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Evaluation of Host-Pathogen Responses and Vaccine Efficacy in Mice
Published on: February 22, 2019
Comparative genomics of prevaccination and modern Bordetella pertussis strains
Marieke J Bart1, Marjolein van Gent, Han G J van der Heide
1Laboratory for Infectious Diseases and Screening, Netherlands Centre for Infectious Diseases Control, RIVM, Bilthoven, Netherlands.
Insights
Bordetella pertussis adapted to vaccines through genetic changes, not new genes. This involved accumulating mutations and altering gene activity, particularly in gene regulation, leading to increased virulence.
Area of Science:
- Microbiology
- Genomics
- Vaccinology
Background:
- Pertussis (whooping cough) remains a global health threat despite widespread vaccination.
- Resurgence linked to Bordetella pertussis strains with a novel ptxP3 promoter allele, producing more virulent pertussis toxin (Ptx).
Purpose of the Study:
- To investigate the genomic adaptations of Bordetella pertussis in response to vaccination efforts.
- To compare genome sequences of ptxP3 strains with pre- and post-vaccination era strains.
Main Methods:
- Comparative genomics of Bordetella pertussis strains.
- Analysis of single nucleotide polymorphisms (SNPs) and gene content.
- Phylogenetic analysis.
Main Results:
- Adaptation primarily driven by accumulation of SNPs and gene (in)activation, not acquisition of new genes.
- Significant genomic and allelic differences observed between modern and prevaccination strains.
- ptxP3 strains recently diverged from modern ptxP1 strains, with SNPs in pathogenicity genes and altered gene activity.
Conclusions:
- Bordetella pertussis adapts through gradual accumulation of genetic changes (SNPs) and modifications in gene activity.
- Altered gene regulation is a key factor in the adaptation of pertussis strains to vaccination.
Background:
Despite vaccination since the 1950s, pertussis has persisted and resurged. It remains a major cause of infant death worldwide and is the most prevalent vaccine-preventable disease in developed countries. The resurgence of pertussis has been associated with the expansion of Bordetella pertussis strains with a novel allele for the pertussis toxin (Ptx) promoter, ptxP3, which have replaced resident ptxP1 strains. Compared to ptxP1 strains, ptxP3 produce more Ptx resulting in increased virulence and immune suppression. To elucidate how B. pertussis has adapted to vaccination, we compared genome sequences of two ptxP3 strains with four strains isolated before and after the introduction vaccination.
Results:
The distribution of SNPs in regions involved in transcription and translation suggested that changes in gene regulation play an important role in adaptation. No evidence was found for acquisition of novel genes. Modern strains differed significantly from prevaccination strains, both phylogenetically and with respect to particular alleles. The ptxP3 strains were found to have diverged recently from modern ptxP1 strains. Differences between ptxP3 and modern ptxP1 strains included SNPs in a number of pathogenicity-associated genes. Further, both gene inactivation and reactivation was observed in ptxP3 strains relative to modern ptxP1 strains.
Conclusions:
Our work suggests that B. pertussis adapted by successive accumulation of SNPs and by gene (in)activation. In particular changes in gene regulation may have played a role in adaptation.
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