Competition, coinfection and strain replacement in models of Bordetella pertussis

Emily J Nicoli1, Diepreye Ayabina2, Caroline L Trotter3

  • 1School of Social and Community Medicine, University of Bristol, Canynge Hall, 39 Whatley Road, Bristol, BS8 2PS, UK.

Insights

Strain replacement in whooping cough (pertussis) is a concern when immunity is non-specific. Understanding ecological neutrality is crucial for accurate vaccine efficacy and cost-effectiveness estimates.

Area of Science:

  • Epidemiology
  • Infectious disease dynamics
  • Immunology

Background:

  • Pertussis (whooping cough) causes significant infant mortality globally.
  • Rising pertussis incidence and concerns about vaccine evasion due to antigenic shift are noted.
  • Understanding interactions between vaccine-preventable and non-preventable strains is key to pertussis evolution.

Purpose of the Study:

  • To investigate conditions under which strain replacement of pertussis is a significant concern.
  • To model coinfection dynamics between Bordetella pertussis and vaccine-unaffected strains.
  • To assess the impact of ecological neutrality and immune specificity on strain replacement.

Main Methods:

  • Development of a dynamic transmission model for Bordetella pertussis.
  • Inclusion of coinfection with vaccine-unaffected strains.
  • Incorporation of ecological neutrality and flexible immune response specificity.

Main Results:

  • Strain replacement can be substantial when host immunity is non-specific.
  • This finding contrasts with models that do not consider ecological neutrality.
  • The degree of ecological neutrality significantly influences strain replacement dynamics.

Conclusions:

  • Ecological neutrality in modeling pertussis transmission has a substantial impact on strain replacement conclusions.
  • These findings have implications for estimating vaccine efficacy and cost-effectiveness.
  • Further research should consider ecological factors in pertussis dynamics and control strategies.