bioRxiv · 10.1101/2021.03.15.435355
An ecological basis for dual genetic code expansion in marine deltaproteobacteria
Abstract
Marine benthic environments may be shaped by anthropogenic and other localized events, leading to changes in microbial community composition evident decades after a disturbance. Marine sediments in particular harbor exceptional taxonomic diversity and can shed light on distinctive evolutionary strategies. Genetic code expansion may increase the structural and functional diversity of proteins in cells, by repurposing stop codons to encode noncanonical amino acids: pyrrolysine (Pyl) and selenocysteine (Sec). Here, we show that the genomes of abundant Deltaproteobacteria from the sediments of a deep-ocean chemical waste dump site, have undergone genetic code expansion. Pyl and Sec in these organisms appear to augment trimethylamine (TMA) and one-carbon metabolism, representing key drivers of their ecology. The inferred metabolism of these sulfate-reducing bacteria places them in competition with methylotrophic methanogens for TMA, a contention further supported by earlier isotope tracer studies and reanalysis of metatranscriptomic studies. A survey of genomic data further reveals a broad geographic distribution of a niche group of similarly specialized Deltaproteobacteria including at sulfidic sites in the Atlantic Ocean, Gulf of Mexico, Guayamas Basin, and North Sea, as well as in terrestrial and estuarine environments. These findings reveal an important biogeochemical role for specialized Deltaproteobacteria at the interface of the carbon, nitrogen and sulfur cycles, with their niche adaptation and ecological success seemingly enabled by genetic code expansion.
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Kivenson, V., Paul, B. G., Valentine, D. L.. 2021-03-15. An ecological basis for dual genetic code expansion in marine deltaproteobacteria. https://doi.org/10.1101/2021.03.15.435355
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