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1.
Nat Commun ; 13(1): 312, 2022 01 25.
Article in English | MEDLINE | ID: mdl-35078973

ABSTRACT

A fourth of the global seabed sediment volume is buried at depths where temperatures exceed 80 °C, a previously proposed thermal barrier for life in the subsurface. Here, we demonstrate, utilizing an extensive suite of radiotracer experiments, the prevalence of active methanogenic and sulfate-reducing populations in deeply buried marine sediment from the Nankai Trough subduction zone, heated to extreme temperature (up to ~120 °C). The small microbial community subsisted with high potential cell-specific rates of energy metabolism, which approach the rates of active surface sediments and laboratory cultures. Our discovery is in stark contrast to the extremely low metabolic rates otherwise observed in the deep subseafloor. As cells appear to invest most of their energy to repair thermal cell damage in the hot sediment, they are forced to balance delicately between subsistence near the upper temperature limit for life and a rich supply of substrates and energy from thermally driven reactions of the sedimentary organic matter.


Subject(s)
Bacteria/metabolism , Carbon Radioisotopes/metabolism , Geologic Sediments/microbiology , Hot Temperature , Microbiota , Sulfates/metabolism , Sulfur Radioisotopes/metabolism , Bacteria/growth & development , Geologic Sediments/analysis , Geologic Sediments/chemistry , Radioactive Tracers
2.
Science ; 349(6246): 420-4, 2015 Jul 24.
Article in English | MEDLINE | ID: mdl-26206933

ABSTRACT

Microbial life inhabits deeply buried marine sediments, but the extent of this vast ecosystem remains poorly constrained. Here we provide evidence for the existence of microbial communities in ~40° to 60°C sediment associated with lignite coal beds at ~1.5 to 2.5 km below the seafloor in the Pacific Ocean off Japan. Microbial methanogenesis was indicated by the isotopic compositions of methane and carbon dioxide, biomarkers, cultivation data, and gas compositions. Concentrations of indigenous microbial cells below 1.5 km ranged from <10 to ~10(4) cells cm(-3). Peak concentrations occurred in lignite layers, where communities differed markedly from shallower subseafloor communities and instead resembled organotrophic communities in forest soils. This suggests that terrigenous sediments retain indigenous community members tens of millions of years after burial in the seabed.


Subject(s)
Aquatic Organisms/classification , Archaea/classification , Bacteria/classification , Coal/microbiology , Geologic Sediments/microbiology , Microbial Consortia , Seawater/microbiology , Aquatic Organisms/genetics , Aquatic Organisms/metabolism , Archaea/genetics , Archaea/metabolism , Bacteria/genetics , Bacteria/metabolism , Biomarkers/metabolism , Carbon Dioxide/metabolism , Japan , Methane/metabolism , Methanococcus/classification , Methanococcus/genetics , Methanococcus/metabolism , Methanosarcina barkeri/classification , Methanosarcina barkeri/genetics , Methanosarcina barkeri/metabolism , Pacific Ocean
3.
Nat Commun ; 6: 7477, 2015 Jun 30.
Article in English | MEDLINE | ID: mdl-26123199

ABSTRACT

The role of anaerobic oxidation of methane (AOM) in wetlands, the largest natural source of atmospheric methane, is poorly constrained. Here we report rates of microbially mediated AOM (average rate=20 nmol cm(-3) per day) in three freshwater wetlands that span multiple biogeographical provinces. The observed AOM rates rival those in marine environments. Most AOM activity may have been coupled to sulphate reduction, but other electron acceptors remain feasible. Lipid biomarkers typically associated with anaerobic methane-oxidizing archaea were more enriched in (13)C than those characteristic of marine systems, potentially due to distinct microbial metabolic pathways or dilution with heterotrophic isotope signals. On the basis of this extensive data set, AOM in freshwater wetlands may consume 200 Tg methane per year, reducing their potential methane emissions by over 50%. These findings challenge precepts surrounding wetland carbon cycling and demonstrate the environmental relevance of an anaerobic methane sink in ecosystems traditionally considered strong methane sources.


