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1.
Nature ; 630(8018): 899-904, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38723661

RESUMEN

Nitrogen (N2) fixation in oligotrophic surface waters is the main source of new nitrogen to the ocean1 and has a key role in fuelling the biological carbon pump2. Oceanic N2 fixation has been attributed almost exclusively to cyanobacteria, even though genes encoding nitrogenase, the enzyme that fixes N2 into ammonia, are widespread among marine bacteria and archaea3-5. Little is known about these non-cyanobacterial N2 fixers, and direct proof that they can fix nitrogen in the ocean has so far been lacking. Here we report the discovery of a non-cyanobacterial N2-fixing symbiont, 'Candidatus Tectiglobus diatomicola', which provides its diatom host with fixed nitrogen in return for photosynthetic carbon. The N2-fixing symbiont belongs to the order Rhizobiales and its association with a unicellular diatom expands the known hosts for this order beyond the well-known N2-fixing rhizobia-legume symbioses on land6. Our results show that the rhizobia-diatom symbioses can contribute as much fixed nitrogen as can cyanobacterial N2 fixers in the tropical North Atlantic, and that they might be responsible for N2 fixation in the vast regions of the ocean in which cyanobacteria are too rare to account for the measured rates.


Asunto(s)
Diatomeas , Fijación del Nitrógeno , Nitrógeno , Océanos y Mares , Rhizobium , Agua de Mar , Simbiosis , Carbono/metabolismo , Diatomeas/metabolismo , Diatomeas/fisiología , Nitrógeno/metabolismo , Fotosíntesis , Filogenia , Rhizobium/clasificación , Rhizobium/metabolismo , Rhizobium/fisiología , Agua de Mar/microbiología , Agua de Mar/química , Cianobacterias/aislamiento & purificación , Cianobacterias/metabolismo , Océano Atlántico
2.
Nature ; 591(7850): 445-450, 2021 03.
Artículo en Inglés | MEDLINE | ID: mdl-33658719

RESUMEN

Mitochondria are specialized eukaryotic organelles that have a dedicated function in oxygen respiration and energy production. They evolved about 2 billion years ago from a free-living bacterial ancestor (probably an alphaproteobacterium), in a process known as endosymbiosis1,2. Many unicellular eukaryotes have since adapted to life in anoxic habitats and their mitochondria have undergone further reductive evolution3. As a result, obligate anaerobic eukaryotes with mitochondrial remnants derive their energy mostly from fermentation4. Here we describe 'Candidatus Azoamicus ciliaticola', which is an obligate endosymbiont of an anaerobic ciliate and has a dedicated role in respiration and providing energy for its eukaryotic host. 'Candidatus A. ciliaticola' contains a highly reduced 0.29-Mb genome that encodes core genes for central information processing, the electron transport chain, a truncated tricarboxylic acid cycle, ATP generation and iron-sulfur cluster biosynthesis. The genome encodes a respiratory denitrification pathway instead of aerobic terminal oxidases, which enables its host to breathe nitrate instead of oxygen. 'Candidatus A. ciliaticola' and its ciliate host represent an example of a symbiosis that is based on the transfer of energy in the form of ATP, rather than nutrition. This discovery raises the possibility that eukaryotes with mitochondrial remnants may secondarily acquire energy-providing endosymbionts to complement or replace functions of their mitochondria.


Asunto(s)
Anaerobiosis , Bacterias/metabolismo , Cilióforos/metabolismo , Desnitrificación , Metabolismo Energético , Interacciones Microbiota-Huesped , Simbiosis , Adenosina Trifosfato/metabolismo , Bacterias/genética , Evolución Biológica , Respiración de la Célula , Cilióforos/química , Cilióforos/citología , Ciclo del Ácido Cítrico/genética , Transporte de Electrón/genética , Genoma Bacteriano/genética , Interacciones Microbiota-Huesped/genética , Mitocondrias , Nitratos/metabolismo , Oxígeno/metabolismo , Filogenia
3.
Nature ; 600(7887): 105-109, 2021 12.
Artículo en Inglés | MEDLINE | ID: mdl-34732889

