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Privatisation rescues function following loss of cooperation
Sandra Breum Andersen1,2, Melanie Ghoul1, Rasmus L Marvig3
1Department of Zoology, University of Oxford, Oxford, United Kingdom.
Cheat mutants can drive out cooperation, but this doesn't always mean extinction. In Pseudomonas aeruginosa infections, cooperation was replaced by private iron acquisition strategies, showing evolution can adapt to social dynamics.
Area of Science:
- Evolutionary biology
- Microbial ecology
- Social evolution
Background:
- Cooperator-cheat dynamics are fundamental to understanding social evolution.
- Cheat invasion is often equated with population extinction in theoretical models.
- The social dynamics of microbial populations in natural environments require further investigation.
Purpose of the Study:
- To investigate whether cheat invasion inevitably leads to extinction in natural populations.
- To explore the social dynamics of iron metabolism in *Pseudomonas aeruginosa* during cystic fibrosis infections.
- To understand the evolutionary pathways from cooperative to private behaviors.
Main Methods:
- Longitudinal study of *Pseudomonas aeruginosa* social dynamics during cystic fibrosis lung infection.
- Phenotypic assays to assess cooperative and private iron acquisition strategies.
- Whole-genome sequencing to identify genetic underpinnings of behavioral shifts.
Main Results:
- Cooperative iron acquisition was upregulated early in infection, increasing cheat invasion risk.
- A private iron acquisition system was upregulated only after the loss of cooperative iron acquisition.
- The benefit of private system upregulation was contingent on iron availability.
Conclusions:
- Cheat invasion does not necessarily equate to extinction; populations can evolve alternative strategies.
- Social dynamics and past interactions significantly influence the evolution of private traits.
- Understanding microbial social evolution is crucial for predicting population dynamics in host environments.
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