Subject(s)
Air Pollutants/metabolism , Fresh Water , Methane/metabolism , Wetlands , Air Pollutants/chemistry , Anaerobiosis , Carbon Isotopes , Florida , Georgia , Maine , Methane/chemistry , Oxidation-Reduction
4.
Geobiology ; 12(3): 183-99, 2014 May.
Article in English | MEDLINE | ID: mdl-24593671

ABSTRACT

Vesicomyidae clams harbor sulfide-oxidizing endosymbionts and are typical members of cold seep communities where active venting of fluids and gases takes place. We investigated the central biogeochemical processes that supported a vesicomyid clam colony as part of a locally restricted seep community in the Japan Trench at 5346 m water depth, one of the deepest seep settings studied to date. An integrated approach of biogeochemical and molecular ecological techniques was used combining in situ and ex situ measurements. In sediment of the clam colony, low sulfate reduction rates (maximum 128 nmol mL(-1) day(-1)) were coupled to the anaerobic oxidation of methane. They were observed over a depth range of 15 cm, caused by active transport of sulfate due to bioturbation of the vesicomyid clams. A distinct separation between the seep and the surrounding seafloor was shown by steep horizontal geochemical gradients and pronounced microbial community shifts. The sediment below the clam colony was dominated by anaerobic methanotrophic archaea (ANME-2c) and sulfate-reducing Desulfobulbaceae (SEEP-SRB-3, SEEP-SRB-4). Aerobic methanotrophic bacteria were not detected in the sediment, and the oxidation of sulfide seemed to be carried out chemolithoautotrophically by Sulfurovum species. Thus, major redox processes were mediated by distinct subgroups of seep-related microorganisms that might have been selected by this specific abyssal seep environment. Fluid flow and microbial activity were low but sufficient to support the clam community over decades and to build up high biomasses. Hence, the clams and their microbial communities adapted successfully to a low-energy regime and may represent widespread chemosynthetic communities in the Japan Trench. In this regard, they contributed to the restricted deep-sea trench biodiversity as well as to the organic carbon availability, also for non-seep organisms, in such oligotrophic benthic environment of the dark deep ocean.


Subject(s)
Archaea/physiology , Bacterial Physiological Phenomena , Bivalvia/microbiology , Hydrothermal Vents/microbiology , Anaerobiosis , Animals , Archaea/genetics , Archaea/isolation & purification , Bacteria/genetics , Bacteria/isolation & purification , Biota , Bivalvia/physiology , Geologic Sediments/chemistry , Geologic Sediments/microbiology , Hydrothermal Vents/chemistry , Lipid Metabolism , Methane/metabolism , Molecular Sequence Data , Pacific Ocean , Phylogeny , Polymerase Chain Reaction , RNA, Ribosomal, 16S/genetics , Sequence Analysis, DNA , Sulfates/metabolism
5.
Geobiology ; 11(6): 549-69, 2013 Nov.
Article in English | MEDLINE | ID: mdl-23981055

ABSTRACT

Detailed analysis of 16S rRNA and intact polar lipids (IPLs) from streamer biofilm communities (SBCs), collected from geochemically similar hot springs in the Lower Geyser Basin, Yellowstone National Park, shows good agreement and affirm that IPLs can be used as reliable markers for the microbial constituents of SBCs. Uncultured Crenarchaea are prominent in SBS, and their IPLs contain both glycosidic and mixed glyco-phospho head groups with tetraether cores, having 0-4 rings. Archaeal IPL contributions increase with increasing temperature and comprise up to one-fourth of the total IPL inventory at >84 °C. At elevated temperatures, bacterial IPLs contain abundant glycosidic glycerol diether lipids. Diether and diacylglycerol (DAG) lipids with aminopentanetetrol and phosphatidylinositol head groups were identified as lipids diagnostic of Aquificales, while DAG glycolipids and glyco-phospholipids containing N-acetylgycosamine as head group were assigned to members of the Thermales. With decreasing temperature and concomitant changes in water chemistry, IPLs typical of phototrophic bacteria, such as mono-, diglycosyl, and sulfoquinovosyl DAG, which are specific for cyanobacteria, increase in abundance, consistent with genomic data from the same samples. Compound-specific stable carbon isotope analysis of IPL breakdown products reveals a large isotopic diversity among SBCs in different hot springs. At two of the hot springs, 'Bison Pool' and Flat Cone, lipids derived from Aquificales are enriched in (13) C relative to biomass and approach values close to dissolved inorganic carbon (DIC) (approximately 0‰), consistent with fractionation during autotrophic carbon fixation via the reversed tricarboxylic acid pathway. At a third site, Octopus Spring, the same Aquificales-diagnostic lipids are 10‰ depleted relative to biomass and resemble stable carbon isotope values of dissolved organic carbon (DOC), indicative of heterotrophy. Other bacterial and archaeal lipids show a similar variance, with values resembling the DIC or DOC pool or a mixture thereof. This variance cannot be explained by hot spring chemistry or temperature alone, but instead, we argue that intermittent input of exogenous organic carbon can result in metabolic shifts of the chemotrophic communities from autotrophy to heterotrophy and vice versa.


