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Olesin Denny, E.

Publications and source records attributed to Olesin Denny, E..

3 recordsLinked to original sources

Aurora vent field is a hotspot for microbial hydrogen oxidation in the Arctic Ocean

Molecular hydrogen (H2) is a widespread, energetically efficient reductant supporting microbial metabolism across most known ecosystems. Although seafloor hydrothermal vents are major energy providers for H2-oxidizing microorganisms, the diversity of H2 oxidation potential in H2-rich systems remains poorly constrained. Here, we use a metagenomic approach to, for the first time, assess the genome-resolved microbial energy conservation potential within hydrothermal deposits and sediments from the ice-covered, extraordinarily H2-rich Aurora Vent Field in the Arctic Ocean. Community-wide analysis revealed broad taxonomic representation of microorganisms with the potential to consume H2 for energy conservation. Notably, we report the first genome belonging to the cosmopolitan Zetaproteobacteria genus Mariprofundus encoding the capacity for H2 oxidation. Additionally, novel, highly abundant Aquificota at Aurora encode uptake hydrogenases not previously characterized as central to H2 oxidation at deep sea vents. The encoded gene content of abundant taxa points to a preference for flexible rather than obligate lithotrophic energy metabolism. A substantial fraction of inferred H2-oxidizing potential is associated with presumed heterotrophs, potentially enhancing carbon transfer efficiency within the Aurora microbial food web. Overall, this study sheds new light on the importance of H2 availability for shaping microbial communities in hydrothermal systems. ImportanceHydrogen oxidation is a potent energy source for microorganisms that contributes to shaping and sustaining food webs in marine and terrestrial habitats, with particular importance in deep-sea chemosynthetic communities. This study provides detailed insights into how exceptionally high hydrogen availability at the Aurora Vent Field may influence microbial community structure, revealing that hydrogen oxidation potential is widespread among diverse, metabolically versatile taxa rather than obligate hydrogen oxidizers. Our findings refine current understanding of microbial energy flow and carbon cycling in hydrogen-rich hydrothermal systems. These results inform future efforts to model microbial food webs, predict ecosystem responses to changing geochemical conditions, and explore metabolic interactions in deep-sea chemosynthetic habitats more broadly.

microbiology↗

Adaptation strategies of iron-oxidizing bacteria Gallionella and Zetaproteobacteria crossing the marine-freshwater barrier

Iron-oxidizing Betaproteobacteria and Zetaproteobacteria are generally associated with freshwater and marine environments, respectively. Despite repeated cross-environment observations of these taxa, there has been no focused exploration of genomes of marine Gallionella (Betaproteobacteria) to understand transitions between freshwater and marine habitats. Consequently, their roles in these environments remain uncertain. Here, we present strong evidence for co-occurrence of Gallionella and Zetaproteobacteria at deep-sea hydrothermal vents at the Arctic Mid-Ocean Ridges through metagenomic analyses. Phylogenomics analysis of Gallionella metagenome-assembled genomes (MAGs) suggests that seawater adaptation is an evolutionary event which occurred multiple times in distinct lineages. Similarly, several distinct evolutionary events for freshwater and terrestrial Mariprofundus and other Zetaproteobacteria are predicted. The presence of cyc2 iron oxidation genes in co-occurring marine Betaproteobacteria and Zetaproteobacteria implies an overlap in niches of these iron-oxidizers. Functional enrichment analyses reveal genetic differences between marine MAGs of both iron-oxidizing groups and their terrestrial aquatic counterparts linked to salinity adaptation. Though scanning electron microscopy confirms the presence of Fe(III) oxyhydroxide stalks where Gallionella and Mariprofundus co-occur, Gallionella MAGs from hydrothermal vents lack evidence of putative stalk formation genes. Mariprofundus is therefore the likely sole stalk-producing iron-oxidizer in this environment. Conversely, discovery of putative stalk formation genes in Mariprofundus MAGs across the marine-freshwater barrier suggests that Fe(III) oxyhydroxide stalks might not be an exclusive signature for single iron-oxidizing taxa in marine and freshwater environments. Our research provides novel insights into the iron-oxidizing capacities, stalk production, environmental adaptation, and evolutionary transitions between marine and freshwater habitats for Gallionella and Zetaproteobacteria. ImportanceIron-oxidizing bacteria play an important role in the global cycling of iron, carbon, and other metals. While it has previously been assumed that bacterial evolution does not frequently involve crossing the salinity barrier, recent studies indicate that such occurrences are more common than previously thought. Our study offers strong evidence that this also happens among iron-oxidizing bacteria, with new insights into how these bacteria adapt to the new environment, including hydrothermal vents and freshwater habitats. In addition, we emphasize the importance of accurate iron-oxidizing taxa identification through sequencing, rather than relying solely on the morphology of Fe(III) oxyhydroxides and environment. On a larger scale, microorganisms within established communities needing to respond to changes in salinity due to events like seawater intrusion in coastal aquifers underscore the importance of knowledge of transitions across habitat types with different salt concentration.

microbiology↗

Novel hydrogen- and iron-oxidizing sheath-producing Zetaproteobacteria thrive at the Favne deep-sea hydrothermal vent field

Iron oxidizing Zetaproteobacteria are well-known to colonize deep-sea hydrothermal vent fields around the world where iron-rich fluids are discharged into oxic seawater. How inter-field and intra-field differences in geochemistry influence the diversity of Zetaproteobacteria, however, remains largely unknown. Here, we characterize Zetaproteobacteria phylogenomic diversity, metabolic potential, and morphologies of the iron oxides they form, with a focus on the recently discovered F[a]vne vent field. Located along the Mohns ridge in the Arctic, this vent field is a unique study site with vent fluids containing both iron and hydrogen with thick iron microbial mats (Fe mats) covering porously venting high-temperature (227-267 {degrees}C) black smoker chimneys. Through genome-resolved metagenomics and microscopy, we demonstrate that the Fe mats at F[a]vne are dominated by tubular iron oxide sheaths, likely produced by Zetaproteobacteria of genus Ghiorsea. With these structures, Ghiorsea may provide a surface area for members of other abundant taxa such as Campylobacterota, Gammaproteobacteria and Alphaproteobacteria. Furthermore, Ghiorsea likely oxidizes both iron and hydrogen present in the fluids, with several Ghiorsea populations co-existing in the same niche. Homologues of Zetaproteobacteria Ni,Fe hydrogenases and iron oxidation gene cyc2 were found in genomes of other community members, suggesting exchange of these genes could have happened in similar environments. Our study provides new insights into Zetaproteobacteria in hydrothermal vents, their diversity, energy metabolism and niche formation. ImportanceKnowledge on microbial iron oxidation is important for understanding the cycling of iron, carbon, nitrogen, nutrients, and metals. The current study yields important insights into the niche sharing, diversification, and Fe(III) oxyhydroxide morphology of Ghiorsea, an iron- and hydrogen oxidizing Zetaproteobacteria representative belonging to ZetaOTU9. The study proposes that Ghiorsea exhibits a more extensive morphology of Fe(III) oxyhydroxide than previously observed. Overall, the results increase our knowledge on potential drivers of Zetaproteobacteria diversity in iron microbial mats and can eventually be used to develop strategies for the cultivation of sheath-forming Zetaproteobacteria.

microbiology↗