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1.
Appl Environ Microbiol ; 85(24)2019 12 15.
Artigo em Inglês | MEDLINE | ID: mdl-31585991

RESUMO

Members of the epsilonproteobacterial genus Arcobacter have been identified to be potentially important sulfide oxidizers in marine coastal, seep, and stratified basin environments. In the highly productive upwelling waters off the coast of Peru, Arcobacter cells comprised 3 to 25% of the total microbial community at a near-shore station where sulfide concentrations exceeded 20 µM in bottom waters. From the chemocline where the Arcobacter population exceeded 106 cells ml-1 and where high rates of denitrification (up to 6.5 ± 0.4 µM N day-1) and dark carbon fixation (2.8 ± 0.2 µM C day-1) were measured, we isolated a previously uncultivated Arcobacter species, Arcobacter peruensis sp. nov. (BCCM LMG-31510). Genomic analysis showed that A. peruensis possesses genes encoding sulfide oxidation and denitrification pathways but lacks the ability to fix CO2 via autotrophic carbon fixation pathways. Genes encoding transporters for organic carbon compounds, however, were present in the A. peruensis genome. Physiological experiments demonstrated that A. peruensis grew best on a mix of sulfide, nitrate, and acetate. Isotope labeling experiments further verified that A. peruensis completely reduced nitrate to N2 and assimilated acetate but did not fix CO2, thus coupling heterotrophic growth to sulfide oxidation and denitrification. Single-cell nanoscale secondary ion mass spectrometry analysis of samples taken from shipboard isotope labeling experiments also confirmed that the Arcobacter population in situ did not substantially fix CO2 The efficient growth yield associated with the chemolithoheterotrophic metabolism of A. peruensis may allow this Arcobacter species to rapidly bloom in eutrophic and sulfide-rich waters off the coast of Peru.IMPORTANCE Our multidisciplinary approach provides new insights into the ecophysiology of a newly isolated environmental Arcobacter species, as well as the physiological flexibility within the Arcobacter genus and sulfide-oxidizing, denitrifying microbial communities within oceanic oxygen minimum zones (OMZs). The chemolithoheterotrophic species Arcobacter peruensis may play a substantial role in the diverse consortium of bacteria that is capable of coupling denitrification and fixed nitrogen loss to sulfide oxidation in eutrophic, sulfidic coastal waters. With increasing anthropogenic pressures on coastal regions, e.g., eutrophication and deoxygenation (D. Breitburg, L. A. Levin, A. Oschlies, M. Grégoire, et al., Science 359:eaam7240, 2018, https://doi.org/10.1126/science.aam7240), niches where sulfide-oxidizing, denitrifying heterotrophs such as A. peruensis thrive are likely to expand.


Assuntos
Arcobacter/isolamento & purificação , Arcobacter/metabolismo , Sedimentos Geológicos/microbiologia , Processos Heterotróficos/fisiologia , Água do Mar/microbiologia , Sulfetos/metabolismo , Arcobacter/genética , Arcobacter/crescimento & desenvolvimento , Biomassa , Carbono/metabolismo , Ciclo do Carbono , Desnitrificação , Marcação por Isótopo , Nitratos/metabolismo , Fixação de Nitrogênio , Oxirredução , Oxigênio/metabolismo , Peru , RNA Ribossômico 16S/genética , RNA Ribossômico 16S/isolamento & purificação , Água/química , Microbiologia da Água , Sequenciamento Completo do Genoma
2.
Nat Commun ; 9(1): 1729, 2018 04 30.
Artigo em Inglês | MEDLINE | ID: mdl-29712903

RESUMO

Members of the gammaproteobacterial clade SUP05 couple water column sulfide oxidation to nitrate reduction in sulfidic oxygen minimum zones (OMZs). Their abundance in offshore OMZ waters devoid of detectable sulfide has led to the suggestion that local sulfate reduction fuels SUP05-mediated sulfide oxidation in a so-called "cryptic sulfur cycle". We examined the distribution and metabolic capacity of SUP05 in Peru Upwelling waters, using a combination of oceanographic, molecular, biogeochemical and single-cell techniques. A single SUP05 species, U Thioglobus perditus, was found to be abundant and active in both sulfidic shelf and sulfide-free offshore OMZ waters. Our combined data indicated that mesoscale eddy-driven transport led to the dispersal of U T. perditus and elemental sulfur from the sulfidic shelf waters into the offshore OMZ region. This offshore transport of shelf waters provides an alternative explanation for the abundance and activity of sulfide-oxidizing denitrifying bacteria in sulfide-poor offshore OMZ waters.


