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Mason-Jones, K.

Publications and source records attributed to Mason-Jones, K..

2 recordsLinked to original sources

Nematodes Vector Bacteriophages in Compost and Soil

Bacteriophages (phages) infect bacteria to reproduce and are often lethal to their host. To maintain the infection cycle, soil phages must travel from one suitable host to the next. However, traversing the soil matrix presents a dangerous journey for phages, which need to encounter the right hosts in this spatially complex habitat, but are not capable of active motion and can adsorb to soil particles. Here, we tested the hypothesis that bacterial-feeding nematodes (roundworms) present a reliable vehicle of soil transport for phages. First, we demonstrated that the bacterivorous nematode Caenorhabditis elegans vectored the laboratory model phage T7 as well as the soil phage {Phi} Ppu-W11 on agar. Sorption assays carried out with paralyzed and non-paralyzed nematodes showed that phage transport can occur via both external cuticular attachment and ingestion, and that the presence of host bacteria is not required for phage vectoring. Finally, we designed a microcosm to test phage transfer in compost and sandy soil using C. elegans and its sister species, C. remanei, respectively. This experiment confirmed that nematodes also enable phage movement through complex spatial habitats. This novel mechanism of phage vectoring extends our understanding of virus transmission in soil, revealing new multitrophic interactions that may influence soil functioning.

ecology↗

Intracellular carbon storage by microorganisms is an overlooked pathway of biomass growth

The concept of microbial biomass growth is central to microbial carbon (C) cycling and ecosystem nutrient turnover. Growth is usually assumed to occur by cellular replication, despite microorganisms capacity to increase biomass by synthesizing storage compounds. Here we examined whether C storage in triacylglycerides (TAGs) and polyhydroxybutyrate (PHB) contribute significantly to microbial biomass growth, under contrasting conditions of C availability and complementary nutrient supply. Together these compounds accounted for 19.1 {+/-} 1.7% to 46.4 {+/-} 8.0% of extractable soil microbial biomass, and revealed up to 279 {+/-} 72% more biomass growth than observed by a DNA-based method alone. Even under C limitation, storage represented an additional 16 - 96% incorporation of added C into microbial biomass. These findings encourage greater recognition of storage synthesis and degradation as key pathways of biomass change and as mechanisms underlying resistance and resilience of microbial communities.

ecology↗