence and virulence. We determined and quantified the association between capsule and recombination events using genomic data from a diverse collection of serotypes sampled in Malawi. We determined both the amount of variation introduced by recombination relative to mutation (the relative rate) and how many individual recombination events occur per isolate (the frequency). Using univariate analyses, we found an association between both recombination measures and multiple factors associated with the capsule, including duration and prevalence of carriage. Because many capsular factors are correlated, we used multivariate analysis to correct for collinearity. Capsule size and carriage duration remained positively associated with recombination, although with a reduced P value, and this effect may be mediated through some unassayed additional property associated with larger capsules. This work describes an important impact of serotype on recombination that has been previously overlooked. While the details of how this effect is achieved remain to be determined, it may have important consequences for the serotype-specific response to vaccines and other interventions.
Importance:
The capsule determines >90 different pneumococcal serotypes, which vary in capsule size, virulence, duration, and prevalence of carriage. Current serotype-specific vaccines elicit anticapsule antibodies. Pneumococcus can take up exogenous DNA by transformation and insert it into its chromosome by homologous recombination. This mechanism has disseminated drug resistance and generated vaccine escape variants. It is hence crucial to pneumococcal evolutionary response to interventions, but there has been no systematic study quantifying whether serotypes vary in recombination and whether this is associated with serotype-specific properties such as capsule size or carriage duration. Larger capsules could physically inhibit DNA uptake, or given the longer carriage duration for larger capsules, this may promote recombination. We find that recombination varies among capsules and is associated with capsule size, carriage duration, and carriage prevalence and negatively associated with invasiveness. The consequence of this work is that serotypes with different capsules may respond differently to selective pressures like vaccines.
Insights
Bacterial recombination varies by capsule type, with larger capsules and longer carriage duration promoting more recombination. This finding impacts how Streptococcus pneumoniae serotypes respond to vaccines and other interventions.
Area of Science:
- Genomics and Molecular Biology
- Microbial Evolution
- Vaccinology
Background:
- Streptococcus pneumoniae causes significant invasive pneumococcal disease (IPD) globally, particularly in children.
- Pneumococcal transformation and recombination facilitate evasion of antibiotics and vaccines (e.g., pneumococcal conjugate vaccines, PCVs).
- The bacterial capsule defines serotypes and influences virulence, carriage, and vaccine response.
Purpose of the Study:
- To quantify the association between pneumococcal capsule properties and recombination rates.
- To investigate if capsule size, carriage duration, or prevalence influences DNA recombination.
- To understand how serotype variation impacts pneumococcal evolution in response to interventions.
Main Methods:
- Genomic data from diverse Streptococcus pneumoniae serotypes sampled in Malawi were analyzed.
- Rates of recombination relative to mutation and the frequency of recombination events per isolate were quantified.
- Univariate and multivariate statistical analyses were used to assess associations between capsule factors and recombination.
Main Results:
- Recombination rates and frequencies varied significantly among different pneumococcal serotypes.
- Capsule size and carriage duration were positively associated with increased recombination.
- Recombination was negatively associated with disease invasiveness and positively associated with carriage prevalence.
Conclusions:
- Serotype-specific capsule properties significantly influence the rate and extent of homologous recombination in Streptococcus pneumoniae.
- Larger capsules and longer carriage durations may promote higher recombination, potentially through unassayed factors.
- Understanding these capsule-recombination dynamics is crucial for predicting pneumococcal evolution and optimizing vaccine strategies.
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