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Published on: February 22, 2019
Global population structure and evolution of Bordetella pertussis and their relationship with vaccination
Insights
Bordetella pertussis, the cause of whooping cough, is rapidly evolving and adapting to vaccines. This genomic study reveals pathogen adaptation and suggests strategies for improved pertussis vaccines.
Area of Science:
- Microbiology
- Genomics
- Epidemiology
Background:
- Bordetella pertussis causes pertussis (whooping cough), a severe respiratory illness in infants.
- Recent global resurgence of pertussis, even in highly vaccinated populations, necessitates understanding pathogen evolution.
- Potential causes include waning immunity, less effective acellular vaccines (ACVs), and pathogen adaptation.
Purpose of the Study:
- To investigate the genomic adaptation of Bordetella pertussis in response to vaccination.
- To understand the evolutionary history and global transmission dynamics of B. pertussis.
- To identify genetic changes associated with vaccine escape and increased virulence.
Main Methods:
- Comparative genomics of 343 B. pertussis strains isolated globally between 1920 and 2010.
- Phylogenetic analysis to reconstruct evolutionary history and population structure.
- Identification of genes under selection related to protective immunity, virulence, and surface exposure.
Main Results:
- The global B. pertussis population expanded significantly around the 16th century, correlating with historical outbreak records.
- Rapid global strain dissemination was observed, with little recent geographical clustering.
- Adaptive genetic changes, particularly in genes for surface-exposed proteins and virulence factors, occurred in response to vaccine introduction (both whole-cell and acellular vaccines).
Conclusions:
- Bordetella pertussis has a history of adaptation to vaccination, with rapid global spread of evolving strains.
- Genomic analyses reveal significant pathogen adaptation, potentially contributing to vaccine escape and pertussis resurgence.
- Findings provide insights for developing next-generation pertussis vaccines to counter evolving strains.
Abstract:
Bordetella pertussis causes pertussis, a respiratory disease that is most severe for infants. Vaccination was introduced in the 1950s, and in recent years, a resurgence of disease was observed worldwide, with significant mortality in infants. Possible causes for this include the switch from whole-cell vaccines (WCVs) to less effective acellular vaccines (ACVs), waning immunity, and pathogen adaptation. Pathogen adaptation is suggested by antigenic divergence between vaccine strains and circulating strains and by the emergence of strains with increased pertussis toxin production. We applied comparative genomics to a worldwide collection of 343 B. pertussis strains isolated between 1920 and 2010. The global phylogeny showed two deep branches; the largest of these contained 98% of all strains, and its expansion correlated temporally with the first descriptions of pertussis outbreaks in Europe in the 16th century. We found little evidence of recent geographical clustering of the strains within this lineage, suggesting rapid strain flow between countries. We observed that changes in genes encoding proteins implicated in protective immunity that are included in ACVs occurred after the introduction of WCVs but before the switch to ACVs. Furthermore, our analyses consistently suggested that virulence-associated genes and genes coding for surface-exposed proteins were involved in adaptation. However, many of the putative adaptive loci identified have a physiological role, and further studies of these loci may reveal less obvious ways in which B. pertussis and the host interact. This work provides insight into ways in which pathogens may adapt to vaccination and suggests ways to improve pertussis vaccines. IMPORTANCE Whooping cough is mainly caused by Bordetella pertussis, and current vaccines are targeted against this organism. Recently, there have been increasing outbreaks of whooping cough, even where vaccine coverage is high. Analysis of the genomes of 343 B. pertussis isolates from around the world over the last 100 years suggests that the organism has emerged within the last 500 years, consistent with historical records. We show that global transmission of new strains is very rapid and that the worldwide population of B. pertussis is evolving in response to vaccine introduction, potentially enabling vaccine escape.
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