Pathogen evolution following spillover from a resident to a migrant host population depends on interactions between
Martha Torstenson1, Allison K Shaw1
1Department of Ecology, Evolution, and Behavior, University of Minnesota, St. Paul, Minnesota, USA.
Abstract:
Changes to migration routes and phenology create novel contact patterns among hosts and pathogens. These novel contact patterns can lead to pathogens spilling over between resident and migrant populations. Predicting the consequences of such pathogen spillover events requires understanding how pathogen evolution depends on host movement behaviour. Following spillover, pathogens may evolve changes in their transmission rate and virulence phenotypes because different strategies are favoured by resident and migrant host populations. There is conflict in current theoretical predictions about what those differences might be. Some theory predicts lower pathogen virulence and transmission rates in migrant populations because migrants have lower tolerance to infection. Other theoretical work predicts higher pathogen virulence and transmission rates in migrants because migrants have more contacts with susceptible hosts. We aim to understand how differences in tolerance to infection and host pace of life act together to determine the direction of pathogen evolution following pathogen spillover from a resident to a migrant population. We constructed a spatially implicit model in which we investigate how pathogen strategy changes following the addition of a migrant population. We investigate how differences in tolerance to infection and pace of life between residents and migrants determine the effect of spillover on pathogen evolution and host population size. When the paces of life of the migrant and resident hosts are equal, larger costs of infection in the migrants lead to lower pathogen transmission rate and virulence following spillover. When the tolerance to infection in migrant and resident populations is equal, faster migrant paces of life lead to increased transmission rate and virulence following spillover. However, the opposite can also occur: when the migrant population has lower tolerance to infection, faster migrant paces of life can lead to decreases in transmission rate and virulence. Predicting the outcomes of pathogen spillover requires accounting for both differences in tolerance to infection and pace of life between populations. It is also important to consider how movement patterns of populations affect host contact opportunities for pathogens. These results have implications for wildlife conservation, agriculture and human health.
Insights
Pathogen spillover between wildlife populations is complex. Understanding how host movement, tolerance to infection, and pace of life influence pathogen evolution is key for conservation and health.
Area of Science:
- Ecology
- Evolutionary Biology
- Epidemiology
Background:
- Host migration and changing phenology alter host-pathogen interactions.
- Pathogen spillover between resident and migrant populations creates novel evolutionary pressures.
- Existing theories conflict on how pathogen virulence and transmission evolve in migrant populations.
Purpose of the Study:
- To investigate how host tolerance to infection and pace of life jointly influence pathogen evolution after spillover.
- To model the impact of pathogen spillover from resident to migrant host populations.
- To understand the combined effects of host traits on pathogen strategy and host population dynamics.
Main Methods:
- Developed a spatially implicit model to simulate pathogen evolution.
- Incorporated host tolerance to infection and pace of life as key parameters.
- Analyzed changes in pathogen transmission rate and virulence following spillover.
Main Results:
- When host pace of life is equal, higher costs of infection in migrants reduce pathogen transmission and virulence.
- When host tolerance is equal, faster migrant pace of life increases pathogen transmission and virulence.
- Interactions between tolerance and pace of life can lead to decreased pathogen transmission and virulence even with faster migrant hosts.
Conclusions:
- Predicting pathogen spillover consequences requires considering both host tolerance and pace of life.
- Host movement patterns significantly influence host contact opportunities and pathogen spread.
- Findings have implications for wildlife conservation, agriculture, and public health strategies.
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