RESUMEN

Symbiotic N2-fixing microorganisms have a crucial role in the assimilation of nitrogen by eukaryotes in nitrogen-limited environments1-3. Particularly among land plants, N2-fixing symbionts occur in a variety of distantly related plant lineages and often involve an intimate association between host and symbiont2,4. Descriptions of such intimate symbioses are lacking for seagrasses, which evolved around 100 million years ago from terrestrial flowering plants that migrated back to the sea5. Here we describe an N2-fixing symbiont, 'Candidatus Celerinatantimonas neptuna', that lives inside seagrass root tissue, where it provides ammonia and amino acids to its host in exchange for sugars. As such, this symbiosis is reminiscent of terrestrial N2-fixing plant symbioses. The symbiosis between Ca. C. neptuna and its host Posidonia oceanica enables highly productive seagrass meadows to thrive in the nitrogen-limited Mediterranean Sea. Relatives of Ca. C. neptuna occur worldwide in coastal ecosystems, in which they may form similar symbioses with other seagrasses and saltmarsh plants. Just like N2-fixing microorganisms might have aided the colonization of nitrogen-poor soils by early land plants6, the ancestors of Ca. C. neptuna and its relatives probably enabled flowering plants to invade nitrogen-poor marine habitats, where they formed extremely efficient blue carbon ecosystems7.


Asunto(s)
Alismatales/microbiología , Organismos Acuáticos/metabolismo , Bacterias/metabolismo , Fijación del Nitrógeno , Nitrógeno/metabolismo , Simbiosis , Alismatales/metabolismo , Aminoácidos/metabolismo , Amoníaco/metabolismo , Organismos Acuáticos/microbiología , Ecosistema , Endófitos/metabolismo , Mar Mediterráneo , Hojas de la Planta/metabolismo , Raíces de Plantas/metabolismo , Raíces de Plantas/microbiología
4.
Proc Natl Acad Sci U S A ; 119(9)2022 03 01.
Artículo en Inglés | MEDLINE | ID: mdl-35165204

RESUMEN

Marine coastlines colonized by seagrasses are a net source of methane to the atmosphere. However, methane emissions from these environments are still poorly constrained, and the underlying processes and responsible microorganisms remain largely unknown. Here, we investigated methane turnover in seagrass meadows of Posidonia oceanica in the Mediterranean Sea. The underlying sediments exhibited median net fluxes of methane into the water column of ca. 106 µmol CH4 ⋅ m-2 ⋅ d-1 Our data show that this methane production was sustained by methylated compounds produced by the plant, rather than by fermentation of buried organic carbon. Interestingly, methane production was maintained long after the living plant died off, likely due to the persistence of methylated compounds, such as choline, betaines, and dimethylsulfoniopropionate, in detached plant leaves and rhizomes. We recovered multiple mcrA gene sequences, encoding for methyl-coenzyme M reductase (Mcr), the key methanogenic enzyme, from the seagrass sediments. Most retrieved mcrA gene sequences were affiliated with a clade of divergent Mcr and belonged to the uncultured Candidatus Helarchaeota of the Asgard superphylum, suggesting a possible involvement of these divergent Mcr in methane metabolism. Taken together, our findings identify the mechanisms controlling methane emissions from these important blue carbon ecosystems.


Asunto(s)
Alismatales/metabolismo , Euryarchaeota/metabolismo , Metano/metabolismo , Aerobiosis , Anaerobiosis , Euryarchaeota/clasificación , Sedimentos Geológicos , Mar Mediterráneo , Microbiota , Oxidación-Reducción , Filogenia , Especificidad de la Especie
5.
PLoS Genet ; 13(12): e1007122, 2017 12.
Artículo en Inglés | MEDLINE | ID: mdl-29253903

RESUMEN

While we have good understanding of bacterial metabolism at the population level, we know little about the metabolic behavior of individual cells: do single cells in clonal populations sometimes specialize on different metabolic pathways? Such metabolic specialization could be driven by stochastic gene expression and could provide individual cells with growth benefits of specialization. We measured the degree of phenotypic specialization in two parallel metabolic pathways, the assimilation of glucose and arabinose. We grew Escherichia coli in chemostats, and used isotope-labeled sugars in combination with nanometer-scale secondary ion mass spectrometry and mathematical modeling to quantify sugar assimilation at the single-cell level. We found large variation in metabolic activities between single cells, both in absolute assimilation and in the degree to which individual cells specialize in the assimilation of different sugars. Analysis of transcriptional reporters indicated that this variation was at least partially based on cell-to-cell variation in gene expression. Metabolic differences between cells in clonal populations could potentially reduce metabolic incompatibilities between different pathways, and increase the rate at which parallel reactions can be performed.


