Spatial dynamics of synergistic coinfection in rock-paper-scissors models
arXiv:2305.00590 · doi:10.1063/5.0160753
Abstract
We investigate the spatial dynamics of two disease epidemics reaching a three-species cyclic model. Regardless of their species, all individuals are susceptible to being infected with two different pathogens, which spread through person-to-person contact. The occurrence of coinfection leads to a synergistic increase in the risk of hosts dying due to complications from either disease. Our stochastic simulations show that departed areas inhabited by hosts of a single pathogen arise from random initial conditions. The single-disease spatial domains are bordered by interfaces of coinfected hosts whose dynamics are curvature-driven. Our findings show that the coarsening dynamics of the interface network are controlled by the fluctuations of coinfection waves invading the single-disease territories. As the coinfection mortality grows, the dynamics of the interface network attain the scaling regime. We discover that organisms' infection risk is maximised if the coinfection increases the death due to disease in , and minimised as the network dynamics reach the scaling regime, with species populations being maximum. Our conclusions may help ecologists understand the dynamics of epidemics and their impact on the stability of ecosystems.
9 pages, 6 figures
References in corpus (15)
- Evidence of economic segregation from mobility lockdown during COVID-19 epidemic
- Mobility promotes and jeopardizes biodiversity in rock-paper-scissors games
- Fluctuating epidemics on adaptive networks
- Self-Organization of Mobile Populations in Cyclic Competition
- Junctions and spiral patterns in Rock-Paper-Scissors type models
- Domain growth morphology in curvature driven two dimensional coarsening
- Uneven rock-paper-scissors models: patterns and coexistence
- Optimal control of epidemic spreading in presence of social heterogeneity
- Effect of mobility in the rock-paper-scissor dynamics with high mortality
- Combination of survival movement strategies in cyclic game systems during an epidemic
- Spatial organisation plasticity reduces disease infection risk in rock-paper-scissors models
- Adaptive altruistic strategy in cyclic models during an epidemic
- Interplay of interfacial noise and curvature driven dynamics in two dimensions
- Adaptive survival movement strategy to local epidemic outbreaks in cyclic models
- Pattern formation and coarsening dynamics in apparent competition models