Subject(s)
Archaea/classification , Archaea/genetics , Bacteria/classification , Bacteria/genetics , Biofilms , Biota , Hot Springs/microbiology , Cluster Analysis , DNA, Archaeal/chemistry , DNA, Archaeal/genetics , DNA, Bacterial/chemistry , DNA, Bacterial/genetics , DNA, Ribosomal/chemistry , DNA, Ribosomal/genetics , Genes, rRNA , Lipids/analysis , Molecular Sequence Data , Phylogeny , RNA, Archaeal/genetics , RNA, Bacterial/genetics , RNA, Ribosomal, 16S/genetics , Sequence Analysis, DNA , Sequence Homology, Nucleic Acid , Temperature , United States
6.
Environ Microbiol ; 15(7): 1969-87, 2013 Jul.
Article in English | MEDLINE | ID: mdl-23279012

ABSTRACT

Chemosynthetic life was recently discovered at Chapopote, an asphalt hydrocarbon seep in the southern Gulf of Mexico. Preliminary morphological analyses indicated that one tubeworm and two mussel species colonize Chapopote. Our molecular analyses identified the tubeworm as Escarpia sp., and the mussels as Bathymodiolus heckerae and B. brooksi. Comparative 16S rRNA analysis and FISH showed that all three species harbour intracellular sulfur-oxidizing symbionts highly similar or identical to those found in the same host species from northern Gulf of Mexico (nGoM). The mussels also harbour methane-oxidizing symbionts, and these shared highly similar to identical 16S rRNA sequences to their nGoM conspecifics. We discovered a novel symbiont in B. heckerae, which is closely related to hydrocarbon-degrading bacteria of the genus Cycloclasticus. In B. heckerae, we found key genes for the use of aromatic compounds, and its stable carbon isotope values were consistently higher than B. brooksi, indicating that the novel symbiont might use isotopically heavy aromatic hydrocarbons from the asphalt seep. This discovery is particularly intriguing because until now only methane and reduced sulfur compounds have been shown to power cold-seep chemosynthetic symbioses. The abundant hydrocarbons available at Chapopote would provide these mussel symbioses with a rich source of nutrition.


Subject(s)
Bacteria/classification , Bacteria/genetics , Bacterial Physiological Phenomena , Bivalvia/microbiology , Polychaeta/microbiology , Symbiosis , Aldehyde-Lyases/analysis , Animals , Bacteria/isolation & purification , Biodiversity , Bivalvia/classification , Bivalvia/genetics , Carbon Isotopes/analysis , Cytochrome P-450 Enzyme System/analysis , Electron Transport Complex IV/genetics , Gulf of Mexico , Molecular Sequence Data , Phylogeny , Polychaeta/classification , Polychaeta/genetics , RNA, Ribosomal, 16S/genetics
7.
Geobiology ; 9(2): 166-79, 2011 Mar.
Article in English | MEDLINE | ID: mdl-21244620