Asunto(s)
Metabolismo de los Hidratos de Carbono , Escherichia coli/metabolismo , Adaptación Fisiológica , Arabinosa/metabolismo , Escherichia coli/crecimiento & desarrollo , Expresión Génica , Genes Bacterianos , Glucosa/metabolismo , Redes y Vías Metabólicas , Fenotipo , Análisis de la Célula Individual
6.
Infect Immun ; 87(9)2019 09.
Artículo en Inglés | MEDLINE | ID: mdl-31285248

RESUMEN

Actinobacillus pleuropneumoniae is a capnophilic pathogen of the porcine respiratory tract lacking enzymes of the oxidative branch of the tricarboxylic acid (TCA) cycle. We previously claimed that A. pleuropneumoniae instead uses the reductive branch in order to generate energy and metabolites. Here, we show that bicarbonate and oxaloacetate supported anaerobic growth of A. pleuropneumoniae Isotope mass spectrometry revealed heterotrophic fixation of carbon from stable isotope-labeled bicarbonate by A. pleuropneumoniae, which was confirmed by nano-scale secondary ion mass spectrometry at a single-cell level. By gas chromatography-combustion-isotope ratio mass spectrometry we could further show that the labeled carbon atom is mainly incorporated into the amino acids aspartate and lysine, which are derived from the TCA metabolite oxaloacetate. We therefore suggest that carbon fixation occurs at the interface of glycolysis and the reductive branch of the TCA cycle. The heme precursor δ-aminolevulinic acid supported growth of A. pleuropneumoniae, similar to bicarbonate, implying that anaplerotic carbon fixation is needed for heme synthesis. However, deletion of potential carbon-fixing enzymes, including PEP-carboxylase (PEPC), PEP-carboxykinase (PEPCK), malic enzyme, and oxaloacetate decarboxylase, as well as various combinations thereof, did not affect carbon fixation. Interestingly, generation of a deletion mutant lacking all four enzymes was not possible, suggesting that carbon fixation in A. pleuropneumoniae is an essential metabolic pathway controlled by a redundant set of enzymes. A double deletion mutant lacking PEPC and PEPCK was not impaired in carbon fixation in vitro but showed reduction of virulence in a pig infection model.


Asunto(s)
Infecciones por Actinobacillus/metabolismo , Actinobacillus pleuropneumoniae , Ciclo del Carbono/fisiología , Pleuroneumonía/metabolismo , Virulencia/fisiología , Actinobacillus pleuropneumoniae/metabolismo , Actinobacillus pleuropneumoniae/patogenicidad , Animales , Modelos Animales de Enfermedad , Porcinos
7.
Environ Microbiol ; 21(5): 1611-1626, 2019 05.
Artículo en Inglés | MEDLINE | ID: mdl-30689286

RESUMEN

Anoxygenic phototrophic sulfide oxidation by green and purple sulfur bacteria (PSB) plays a key role in sulfide removal from anoxic shallow sediments and stratified waters. Although some PSB can also oxidize sulfide with nitrate and oxygen, little is known about the prevalence of this chemolithotrophic lifestyle in the environment. In this study, we investigated the role of these phototrophs in light-independent sulfide removal in the chemocline of Lake Cadagno. Our temporally resolved, high-resolution chemical profiles indicated that dark sulfide oxidation was coupled to high oxygen consumption rates of ~9 µM O2 ·h-1 . Single-cell analyses of lake water incubated with 13 CO2 in the dark revealed that Chromatium okenii was to a large extent responsible for aerobic sulfide oxidation and it accounted for up to 40% of total dark carbon fixation. The genome of Chr. okenii reconstructed from the Lake Cadagno metagenome confirms its capacity for microaerophilic growth and provides further insights into its metabolic capabilities. Moreover, our genomic and single-cell data indicated that other PSB grow microaerobically in these apparently anoxic waters. Altogether, our observations suggest that aerobic respiration may not only play an underappreciated role in anoxic environments but also that organisms typically considered strict anaerobes may be involved.


