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Dick, G. J.

Publications and source records attributed to Dick, G. J..

2 recordsLinked to original sources

Transcriptionally active nitrogen fixation and biosynthesis of diverse secondary metabolites by Dolichospermum and Aphanizominom-like Cyanobacteria in western Lake Erie Microcystis blooms

Cyanobacterial harmful algal blooms (cyanoHABs) in the western basin of Lake Erie are dominated by microcystin producing Microcystis spp., but other cyanobacterial taxa that coexist in these communities may play important roles in production of toxins and shaping bloom dynamics and community function. In this study, we used metagenomic and metatranscriptomic data from the 2014 western Lake Erie cyanoHAB to explore the genetic diversity and biosynthetic potential of cyanobacteria belonging to the Anabaena, Dolichospermum, Aphanizomenon (ADA) clade. We reconstructed two near-complete metagenome-assembled genomes from two distinct ADA clade species, each containing biosynthetic gene clusters that encode novel and known secondary metabolites that were transcriptionally active. These taxa also appear to have varying nutrient acquisition strategies, and their ability to fix N may be important for synthesizing N rich metabolites as well as supporting bloom persistence. Although not the dominant organism in this system, these results suggest that ADA may be important community members in western Lake Erie cyanoHABs that have the potential to produce unmonitored toxins. HighlightsO_LIThrough metagenomic approaches, we generated two near-complete metagenome assembled genomes from two distinct species that are dispersed across the ADA clade of cyanobacteria. C_LIO_LIThese ADA cyanobacteria have the potential to produce a variety of known and novel secondary metabolites, and use different nitrogen fixation strategies as observed through differential transcript abundance C_LIO_LIThis works highlights the diversity of cyanobacteria in western Lake Erie blooms despite their continued dominance by Microcystis, and that these less abundant cyanobacteria may produce unmonitored toxins and shape bloom dynamics through N-fixation. C_LI

microbiology↗

The sulfur cycle connects microbiomes and biogeochemistry in deep-sea hydrothermal plumes

In globally distributed deep-sea hydrothermal vent plumes, microbiomes are shaped by the redox energy landscapes created by reduced hydrothermal vent fluids mixing with oxidized seawater. Plumes can disperse over thousands of kilometers and are complex. Their characteristics are determined by geochemical sources from hydrothermal vents, e.g., hydrothermal inputs, nutrients, and trace metals. However, the impacts of plume biogeochemistry on the oceans are poorly constrained due to a lack of integrated understanding of microbiomes, population genetics, and geochemistry. Here, we use microbial genomes to understand links between biogeography, evolution, and metabolic connectivity, and elucidate their impacts on biogeochemical cycling in the deep sea. Using data from 37 diverse plumes from 8 ocean basins, we show that sulfur metabolism defines the core microbiome of plumes and drives metabolic connectivity. Amongst all microbial metabolisms, sulfur transformations had the highest MW-score, a measure of metabolic connectivity in microbial communities. Our findings provide the ecological and evolutionary basis of change in sulfur-driven microbial communities and their population genetics in adaptation to changing geochemical gradients in the oceans.

microbiology↗