Spatial organisation plasticity reduces disease infection risk in rock-paper-scissors models
arXiv:2209.00584 · doi:10.1016/j.biosystems.2022.104777
Abstract
We study a three-species cyclic game system where organisms face a contagious disease whose virulence may change by a pathogen mutation. As a responsive defence strategy, organisms' mobility is restricted to reduce disease dissemination in the system. The impact of the collective self-preservation strategy on the disease infection risk is investigated by performing stochastic simulations of the spatial version of the rock-paper-scissors game. Our outcomes show that the mobility control strategy induces plasticity in the spatial patterns with groups of organisms of the same species inhabiting spatial domains whose characteristic length scales depend on the level of dispersal restrictions. The spatial organisation plasticity allows the ecosystems to adapt to minimise the individuals' disease contamination risk if an eventual pathogen alters the disease virulence. We discover that if a pathogen mutation makes the disease more transmissible or less lethal, the organisms benefit more if the mobility is not strongly restricted, thus forming large spatial domains. Conversely, the benefits of protecting against a pathogen causing a less contagious or deadlier disease are maximised if the average size of groups of individuals of the same species is significantly limited, reducing the dimensions of groups of organisms significantly. Our findings may help biologists understand the effects of dispersal control as a conservation strategy in ecosystems affected by epidemic outbreaks.
8 pages, 8 figures
References in corpus (11)
- Mobility promotes and jeopardizes biodiversity in rock-paper-scissors games
- Cyclic dominance in evolutionary games: A review
- Junctions and spiral patterns in Rock-Paper-Scissors type models
- Aggregation as an antipredator strategy in the rock-paper-scissors model
- Hamming distance and mobility behavior in generalized rock-paper-scissors models
- Behavioural Movement Strategies in Cyclic Models
- Mobility-limiting antipredator response in the rock-paper-scissors model
- Adaptive movement strategy in rock-paper-scissors models
- Adaptive movement strategy may promote biodiversity in the rock-paper-scissors model
- Combination of survival movement strategies in cyclic game systems during an epidemic
- Adaptive survival movement strategy to local epidemic outbreaks in cyclic models
Cited by in corpus (4)
- How local antipredator response unbalances the rock-paper-scissors model
- Adaptive survival movement strategy to local epidemic outbreaks in cyclic models
- Spatial dynamics of synergistic coinfection in rock-paper-scissors models
- Mobility restrictions in response to local epidemic outbreaks in rock-paper-scissors models