Abstract
Phenotypic plasticity plays an important role in the survival of individuals. In microbial host-virus systems, previous studies have shown the stabilizing effect that host plasticity has on the coexistence of the system. By contrast, it remains uncertain how the dependence of the virus on the metabolism of the host (i.e. “viral plasticity”) shapes bacteria-phage population dynamics in general, or the stability of the system in particular. Moreover, bacteria-phage models that do not consider viral plasticity are now recognised as overly simplistic. For these reasons, here we focus on the effect of viral plasticity on the stability of the system under different environmental conditions. We compared the predictions from a standard bacteria-phage model, which neglects plasticity, with those of a modification that includes viral plasticity. We investigated under which conditions viral plasticity promotes coexistence, with or without oscillatory dynamics. Our analysis shows that including viral plasticity reveals coexistence in regions of the parameter space where models without plasticity predict a collapse of the system. We also show that viral plasticity tends to reduce population oscillations, although this stabilizing effect is not consistently observed across environmental conditions: plasticity may instead reinforce dynamic feedbacks between the host, the virus, and the environment, which leads to wider oscillations. Our results contribute to a deeper understanding of the dynamic control of bacteriophage on host populations observed in nature.
| Original language | English |
|---|---|
| Article number | 110263 |
| Number of pages | 12 |
| Journal | Journal of Theoretical Biology |
| Volume | 498 |
| Early online date | 22 Apr 2020 |
| DOIs | |
| Publication status | Published - 7 Aug 2020 |
Keywords
- virus
- bacteria
- plasticity
- model
- chemostat
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Unconstrained coevolution of bacterial size and the latent period of plastic phage
Bonachela, J. A., Choua, M. & Heath, M. R., 26 May 2022, In: PLOS One. 17, 5, 20 p., e0268596.Research output: Contribution to journal › Article › peer-review
Open AccessFile5 Link opens in a new tab Citations (Scopus)19 Downloads (Pure) -
Evolutionarily stable coevolution between a plastic lytic virus and its microbial host
Choua, M., Heath, M. R. & Bonachela, J. A., 20 May 2021, In: Frontiers in Microbiology. 12, 12 p., 637490.Research output: Contribution to journal › Article › peer-review
Open AccessFile3 Link opens in a new tab Citations (Scopus)22 Downloads (Pure) -
Ecological and evolutionary consequences of viral plasticity
Choua, M. & Bonachela, J. A., 31 Mar 2019, In: American Naturalist. 193, 3, p. 346-358 13 p.Research output: Contribution to journal › Article › peer-review
Open AccessFile29 Link opens in a new tab Citations (Scopus)47 Downloads (Pure)
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