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Evaluation of Host-Pathogen Responses and Vaccine Efficacy in Mice
Published on: February 22, 2019
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.
Abstract:
Pertussis, or whooping cough, is an important respiratory infection causing considerable infant mortality worldwide. Recently, incidence has risen in countries with strong vaccine programmes and there are concerns about antigenic shift resulting in vaccine evasion. Interactions between pertussis and non-vaccine-preventable strains will play an important role in the evolution and population dynamics of pertussis. In particular, if we are to understand the role strain replacement plays in vaccinated settings, it will be essential to understand how strains or variants of pertussis interact. Here we explore under what conditions we would expect strain replacement to be of concern in pertussis. We develop a dynamic transmission model that allows for coinfection between Bordetella pertussis (the main causative agent of pertussis) and a strain or variant unaffected by the vaccine. We incorporate both neutrality (in the sense of ecological/population genetic neutrality) and immunity into the model, leaving the specificity of the immune response flexible. We find that strain replacement may be considerable when immunity is non-specific. This is in contrast to previous findings where neutrality was not considered. We conclude that the extent to which models reflect ecological neutrality can have a large impact on conclusions regarding strain replacement. This will likely have onward consequences for estimates of vaccine efficacy and cost-effectiveness.
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