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DiLeo, M.

Publications and source records attributed to DiLeo, M..

2 recordsLinked to original sources

Recovering ecological interactions by mining non-target data from whole genome re-sequencing projects

The study of parasitic species can shed light on aspects of their hosts ecology. Such interactions are however often unknown or understudied due to the difficulty to detect and/or quantify many infections. Whole-genome sequencing and re-sequencing data have been generated at an increasing rate and reduced costs over the last two decades. Projects based on whole organisms, like whole insect specimens, provide genomic material for the target taxon, but may also include sequencing reads from associated microbes and other parasites. Here, we screened for the presence of non-host reads in a collection of whole-genome (re-) sequence projects from the Glanville fritillary butterfly, Melitaea cinxia, a model organism in research on the ecology and evolution of species in spatially structured and fragmented landscapes. We identified infections with different bacteria and eukaryotic parasites, which are shared between populations and underly both previously known and new biotic interactions for this butterfly species. The bacterial symbiont Wolbachia, usually common in insects, was found at relatively low prevalence, while Spiroplasma was ubiquitous across samples from several European populations of the butterfly. Additionally, we confirmed expected rates of larval parasitism by at least two parasitoid wasps. Such results provide proof of principle that key ecological interactions can be uncovered efficiently from existing data, an important first step to characterising the role host-associated organisms play in shaping the ecology and evolutionary history of their host species.

ecology↗

Relative Effects of Habitat Amount and Fragmentation Per Se on the Genetic Diversity of The Glanville Fritillary Butterfly

Habitat loss and fragmentation are considered the key drivers of biodiversity loss. Understanding their relative roles is difficult as habitat loss and fragmentation tend to co-occur. It has been proposed that the total habitat amount available in the local landscape mainly drives species richness while fragmentation per se - the breaking apart of habitat independent of habitat amount - has negligible or even a positive effect on biodiversity. Several studies support this at the species richness level. Yet, the potential effects of fragmentation per se on genetic diversity at the landscape scale are understudied. Using the Glanville fritillary butterfly metapopulation in the [A]land islands, we tested the effects of fragmentation per se on genetic diversity using a landscape-based approach and 2,610 individuals genotyped at 40 neutral SNP markers. We assessed the independent effect of habitat amount and fragmentation (i.e. number of patches) within the local landscape on the focal patch genetic diversity. The amount of habitat in the local landscape had a positive effect on genetic diversity, while fragmentation per se had a more negligible impact on the genetic diversity. Our results thus highlight that all fragments, even the small ones, likely contribute to the maintenance of genetic diversity of the focal population.

evolutionary biology↗