ABSTRACT

Zodletone spring in Oklahoma is a unique environment with high concentrations of dissolved-sulfide (10 mm) and short-chain gaseous alkanes, exhibiting characteristics that are reminiscent of conditions that are thought to have existed in Earth's history, in particular the late Archean and early-to-mid Proterozoic. Here, we present a process-oriented investigation of the microbial community in two distinct mat formations at the spring source, (1) the top of the sediment in the source pool and (2) the purple streamers attached to the side walls. We applied a combination of pigment and lipid biomarker analyses, while functional activities were investigated in terms of oxygen production (microsensor analysis) and carbon utilization ((13)C incorporation experiments). Pigment analysis showed cyanobacterial pigments, in addition to pigments from purple sulfur bacteria (PSB), green sulfur bacteria (GSB) and Chloroflexus-like bacteria (CLB). Analysis of intact polar lipids (IPLs) in the source sediment confirmed the presence of phototrophic organisms via diacylglycerol phospholipids and betaine lipids, whereas glyceroldialkylglyceroltetraether additionally indicated the presence of archaea. No archaeal IPLs were found in the purple streamers, which were strongly dominated by betaine lipids. (13)C-bicarbonate- and -acetate-labeling experiments indicated cyanobacteria as predominant phototrophs in the source sediment, carbon was actively fixed by PSB/CLB/GSB in purple streamers by using near infrared light. Despite the presence of cyanobacteria, no oxygen could be detected in the presence of light, suggesting anoxygenic photosynthesis as the major metabolic process at this site. Our investigations furthermore indicated photoheterotrophy as an important process in both habitats. We obtained insights into a syntrophically operating phototrophic community in an ecosystem that bears resemblance to early Earth conditions, where cyanobacteria constitute an important contributor to carbon fixation despite the presence of high sulfide concentrations.


Subject(s)
Archaea/classification , Archaea/isolation & purification , Bacteria/classification , Bacteria/isolation & purification , Fresh Water/microbiology , Hot Springs/microbiology , Bacterial Physiological Phenomena , Bacteriological Techniques , Biodiversity , Biofilms , Chromatography, High Pressure Liquid , DNA, Archaeal/genetics , DNA, Bacterial/genetics , Lipids/analysis , Microscopy , Oklahoma , Phylogeny , RNA, Archaeal/genetics , RNA, Bacterial/genetics , RNA, Ribosomal, 16S/genetics
8.
Geobiology ; 7(3): 308-23, 2009 Jun.
Article in English | MEDLINE | ID: mdl-19476506

ABSTRACT

Modern microbial mats are widely recognized as useful analogs for the study of biogeochemical processes relevant to paleoenvironmental reconstruction in the Precambrian. We combined microscopic observations and investigations of biomarker composition to investigate community structure and function in the upper layers of a thick phototrophic microbial mat system from a hypersaline lake on Kiritimati (Christmas Island) in the Northern Line Islands, Republic of Kiribati. In particular, an exploratory incubation experiment with (13)C-labeled bicarbonate was conducted to pinpoint biomarkers from organisms actively fixing carbon. A high relative abundance of the cyanobacterial taxa Aphanocapsa and Aphanothece was revealed by microscopic observation, and cyanobacterial fatty acids and hydrocarbons showed (13)C-uptake in the labeling experiment. Microscopic observations also revealed purple sulfur bacteria (PSB) in the deeper layers. A cyclic C(19:0) fatty acid and farnesol were attributed to this group that was also actively fixing carbon. Background isotopic values indicate Calvin-Benson cycle-based autotrophy for cycC(19:0) and farnesol-producing PSBs. Biomarkers from sulfate-reducing bacteria (SRB) in the top layer of the mat and their (13)C-uptake patterns indicated a close coupling between SRBs and cyanobacteria. Archaeol, possibly from methanogens, was detected in all layers and was especially abundant near the surface where it contained substantial amounts of (13)C-label. Intact glycosidic tetraether lipids detected in the deepest layer indicated other archaea. Large amounts of ornithine and betaine bearing intact polar lipids could be an indicator of a phosphate-limited ecosystem, where organisms that are able to substitute these for phospholipids may have a competitive advantage.


