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Selecting for infectivity across metapopulations can increase virulence in the social microbe Bacillus thuringiensis
Tatiana Dimitriu1, Wided Souissi2, Peter Morwool1
1Centre for Ecology and Conservation University of Exeter Penryn UK.
Abstract:
Passage experiments that sequentially infect hosts with parasites have long been used to manipulate virulence. However, for many invertebrate pathogens, passage has been applied naively without a full theoretical understanding of how best to select for increased virulence and this has led to very mixed results. Understanding the evolution of virulence is complex because selection on parasites occurs across multiple spatial scales with potentially different conflicts operating on parasites with different life histories. For example, in social microbes, strong selection on replication rate within hosts can lead to cheating and loss of virulence, because investment in public goods virulence reduces replication rate. In this study, we tested how varying mutation supply and selection for infectivity or pathogen yield (population size in hosts) affected the evolution of virulence against resistant hosts in the specialist insect pathogen Bacillus thuringiensis, aiming to optimize methods for strain improvement against a difficult to kill insect target. We show that selection for infectivity using competition between subpopulations in a metapopulation prevents social cheating, acts to retain key virulence plasmids, and facilitates increased virulence. Increased virulence was associated with reduced efficiency of sporulation, and possible loss of function in putative regulatory genes but not with altered expression of the primary virulence factors. Selection in a metapopulation provides a broadly applicable tool for improving the efficacy of biocontrol agents. Moreover, a structured host population can facilitate artificial selection on infectivity, while selection on life-history traits such as faster replication or larger population sizes can reduce virulence in social microbes.
Insights
Selecting for infectivity in pathogen populations, particularly Bacillus thuringiensis, increases virulence against resistant insects. This method prevents social cheating and retains key virulence factors, optimizing biocontrol agents.
Area of Science:
- Evolutionary biology
- Microbial pathogenesis
- Biocontrol strategies
Background:
- Virulence manipulation via host passage is common but often lacks theoretical grounding.
- Understanding virulence evolution requires considering multi-scale selection and parasite life histories.
- Social microbes can experience conflicts between replication rate and public good virulence.
Purpose of the Study:
- To optimize strain improvement of Bacillus thuringiensis for biocontrol against resistant insects.
- To investigate the effects of mutation supply and selection for infectivity versus pathogen yield on virulence evolution.
- To evaluate metapopulation selection as a tool for enhancing pathogen efficacy.
Main Methods:
- Experiments involved sequential infection of insect hosts with Bacillus thuringiensis.
- Varying mutation supply and selection pressures (infectivity vs. pathogen yield) were applied.
- Metapopulation dynamics were used to simulate structured host populations and selection for infectivity.
Main Results:
- Selection for infectivity in a metapopulation prevented social cheating and retained virulence plasmids.
- Increased virulence was observed, linked to reduced sporulation efficiency and potential regulatory gene changes, not primary virulence factors.
- Selection for pathogen yield or replication rate in social microbes can decrease virulence.
Conclusions:
- Metapopulation selection for infectivity is an effective strategy for improving Bacillus thuringiensis virulence and biocontrol efficacy.
- Structured host populations facilitate artificial selection on infectivity.
- Understanding parasite life history and selection scales is crucial for effective virulence manipulation.
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