Asunto(s)
Chromatiaceae/metabolismo , Lagos/microbiología , Oxígeno/metabolismo , Sulfuros/metabolismo , Aerobiosis , Chromatiaceae/genética , Chromatiaceae/crecimiento & desarrollo , Chromatiaceae/efectos de la radiación , Lagos/análisis , Luz , Oxidación-Reducción , Oxígeno/análisis , Procesos Fototróficos
8.
Appl Environ Microbiol ; 85(14)2019 07 15.
Artículo en Inglés | MEDLINE | ID: mdl-31076432

RESUMEN

Microbial biomass is a key parameter needed for the quantification of microbial turnover rates and their contribution to the biogeochemical element cycles. However, estimates of microbial biomass rely on empirically derived mass-to-volume relationships, and large discrepancies exist between the available empirical conversion factors. Here we report a significant nonlinear relationship between carbon mass and cell volume ([Formula: see text]; [Formula: see text]) based on direct cell mass, volume, and elemental composition measurements of 12 prokaryotic species with average volumes between 0.011 and 0.705 µm3 The carbon mass density of our measured cells ranged from 250 to 1,800 fg of C µm-3 for the measured cell volumes. Compared to other currently used models, our relationship yielded up to 300% higher carbon mass values. A compilation of our and previously published data showed that cells with larger volumes (>0.5 µm3) display a constant (carbon) mass-to-volume ratio, whereas cells with volumes below 0.5 µm3 exhibit a nonlinear increase in (carbon) mass density with decreasing volume. Small microorganisms dominate marine and freshwater bacterioplankton as well as soils and marine and terrestrial subsurface. The application of our experimentally determined conversion factors will help to quantify the true contribution of these microorganisms to ecosystem functions and global microbial biomass.IMPORTANCE Microorganisms are a major component of Earth's biosphere, and their activity significantly affects the biogeochemical cycling of bioavailable elements. To correctly determine the flux of carbon and energy in the environment, reliable estimates of microbial abundances and cellular carbon content are necessary. However, accurate assessments of cellular carbon content and dry weight are not trivial to obtain. Here we report direct measurements of cell dry and carbon mass of environmentally relevant prokaryotic microorganisms using a microfluidic mass sensor. We show a significant nonlinear relationship between carbon mass and cell volume and discuss this relationship in the light of currently used cellular mass models.


Asunto(s)
Bacterias/química , Fenómenos Fisiológicos Bacterianos , Carbono/análisis , Agua Dulce/microbiología , Agua de Mar/microbiología , Microbiología del Suelo , Biomasa
9.
Appl Environ Microbiol ; 85(24)2019 12 15.
Artículo en Inglés | MEDLINE | ID: mdl-31585991

RESUMEN

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.


Asunto(s)
Arcobacter/aislamiento & purificación , Arcobacter/metabolismo , Sedimentos Geológicos/microbiología , Procesos Heterotróficos/fisiología , Agua de Mar/microbiología , Sulfuros/metabolismo , Arcobacter/genética , Arcobacter/crecimiento & desarrollo , Biomasa , Carbono/metabolismo , Ciclo del Carbono , Desnitrificación , Marcaje Isotópico , Nitratos/metabolismo , Fijación del Nitrógeno , Oxidación-Reducción , Oxígeno/metabolismo , Perú , ARN Ribosómico 16S/genética , ARN Ribosómico 16S/aislamiento & purificación , Agua/química , Microbiología del Agua , Secuenciación Completa del Genoma
10.
New Phytol ; 222(2): 852-863, 2019 04.
Artículo en Inglés | MEDLINE | ID: mdl-30507001