Subject(s)
Archaea/metabolism , Bacteria/metabolism , Carbon/metabolism , Geologic Sediments/microbiology , Archaea/classification , Archaea/cytology , Bacteria/classification , Bacteria/cytology , Carbon Isotopes/metabolism , Fatty Acids/analysis , Geologic Sediments/chemistry , Microscopy , Pacific Ocean , Staining and Labeling/methods
9.
Appl Environ Microbiol ; 67(11): 5179-89, 2001 Nov.
Article in English | MEDLINE | ID: mdl-11679343

ABSTRACT

The molecular and isotopic compositions of lipid biomarkers of cultured Aquificales genera have been used to study the community and trophic structure of the hyperthermophilic pink streamers and vent biofilm from Octopus Spring. Thermocrinis ruber, Thermocrinis sp. strain HI 11/12, Hydrogenobacter thermophilus TK-6, Aquifex pyrophilus, and Aquifex aeolicus all contained glycerol-ether phospholipids as well as acyl glycerides. The n-C(20:1) and cy-C(21) fatty acids dominated all of the Aquificales, while the alkyl glycerol ethers were mainly C(18:0). These Aquificales biomarkers were major constituents of the lipid extracts of two Octopus Spring samples, a biofilm associated with the siliceous vent walls, and the well-known pink streamer community (PSC). Both the biofilm and the PSC contained mono- and dialkyl glycerol ethers in which C(18) and C(20) alkyl groups were prevalent. Phospholipid fatty acids included both the Aquificales n-C(20:1) and cy-C(21), plus a series of iso-branched fatty acids (i-C(15:0) to i-C(21:0)), indicating an additional bacterial component. Biomass and lipids from the PSC were depleted in (13)C relative to source water CO(2) by 10.9 and 17.2 per thousand, respectively. The C(20-21) fatty acids of the PSC were less depleted than the iso-branched fatty acids, 18.4 and 22.6 per thousand, respectively. The biomass of T. ruber grown on CO(2) was depleted in (13)C by only 3.3 per thousand relative to C source. In contrast, biomass was depleted by 19.7 per thousand when formate was the C source. Independent of carbon source, T. ruber lipids were heavier than biomass (+1.3 per thousand). The depletion in the C(20-21) fatty acids from the PSC indicates that Thermocrinis biomass must be similarly depleted and too light to be explained by growth on CO(2). Accordingly, Thermocrinis in the PSC is likely to have utilized formate, presumably generated in the spring source region.


Subject(s)
Bacteria/chemistry , Bacteria/classification , Carbon Isotopes/analysis , Fresh Water/microbiology , Lipids/analysis , Bacteria/genetics , Biofilms , DNA, Bacterial/genetics , Ecosystem , Genes, rRNA , Molecular Sequence Data , Phylogeny , RNA, Ribosomal, 16S/genetics , Sequence Analysis, DNA , Temperature
10.
Science ; 293(5529): 484-7, 2001 Jul 20.
Article in English | MEDLINE | ID: mdl-11463914

ABSTRACT

Microorganisms living in anoxic marine sediments consume more than 80% of the methane produced in the world's oceans. In addition to single-species aggregates, consortia of metabolically interdependent bacteria and archaea are found in methane-rich sediments. A combination of fluorescence in situ hybridization and secondary ion mass spectrometry shows that cells belonging to one specific archaeal group associated with the Methanosarcinales were all highly depleted in 13C (to values of -96 per thousand). This depletion indicates assimilation of isotopically light methane into specific archaeal cells. Additional microbial species apparently use other carbon sources, as indicated by significantly higher 13C/12C ratios in their cell carbon. Our results demonstrate the feasibility of simultaneous determination of the identity and the metabolic activity of naturally occurring microorganisms.


