Search bioRxiv⌕ Search

Biology subjects

Fayle, T.

Publications and source records attributed to Fayle, T..

2 recordsLinked to original sources

Does the mid-domain effect shape interaction networks along environmental gradients?

The mid-domain effect (MDE) predicts that geometric constraints drive unimodal species richness patterns within bounded gradients. However, the role of this effect in ecological networks is currently unexplored. Here we evaluate the role of the MDE in structuring interaction networks. We combine null-model simulations and empirical analyses of plant-pollinator and ant-plant networks along elevational gradients to assess whether the MDE can drive systematic variation in network structure. Our simulations demonstrated that the MDE alone can generate unimodal/U-shaped patterns in network metrics such as connectance, generality, and vulnerability. However, empirical networks only partially conformed to MDE predictions, with deviations indicating the likely influence of other ecological processes. MDE-based models best explained patterns in network-level specialization and nestedness, while only partially explaining patterns in connectance and generality. Because MDEs can shape interaction networks, MDE null models should be used when quantifying the influence of other ecological processes on network structure.

ecology↗

Defensive symbiont genotype distributions are linked to parasitoid attack networks

Facultative symbionts are widespread in arthropods and can provide important services such as protection from natural enemies. Yet what shapes associations with defensive symbionts in nature remains unclear. Two hypotheses suggest that either interactions with antagonists, or host plants, may explain the prevalence of symbionts through shared selective pressures and routes of horizontal transmission. Here we investigate the factors driving similarities in the Hamiltonella defensa symbiosis shared among host species within field collected aphid communities. We show that, Hamiltonellas genotype distribution strongly aligns with sharing the same parasitoids, rather than host plants, highlighting parasitoids as a key selective agent shaping the symbiosis across host species. Our data indicates parasitoid host-specificity drives the prevalence of specific aphid-Hamiltonella associations, suggesting defensive symbioses are maintained by the selective pressure imposed by dominant parasitoid species. These findings underscore the importance of interactions with natural enemies in explaining patterns of defensive symbiosis in nature.

ecology↗