RESUMEN

To understand the role of micrometer-scale oxygen (O2 ) gradients in facilitating dinitrogen (N2 ) fixation, we characterized O2 dynamics in the microenvironment around free-floating trichomes and colonies of Trichodesmium erythraeum IMS101. Diurnal and spatial variability in O2 concentrations in the bulk medium, within colonies, along trichomes and within single cells were determined using O2 optodes, microsensors and model calculations. Carbon (C) and N2 fixation as well as O2 evolution and uptake under different O2 concentrations were analyzed by stable isotope incubations and membrane inlet mass spectrometry. We observed a pronounced diel rhythm in O2 fluxes, with net O2 evolution restricted to short periods in the morning and evening, and net O2 uptake driven by dark respiration and light-dependent O2 uptake during the major part of the light period. Remarkably, colonies showed lower N2 fixation and C fixation rates than free-floating trichomes despite the long period of O2 undersaturation in the colony microenvironment. Model calculations demonstrate that low permeability of the cell wall in combination with metabolic heterogeneity between single cells allows for anoxic intracellular conditions in colonies but also free-floating trichomes of Trichodesmium. Therefore, whereas colony formation must have benefits for Trichodesmium, it does not favor N2 fixation.


Asunto(s)
Ambiente , Fijación del Nitrógeno , Trichodesmium/fisiología , Ciclo del Carbono , Pared Celular/metabolismo , Ritmo Circadiano/fisiología , Modelos Biológicos , Oxígeno/metabolismo , Permeabilidad , Tricomas/metabolismo
11.
Environ Microbiol ; 20(5): 1723-1738, 2018 05.
Artículo en Inglés | MEDLINE | ID: mdl-29528547

RESUMEN

The distribution and importance of anaerobic ammonium oxidation (anammox) and nitrite-dependent anaerobic methane oxidation (n-damo) have been identified in aquatic ecosystems; their role in agricultural upland soils however has not yet been well investigated. In this study, we examined spatio-temporal distributions of anammox and n-damo bacteria in soil profiles (300 cm depth) from an agricultural upland. Monitoring nitrogen (N) conversion activity using isotope-tracing techniques over the course of one year showed denitrification (99.0% N-loss in the winter and 85.0% N-loss in the summer) predominated over anammox (1.0% N-loss in the winter and 14.4% N-loss in the summer) and n-damo (0.6% N-loss in the winter) in surface soils (0-20 cm). While below 20 cm depth, N-loss was dominated by anammox (79.4 ± 14.3% in the winter and 65.4 ± 12.5% in the summer) and n-damo was not detected. Phylogenetic analysis showed that Candidatus Brocadia anammoxidans dominated the anammox community in the surface soil and Candidatus Brocadia fulgida dominated below 20 cm depth. Dissimilatory nitrate reduction to ammonium (DNRA), another nitrite reduction process, was found to play a limited role (4.9 ± 3.5%) in the surface soil compared with denitrification; below 80 cm DNRA rates were much higher than rates of anammox and denitrification. Ammonium oxidation was the main source of NO2- above 80 cm (70.9 ± 23.3%), the key influencing factor on anammox rates, and nitrate reduction (100%) was the main NO2- source below 80 cm. Considering the anammox, n-damo and denitrification rates as a whole in the sampled soil profile, denitrification is still the main N-loss process in upland soils.


Asunto(s)
Bacterias/metabolismo , Nitrógeno/metabolismo , Microbiología del Suelo , Suelo/química , Compuestos de Amonio/metabolismo , Anaerobiosis , Bacterias/clasificación , Desnitrificación , Metano/metabolismo , Nitratos , Nitritos/metabolismo , Nitrógeno/química , Oxidación-Reducción , Filogenia
12.
Environ Microbiol ; 20(12): 4486-4502, 2018 12.
Artículo en Inglés | MEDLINE | ID: mdl-30117262

