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Intrapathotype diversity for aggressiveness and pathogen evolution in cultivar mixtures
Abstract:
ABSTRACT A model was developed and used to study the consequences of diversity for aggressiveness within pathotypes on pathogen evolution in two-component and four-component cultivar mixtures. It was assumed that, within a pathotype, a proportion of the isolates would have higher or lower spore efficacy than the average on a given host genetic background. Two situations were examined in which the pathogen can have either independent or negatively correlated values for spore efficacy on different cultivars. In the latter case, a pathogen genotype more aggressive than the average on a host genotype was always less aggressive on other host genotypes. In the simulations, isolates with greater aggressiveness relative to a host genotype were selected for and increased in frequency. However, because simple pathotypes always reproduced on the same host genotype whereas complex pathotypes were able to grow on several hosts, selection was faster for simple pathotypes. Pathotypes with two different levels of diversity for aggressiveness were compared with nondiversified pathotypes. In order to make comparisons, the effect of a 5 and 10% cost of virulence on the development of complex pathotypes was simulated. In general, increased diversity within pathotypes reduced the rate of increase of complex pathotypes in host mixtures, and this effect was stronger with greater frequencies of autodeposition of pathogen spores.
Insights
Increased pathogen diversity within host-pathogen systems slows the evolution of complex pathogen strains. This finding is crucial for managing agricultural disease and understanding pathogen evolution in diverse environments.
Area of Science:
- Plant Pathology
- Evolutionary Biology
- Agricultural Science
Background:
- Pathogen evolution is influenced by host diversity.
- Understanding pathogen aggressiveness within different host genotypes is key to disease management.
Purpose of the Study:
- To model the impact of diversity within pathogen strains on pathogen evolution.
- To investigate pathogen evolution in two- and four-component cultivar mixtures.
Main Methods:
- Developed a simulation model to study pathogen evolution.
- Examined pathogen spore efficacy on different host genetic backgrounds.
- Simulated scenarios with independent and negatively correlated spore efficacy values.
Main Results:
- Increased diversity within pathogen strains generally reduced the rate of complex pathotype increase in host mixtures.
- Selection for more aggressive pathogen isolates was faster for simple pathotypes.
- The effect of diversity was stronger with higher frequencies of pathogen spore autodeposition.
Conclusions:
- Pathogen diversity acts as a brake on the evolution of complex pathogen strains.
- Cultivar mixtures can be a strategy to slow pathogen evolution.
- Virulence costs can influence the development of complex pathotypes.
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