Subject(s)
Deltaproteobacteria/metabolism , Geologic Sediments/microbiology , Methane/metabolism , Methanosarcinales/metabolism , Anaerobiosis , Carbon Isotopes/analysis , Deltaproteobacteria/chemistry , Deltaproteobacteria/classification , In Situ Hybridization, Fluorescence , Lipids/analysis , Methanosarcinales/chemistry , Methanosarcinales/classification , Oceans and Seas , Oligonucleotide Probes , Oxidation-Reduction , Phylogeny , RNA, Archaeal/genetics , RNA, Bacterial/genetics , RNA, Ribosomal/genetics , Spectrometry, Mass, Secondary Ion , Sulfates/metabolism
11.
Appl Environ Microbiol ; 67(4): 1922-34, 2001 Apr.
Article in English | MEDLINE | ID: mdl-11282650

ABSTRACT

The oxidation of methane in anoxic marine sediments is thought to be mediated by a consortium of methane-consuming archaea and sulfate-reducing bacteria. In this study, we compared results of rRNA gene (rDNA) surveys and lipid analyses of archaea and bacteria associated with methane seep sediments from several different sites on the Californian continental margin. Two distinct archaeal lineages (ANME-1 and ANME-2), peripherally related to the order Methanosarcinales, were consistently associated with methane seep marine sediments. The same sediments contained abundant (13)C-depleted archaeal lipids, indicating that one or both of these archaeal groups are members of anaerobic methane-oxidizing consortia. (13)C-depleted lipids and the signature 16S rDNAs for these archaeal groups were absent in nearby control sediments. Concurrent surveys of bacterial rDNAs revealed a predominance of delta-proteobacteria, in particular, close relatives of Desulfosarcina variabilis. Biomarker analyses of the same sediments showed bacterial fatty acids with strong (13)C depletion that are likely products of these sulfate-reducing bacteria. Consistent with these observations, whole-cell fluorescent in situ hybridization revealed aggregations of ANME-2 archaea and sulfate-reducing Desulfosarcina and Desulfococcus species. Additionally, the presence of abundant (13)C-depleted ether lipids, presumed to be of bacterial origin but unrelated to ether lipids of members of the order Desulfosarcinales, suggests the participation of additional bacterial groups in the methane-oxidizing process. Although the Desulfosarcinales and ANME-2 consortia appear to participate in the anaerobic oxidation of methane in marine sediments, our data suggest that other bacteria and archaea are also involved in methane oxidation in these environments.


Subject(s)
Archaea/classification , Geologic Sediments/microbiology , Methane/metabolism , Seawater/microbiology , Sulfates/metabolism , Sulfur-Reducing Bacteria/classification , Anaerobiosis , Archaea/genetics , Archaea/metabolism , DNA, Ribosomal/analysis , DNA, Ribosomal/genetics , In Situ Hybridization, Fluorescence , Lipids/analysis , Molecular Sequence Data , Oxidation-Reduction , Phylogeny , Polymerase Chain Reaction , RNA, Ribosomal, 16S/genetics , Sequence Analysis, DNA , Sulfur-Reducing Bacteria/genetics , Sulfur-Reducing Bacteria/metabolism
12.
Nature ; 398(6730): 802-5, 1999 Apr 29.
Article in English | MEDLINE | ID: mdl-10235261

ABSTRACT

Large amounts of methane are produced in marine sediments but are then consumed before contacting aerobic waters or the atmosphere. Although no organism that can consume methane anaerobically has ever been isolated, biogeochemical evidence indicates that the overall process involves a transfer of electrons from methane to sulphate and is probably mediated by several organisms, including a methanogen (operating in reverse) and a sulphate-reducer (using an unknown intermediate substrate). Here we describe studies of sediments related to a decomposing methane hydrate. These provide strong evidence that methane is being consumed by archaebacteria that are phylogenetically distinct from known methanogens. Specifically, lipid biomarkers that are commonly characteristic of archaea are so strongly depleted in carbon-13 that methane must be the carbon source, rather than the metabolic product, for the organisms that have produced them. Parallel gene surveys of small-subunit ribosomal RNA (16S rRNA) indicate the predominance of a new archael group which is peripherally related to the methanogenic orders Methanomicrobiales and Methanosarcinales.


Subject(s)
Archaea/metabolism , Methane/metabolism , Water Microbiology , Archaea/classification , Archaea/genetics , Archaea/isolation & purification , California , Euryarchaeota/classification , Geologic Sediments , Lipid Metabolism , Phylogeny , RNA, Ribosomal, 16S/analysis
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