RESUMEN

Coastal oceans receive large amounts of anthropogenic fixed nitrogen (N), most of which is denitrified in the sediment before reaching the open ocean. Sandy sediments, which are common in coastal regions, seem to play an important role in catalysing this N-loss. Permeable sediments are characterized by advective porewater transport, which supplies high fluxes of organic matter into the sediment, but also leads to fluctuations in oxygen and nitrate concentrations. Little is known about how the denitrifying communities in these sediments are adapted to such fluctuations. Our combined results indicate that denitrification in eutrophied sandy sediments from the world's largest tidal flat system, the Wadden Sea, is carried out by different groups of microorganisms. This segregation leads to the formation of N2 O which is advectively transported to the overlying waters and thereby emitted to the atmosphere. At the same time, the production of N2 O within the sediment supports a subset of Flavobacteriia which appear to be specialized on N2 O reduction. If the mechanisms shown here are active in other coastal zones, then denitrification in eutrophied sandy sediments may substantially contribute to current marine N2 O emissions.


Asunto(s)
Desnitrificación , Sedimentos Geológicos/microbiología , Óxido Nitroso/metabolismo , Microbiología del Suelo , Atmósfera , Sedimentos Geológicos/química , Nitratos/metabolismo , Fijación del Nitrógeno , Océanos y Mares
13.
Environ Microbiol ; 20(2): 755-768, 2018 02.
Artículo en Inglés | MEDLINE | ID: mdl-29194930

RESUMEN

The N2 -fixing (diazotrophic) community in marine ecosystems is dominated by non-cyanobacterial microorganisms. Yet, very little is known about their identity, function and ecological relevance due to a lack of cultured representatives. Here we report a novel heterotrophic diazotroph isolated from the oxygen minimum zone (OMZ) off Peru. The new species belongs to the genus Sagittula (Rhodobacteraceae, Alphaproteobacteria) and its capability to fix N2 was confirmed in laboratory experiments. Genome sequencing revealed that it is a strict heterotroph with a high versatility in substrate utilization and energy acquisition mechanisms. Pathways for sulfide oxidation and nitrite reduction to nitrous oxide are encoded in the genome and might explain the presence throughout the Peruvian OMZ. The genome further indicates that this novel organism could be in direct interaction with other microbes or particles. NanoSIMS analyses were used to compare the metabolic potential of S. castanea with single-cell activity in situ; however, N2 fixation by this diazotroph could not be detected at the isolation site. While the biogeochemical impact of S. castanea is yet to be resolved, its abundance and widespread distribution suggests that its potential to contribute to the marine N input could be significant at a larger geographical scale.


Asunto(s)
Metabolismo Energético/fisiología , Fijación del Nitrógeno/fisiología , Rhodobacteraceae/clasificación , Rhodobacteraceae/metabolismo , Anaerobiosis , Metabolismo Energético/genética , Genoma Bacteriano/genética , Procesos Heterotróficos , Nitritos/metabolismo , Fijación del Nitrógeno/genética , Oxidación-Reducción , Oxígeno/metabolismo , Perú , Rhodobacteraceae/aislamiento & purificación , Agua de Mar/microbiología , Sulfuros/metabolismo
14.
Environ Microbiol ; 20(7): 2598-2614, 2018 07.
Artículo en Inglés | MEDLINE | ID: mdl-29806730

RESUMEN

Methanotrophic bacteria represent an important biological filter regulating methane emissions into the atmosphere. Planktonic methanotrophic communities in freshwater lakes are typically dominated by aerobic gamma-proteobacteria, with a contribution from alpha-proteobacterial methanotrophs and the NC10 bacteria. The NC10 clade encompasses methanotrophs related to 'Candidatus Methylomirabilis oxyfera', which oxidize methane using a unique pathway of denitrification that tentatively produces N2 and O2 from nitric oxide (NO). Here, we describe a new species of the NC10 clade, 'Ca. Methylomirabilis limnetica', which dominated the planktonic microbial community in the anoxic depths of the deep stratified Lake Zug in two consecutive years, comprising up to 27% of the total bacterial population. Gene transcripts assigned to 'Ca. M. limnetica' constituted up to one third of all metatranscriptomic sequences in situ. The reconstructed genome encoded a complete pathway for methane oxidation, and an incomplete denitrification pathway, including two putative nitric oxide dismutase genes. The genome of 'Ca. M. limnetica' exhibited features possibly related to genome streamlining (i.e. less redundancy of key metabolic genes) and adaptation to its planktonic habitat (i.e. gas vesicle genes). We speculate that 'Ca. M. limnetica' temporarily bloomed in the lake during non-steady-state conditions suggesting a niche for NC10 bacteria in the lacustrine methane and nitrogen cycle.


