Genetic Variation of Bordetella pertussis in Austria

Birgit Wagner1, Helen Melzer2, Georg Freymüller3

  • 1Institute of Specific Prophylaxis and Tropical Medicine, Center for Pathophysiology, Infectiology and Immunology, Medical University of Vienna, Vienna, Austria.

Plos One
|July 17, 2015
PubMed

Insights

Pertussis cases are rising in Austria despite high infant vaccination rates. Genetic analysis of Bordetella pertussis strains reveals significant variability, particularly the prevalence of the ptxP3 allele, potentially impacting vaccine effectiveness and herd immunity.

Area of Science:

  • Microbiology
  • Epidemiology
  • Genetics

Background:

  • Pertussis (whooping cough) is re-emerging in Austria, with rising case numbers in all age groups.
  • High infant vaccination coverage (around 90%) has not prevented this resurgence, suggesting waning immunity or bacterial adaptation.
  • Understanding the genetic diversity of Bordetella pertussis is crucial for assessing vaccine effectiveness and public health strategies.

Purpose of the Study:

  • To investigate the genetic variability of Bordetella pertussis strains circulating in Austria between 2002 and 2008.
  • To identify specific genetic markers associated with pertussis re-emergence and potential vaccine escape.

Main Methods:

  • Collected nasopharyngeal swabs from Vienna, Linz, and Graz.
  • Employed multiple-locus variable number tandem repeat analysis (MLVA) for genetic fingerprinting.
  • Utilized PCR and Sanger sequencing for pertactin (prn) gene analysis.
  • Applied amplification refractory mutation system quantitative PCR (ARMS-qPCR) to detect polymorphisms in virulence genes (ptxA, ptxB, fimD, tcfA, bvgS) and the ptxP promoter.

Main Results:

  • MLVA analysis showed high polymorphism, with an absence of the internationally found MLVA Type 29.
  • Predominance of the non-vaccine pertactin (Prn) subtype Prn2 was observed.
  • Genotyping revealed a mix between the vaccine strain Tohama I and a 2006 clinical isolate (L517).
  • A significant majority (93%) of strains harbored the ptxP3 allele, linked to increased pertussis toxin production.

Conclusions:

  • Austrian Bordetella pertussis strains exhibit significant genetic diversity, with a notable prevalence of the ptxP3 allele.
  • The genetic profile suggests potential challenges to existing pertussis vaccination strategies.
  • Further research is needed to understand the implications of these genetic variations on herd immunity and vaccine efficacy.

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