Assuntos
Crescimento Quimioautotrófico/fisiologia , Gammaproteobacteria/metabolismo , Redes e Vias Metabólicas/fisiologia , Água do Mar/química , Enxofre/metabolismo , Organismos Aquáticos , Gammaproteobacteria/classificação , Gammaproteobacteria/crescimento & desenvolvimento , Nitrogênio/metabolismo , Oxirredução , Oxigênio/metabolismo , Peru , Filogenia , Água do Mar/microbiologia
3.
Proc Natl Acad Sci U S A ; 110(45): 18098-103, 2013 Nov 05.
Artigo em Inglês | MEDLINE | ID: mdl-24145422

RESUMO

The coupling of subseafloor microbial life to oceanographic and atmospheric conditions is poorly understood. We examined diagenetic imprints and lipid biomarkers of past subseafloor microbial activity to evaluate its response to glacial-interglacial cycles in a sedimentary section drilled on the Peruvian shelf (Ocean Drilling Program Leg 201, Site 1229). Multiple and distinct layers of diagenetic barite and dolomite, i.e., minerals that typically form at the sulfate-methane transition (SMT), occur at much shallower burial depth than the present SMT around 30 meters below seafloor. These shallow layers co-occur with peaks of (13)C-depleted archaeol, a molecular fossil of anaerobic methane-oxidizing Archaea. Present-day, non-steady state distributions of dissolved sulfate also suggest that the SMT is highly sensitive to variations in organic carbon flux to the surface shelf sediments that may lead to shoaling of the SMT. Reaction-transport modeling substantiates our hypothesis that shallow SMTs occur in response to cyclic sediment deposition with a high organic carbon flux during interglacials and a low organic carbon flux during glacial stages. Long diffusion distances expectedly dampen the response of deeply buried microbial communities to changes in sediment deposition and other oceanographic drivers over relatively short geological time scales, e.g., glacial-interglacial periods. However, our study demonstrates how dynamically sediment biogeochemistry of the Peru Margin has responded to glacial-interglacial change and how these changes are now preserved in the geological record. Such changes in subsurface biogeochemical zonation need to be taken into account to assess the role of the subseafloor biosphere in global element and redox cycling.


Assuntos
Sedimentos Geológicos/química , Fenômenos Geológicos , Metano/análise , Modelos Químicos , Oceanografia/métodos , Sulfato de Bário/análise , Biomarcadores/análise , Carbonato de Cálcio/análise , Isótopos de Carbono/análise , Lipídeos/análise , Magnésio/análise , Metano/metabolismo , Oxirredução , Oceano Pacífico , Peru , Fatores de Tempo
4.
Nature ; 436(7049): 390-4, 2005 Jul 21.
Artigo em Inglês | MEDLINE | ID: mdl-16034418

RESUMO

The sub-seafloor biosphere is the largest prokaryotic habitat on Earth but also a habitat with the lowest metabolic rates. Modelled activity rates are very low, indicating that most prokaryotes may be inactive or have extraordinarily slow metabolism. Here we present results from two Pacific Ocean sites, margin and open ocean, both of which have deep, subsurface stimulation of prokaryotic processes associated with geochemical and/or sedimentary interfaces. At 90 m depth in the margin site, stimulation was such that prokaryote numbers were higher (about 13-fold) and activity rates higher than or similar to near-surface values. Analysis of high-molecular-mass DNA confirmed the presence of viable prokaryotes and showed changes in biodiversity with depth that were coupled to geochemistry, including a marked community change at the 90-m interface. At the open ocean site, increases in numbers of prokaryotes at depth were more restricted but also corresponded to increased activity; however, this time they were associated with repeating layers of diatom-rich sediments (about 9 Myr old). These results show that deep sedimentary prokaryotes can have high activity, have changing diversity associated with interfaces and are active over geological timescales.


Assuntos
Biodiversidade , Sedimentos Geológicos/microbiologia , Células Procarióticas/metabolismo , Água do Mar/microbiologia , Archaea/genética , Archaea/isolamento & purificação , Bactérias/genética , Bactérias/isolamento & purificação , Contagem de Colônia Microbiana , DNA/análise , DNA/química , DNA/genética , DNA/isolamento & purificação , Diatomáceas/isolamento & purificação , Metano/análise , Peso Molecular , Oceano Pacífico , Peru , Células Procarióticas/classificação , Células Procarióticas/citologia , Análise de Sequência de DNA , Sulfatos/análise , Fatores de Tempo
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