Asunto(s)
Bacterias Anaerobias/aislamiento & purificación , Desnitrificación , Lagos/microbiología , Metano/metabolismo , Bacterias Anaerobias/clasificación , Bacterias Anaerobias/genética , Bacterias Anaerobias/metabolismo , Genoma Bacteriano , Microbiota , Óxido Nítrico/metabolismo , Ciclo del Nitrógeno , Oxidación-Reducción , Microbiología del Agua
15.
Nature ; 549(7671): 162-163, 2017 09 13.
Artículo en Inglés | MEDLINE | ID: mdl-28905910
16.
Nature ; 491(7425): 541-6, 2012 Nov 22.
Artículo en Inglés | MEDLINE | ID: mdl-23135396

RESUMEN

Emissions of methane, a potent greenhouse gas, from marine sediments are controlled by anaerobic oxidation of methane coupled primarily to sulphate reduction (AOM). Sulphate-coupled AOM is believed to be mediated by a consortium of methanotrophic archaea (ANME) and sulphate-reducing Deltaproteobacteria but the underlying mechanism has not yet been resolved. Here we show that zero-valent sulphur compounds (S(0)) are formed during AOM through a new pathway for dissimilatory sulphate reduction performed by the methanotrophic archaea. Hence, AOM might not be an obligate syntrophic process but may be carried out by the ANME alone. Furthermore, we show that the produced S(0)--in the form of disulphide--is disproportionated by the Deltaproteobacteria associated with the ANME. Our observations expand the diversity of known microbially mediated sulphur transformations and have significant implications for our understanding of the biogeochemical carbon and sulphur cycles.


Asunto(s)
Organismos Acuáticos/metabolismo , Archaea/metabolismo , Deltaproteobacteria/metabolismo , Metano/metabolismo , Azufre/química , Azufre/metabolismo , Anaerobiosis , Ciclo del Carbono , Dióxido de Carbono/metabolismo , Disulfuros/metabolismo , Sedimentos Geológicos/química , Modelos Biológicos , Oxidación-Reducción , Sulfatos/metabolismo
17.
Nature ; 488(7411): 361-4, 2012 Aug 16.
Artículo en Inglés | MEDLINE | ID: mdl-22878720

RESUMEN

Biological dinitrogen fixation provides the largest input of nitrogen to the oceans, therefore exerting important control on the ocean's nitrogen inventory and primary productivity. Nitrogen-isotope data from ocean sediments suggest that the marine-nitrogen inventory has been balanced for the past 3,000 years (ref. 4). Producing a balanced marine-nitrogen budget based on direct measurements has proved difficult, however, with nitrogen loss exceeding the gain from dinitrogen fixation by approximately 200 Tg N yr−1 (refs 5, 6). Here we present data from the Atlantic Ocean and show that the most widely used method of measuring oceanic N2-fixation rates underestimates the contribution of N2-fixing microorganisms (diazotrophs) relative to a newly developed method. Using molecular techniques to quantify the abundance of specific clades of diazotrophs in parallel with rates of 15N2 incorporation into particulate organic matter, we suggest that the difference between N2-fixation rates measured with the established method and those measured with the new method can be related to the composition of the diazotrophic community. Our data show that in areas dominated by Trichodesmium, the established method underestimates N2-fixation rates by an average of 62%. We also find that the newly developed method yields N2-fixation rates more than six times higher than those from the established method when unicellular, symbiotic cyanobacteria and γ-proteobacteria dominate the diazotrophic community. On the basis of average areal rates measured over the Atlantic Ocean, we calculated basin-wide N2-fixation rates of 14 ± 1 Tg N yr−1 and 24 ±1 Tg N yr−1 for the established and new methods, respectively. If our findings can be extrapolated to other ocean basins, this suggests that the global marine N2-fixation rate derived from direct measurements may increase from 103 ± 8 Tg N yr−1 to 177 ± 8 Tg N yr−1, and that the contribution of N2 fixers other than Trichodesmium is much more significant than was previously thought.


