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McLatchie, S.

Publications and source records attributed to McLatchie, S..

2 recordsLinked to original sources

Evidence of an acetone carboxylation pathway in photoheterotrophic bacteria from the Arctic Ocean

Carboxylases are among the most important enzymes in nature as they catalyze the fixation of inorganic carbon (CO2), a central step in the global carbon cycle. In addition to their well-known function in autotrophic CO2 fixation, many carboxylases play a role in the heterotrophic assimilation of organic compounds. In this study, we provide genomic evidence for an assimilatory carboxylation pathway involved in acetone degradation in photoheterotrophic bacteria from metagenomes collected along a latitudinal transect of the Arctic Ocean. This curious metabolism was linked to a single population of Gammaproteobacteria (Porticoccus arcticus). P. arcticus has a streamlined genome compared to Porticoccus relatives but has maintained a complete acetone carboxylation pathway while acquiring multiple proteorhodopsin genes by lateral gene transfer. Arctic Ocean metatranscriptomes revealed the acetone carboxylase and rhodopsins genes were among the most highly expressed P. arcticus genes in oligotrophic Arctic surface waters. P. arcticus sequences were consistently detected, and often abundant (up to 9%), in a multiyear Arctic Ocean 16S rRNA time-series, supporting its ecological significance in Arctic marine systems. Overall, this work reports a metabolic module (acetone carboxylation) in the ocean that may allow photoheterotrophic bacteria to enhance their biosynthetic capacity via CO2 assimilation.

microbiology↗

Metagenomic Discovery of Neutral Lipid Metabolism Pathways in the Arctic Ocean Microbiomes Suggests a Potential New Role in Survival and Oceanic Carbon Cycling

The Arctic Ocean microbiomes experience extreme seasonal fluctuations in light, nutrient availability, and organic carbon supply. In this environment, neutral lipid storage may provide a key survival strategy. Here, we investigated the diversity, distribution, and ecological role of neutral lipid metabolism in Arctic microbiomes using metagenome-resolved analyses and global ocean comparisons. Arctic photic-zone microbiomes were strongly enriched in triacylglycerol (TAG) biosynthesis genes relative to other oceans, primarily due to picoeukaryotic phytoplankton, including the ecologically dominant Micromonas and Bathycoccus. In contrast, prokaryotic communities exhibited diverse TAG-degrading taxa and fatty acid transport systems, supporting a previously unrecognized lipotrophic bacterial guild exploiting phytoplankton-derived lipids as carbon and energy sources. Genome-resolved analyses further revealed distinct bacterial lipid-storage strategies: TAG-producing taxa preferentially encoded fatty acid uptake and carbohydrate utilization pathways, whereas polyhydroxyalkanoate-producing taxa were associated with aromatic compound degradation, linking terrestrial organic matter to lipid storage. Our results expand the known diversity of marine microbes capable of neutral lipid metabolism and identify microbial lipid cycling as a previously overlooked component of the Arctic carbon cycle. We propose that neutral lipid storage and turnover support microbial survival through the polar night while enhancing carbon transfer within Arctic microbial food webs under ongoing climate change.

microbiology↗