Search bioRxiv⌕ Search

Biology subjects

Arandia-Gorostidi, N.

Publications and source records attributed to Arandia-Gorostidi, N..

2 recordsLinked to original sources

Metagenomic-based network analysis reveals the importance of vitamin cross-feeding in marine microbial assemblages

Vitamins play a fundamental role in microbial metabolism and interactions, yet their scarcity in marine environments and the limited ability for de novo synthesis of some vitamins often leads to metabolic dependencies and cross-feeding among microbial taxa. Using a decade-long time-series metagenomics dataset from the Blanes Bay Microbial Observatory (BBMO), we investigated the role of vitamin biosynthesis in structuring the seasonal marine microbial interactions among prokaryotes and eukaryotes. Gene co-occurrence analysis revealed that vitamin-related metabolism had the highest number of associations among all metabolic pathways, underscoring the potential role of vitamins in microbial interactions. Metagenome-assembled genome (MAG) co-occurrence analysis further identified the prokaryotic biosynthesis of cobalamin (B12) and thiamine (B1) as key mediators of these associations. Rather than between complete vitamin synthesizers and auxotrophs, the main associations were found between partial synthesizers, suggesting that vitamer cross-feeding may represent an essential microbial interaction in sustaining vitamin biosynthesis throughout the year. While complete cobalamin synthesizers dominate in summer, partial synthesizers and lower-ligand activators are more prevalent in winter, driving cross-feeding interactions. In contrast, thiamine biosynthesis is more widespread, with complete synthesizers peaking in winter. The association strength, however, was maximum between prokaryotic vitamin producers and eukaryotes, highlighting the dependence of eukaryotes on bacterial vitamin production. These results provide novel insights into seasonal metabolic interdependencies, emphasizing the ecological significance of vitamin biosynthesis in marine ecosystems.

microbiology↗

Urea assimilation and oxidation supports the activity of a phylogenetically diverse microbial community in the dark ocean

Urea is hypothesized to be an important source of nitrogen and chemical energy to microorganisms in the deep sea; however, direct evidence for urea use below the epipelagic ocean is lacking. Here, we explore urea utilization from 50 to 4000 meters depth in the northeastern Pacific Ocean using metagenomics, nitrification rates, and single-cell stable-isotope-uptake measurements with nanoscale secondary ion mass spectrometry (nanoSIMS). We find that the majority (>60%) of active cells across all samples assimilated urea-derived N, and that cell-specific nitrogen-incorporation rates from urea were higher than that from ammonium. Both urea concentrations and assimilation rates relative to ammonium generally increased below the euphotic zone. We detected ammonia- and urea-based nitrification at all depths at one of two sites analyzed, demonstrating their potential to support chemoautotrophy in the mesopelagic and bathypelagic regions. Using newly generated metagenomes we find that the ureC gene, encoding the catalytic subunit of urease, is found within 39% of deep-sea cells in this region, including the Nitrosophaerota (likely for nitrification) as well as thirteen other phyla such as Proteobacteria, Verrucomicrobia, Plantomycetota, Nitrospinota, and Chloroflexota (likely for assimilation). Analysis of public metagenomes revealed ureC within 10-46% of deep-sea cells around the world, with higher prevalance below the photic zone, suggesting urea is widely available to the deep-sea microbiome globally. Our results demonstrate that urea is a nitrogen source to abundant and diverse microorganisms in the dark ocean, as well as a significant contributor to deep-sea nitrification and therefore fuel for chemoautotrophy.

microbiology↗