4.6 Article

Time scales and wave formation in non-linear spatial public goods games

期刊

PLOS COMPUTATIONAL BIOLOGY
卷 15, 期 9, 页码 -

出版社

PUBLIC LIBRARY SCIENCE
DOI: 10.1371/journal.pcbi.1007361

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资金

  1. Moffitt Center of Excellence for Evolutionary Therapy
  2. Swedish Research Council [2014-06095]
  3. Swedish Foundation for Strategic Research Grant [AM13-0046]
  4. Vinnova [2014-06095] Funding Source: Vinnova
  5. Swedish Research Council [2014-06095] Funding Source: Swedish Research Council
  6. Swedish Foundation for Strategic Research (SSF) [AM13-0046] Funding Source: Swedish Foundation for Strategic Research (SSF)

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The co-evolutionary dynamics of competing populations can be strongly affected by frequency-dependent selection and spatial population structure. As co-evolving populations grow into a spatial domain, their initial spatial arrangement and their growth rate differences are important factors that determine the long-term outcome. We here model producer and free-rider co-evolution in the context of a diffusive public good (PG) that is produced by the producers at a cost but evokes local concentration-dependent growth benefits to all. The benefit of the PG can be non-linearly dependent on public good concentration. We consider the spatial growth dynamics of producers and free-riders in one, two and three dimensions by modeling producer cell, free-rider cell and public good densities in space, driven by the processes of birth, death and diffusion (cell movement and public good distribution). Typically, one population goes extinct, but the time-scale of this process varies with initial conditions and the growth rate functions. We establish that spatial variation is transient regardless of dimensionality, and that structured initial conditions lead to increasing times to get close to an extinction state, called epsilon-extinction time. Further, we find that uncorrelated initial spatial structures do not influence this epsilon-extinction time in comparison to a corresponding well-mixed (non-spatial) system. In order to estimate the epsilon-extinction time of either free-riders or producers we derive a slow manifold solution. For invading populations, i.e. for populations that are initially highly segregated, we observe a traveling wave, whose speed can be calculated. Our results provide quantitative predictions for the transient spatial dynamics of cooperative traits under pressure of extinction.

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