Asunto(s)
Organismos Acuáticos/metabolismo , Fijación del Nitrógeno/fisiología , Nitrógeno/metabolismo , Océano Atlántico , Cianobacterias/genética , Cianobacterias/metabolismo , Diatomeas/metabolismo , Cinética , Oxidorreductasas/genética , Proteobacteria/genética , Proteobacteria/metabolismo , Agua de Mar/química , Polimerasa Taq/metabolismo , Temperatura , Clima Tropical
18.
Environ Microbiol ; 18(12): 5288-5302, 2016 12.
Artículo en Inglés | MEDLINE | ID: mdl-27768826

RESUMEN

Iron redox reactions play an important role in carbon remineralization, supporting large microbial communities in iron-rich terrestrial and aquatic sediments. Stratified water columns with comparably low iron concentrations are globally widespread, but microbial iron cycling in these systems has largely been ignored. We found evidence for unexpectedly high iron turnover rates in the low (1-2 µmol·l-1 ) iron waters of Lake Cadagno. Light-dependent, biological iron oxidation rates (1.4-13.8 µmol·l-1 ·d-1 ) were even higher than in ferruginous lakes with well-studied microbial iron cycles. This photoferrotrophic iron oxidation may account for up to 10% of total primary production in the chemocline. Iron oxides could not be detected and were presumably reduced immediately by iron-reducing microorganisms. Sequences of putative iron oxidizers and reducers were retrieved from in situ 16S rRNA gene amplicon libraries and some of these bacteria were identified in our enrichment cultures supplemented with Fe(II) and FeS. Based on our results, we propose a model in which iron is oxidized by photoferrotrophs and microaerophiles, and iron oxides are immediately reduced by heterotrophic iron reducers, resulting in a cryptic iron cycle. We hypothesize that microbial iron cycling may be more prevalent in water column redoxclines, especially those within the photic zone, than previously believed.


Asunto(s)
Bacterias/metabolismo , Hierro/metabolismo , Lagos/microbiología , Bacterias/genética , Bacterias/aislamiento & purificación , Carbono/metabolismo , Hierro/química , Lagos/química , Oxidación-Reducción , ARN Ribosómico 16S/genética
20.
Nature ; 464(7288): 543-8, 2010 Mar 25.
Artículo en Inglés | MEDLINE | ID: mdl-20336137

RESUMEN

Only three biological pathways are known to produce oxygen: photosynthesis, chlorate respiration and the detoxification of reactive oxygen species. Here we present evidence for a fourth pathway, possibly of considerable geochemical and evolutionary importance. The pathway was discovered after metagenomic sequencing of an enrichment culture that couples anaerobic oxidation of methane with the reduction of nitrite to dinitrogen. The complete genome of the dominant bacterium, named 'Candidatus Methylomirabilis oxyfera', was assembled. This apparently anaerobic, denitrifying bacterium encoded, transcribed and expressed the well-established aerobic pathway for methane oxidation, whereas it lacked known genes for dinitrogen production. Subsequent isotopic labelling indicated that 'M. oxyfera' bypassed the denitrification intermediate nitrous oxide by the conversion of two nitric oxide molecules to dinitrogen and oxygen, which was used to oxidize methane. These results extend our understanding of hydrocarbon degradation under anoxic conditions and explain the biochemical mechanism of a poorly understood freshwater methane sink. Because nitrogen oxides were already present on early Earth, our finding opens up the possibility that oxygen was available to microbial metabolism before the evolution of oxygenic photosynthesis.


Asunto(s)
Anaerobiosis , Bacterias/metabolismo , Metano/metabolismo , Nitritos/metabolismo , Bacterias/clasificación , Bacterias/enzimología , Bacterias/genética , Genoma Bacteriano/genética , Datos de Secuencia Molecular , Oxidación-Reducción , Oxígeno/metabolismo , Oxigenasas/genética , Filogenia , Microbiología del Suelo
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