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Loomis, D. A.

Publications and source records attributed to Loomis, D. A..

2 recordsLinked to original sources

The caddisfly gut microbiome contributes to the consumption of riparian leaf litter within rivers

Ecosystem functions can be regulated by biodiversity ranging from broad to narrow scales, including variation within a species. For most multicellular life, intraspecific variation is determined not only by an organism's phenotype and genotype, but also variation imparted by their microbiome. Here, we investigate how leaf decomposition in rivers is affected by phenotypic variation in plant secondary metabolites (PSMs) and antibiotic-induced variation within the gut microbiomes of aquatic macroinvertebrate decomposers. We found that consumption by Dicosmoecus caddisflies was inhibited by the presence of dietary PSMs from riparian Alnus rubra trees, irrespective of the state of their gut microbiome. We further compared consumption of diets prepared from 20 different local and non-local A. rubra trees. We found that antibiotic-treated and control caddisflies consumed similar amounts of diets containing local A. rubra PSMs. However, compared to caddisflies with an intact gut microbiome, antibiotic-treated caddisflies consumed less of non-local A. rubra diets. Thus, decomposition by caddisflies could be regulated by both host adaptation to local resources and bacterial-mediated digestion of non-local resources. Overall, our study suggests that gut microbiomes can facilitate adjustment of macroinvertebrate decomposers to novel plant phenotypes, which may arise from shifting spatial distributions of plants in response to global change.

ecology↗

Microplastic pollution induces algae blooms in experimental ponds but bioplastics are less harmful

An ever-growing sea of plastic waste permeates even the most remote ecosystems; however, its ecological impact is unclear. Less persistent bioplastic alternatives are available but also have unknown environmental effects. We conducted a three-month experiment exposing plankton in experimental ponds to 10 concentrations of three different thermoplastic polyurethane microplastics, including two biodegradable bioplastics. Algal blooms with dense chlorophyll occurred consistently at high concentrations of the petroleum-derived thermoplastic polyurethane, but only occasionally with the two bioplastics. Herbivorous zooplankton density was strongly reduced by typical thermoplastic polyurethane and only weakly by bioplastics, therefore the effect on algae is at least partly due to reductions in top-down grazing pressure. Microbial communities exhibited compositional shifts in response to all three plastic types, with petroleum-derived plastic associated with the most pronounced differences across both prokaryotic and eukaryotic domains. Our results show that plastic pollution may contribute to the growing global problems of eutrophication, coastal hypoxia and harmful algae blooms, and that biodegradable plastics may have smaller environmental footprints.

ecology↗