Iron oxides impact sulfate-driven anaerobic oxidation of methane in diffusion-dominated marine sediments
暂无分享,去创建一个
[1] Connor T. Skennerton,et al. Comparative genomics reveals electron transfer and syntrophic mechanisms differentiating methanotrophic and methanogenic archaea , 2021, bioRxiv.
[2] Connor T. Skennerton,et al. Sulfate differentially stimulates but is not respired by diverse anaerobic methanotrophic archaea , 2021, The ISME journal.
[3] O. Sivan,et al. The Effect of Early Diagenesis in Methanic Sediments on Sedimentary Magnetic Properties: Case Study From the SE Mediterranean Continental Shelf , 2020, Frontiers in Earth Science.
[4] Guo-ping Sheng,et al. Redox state of microbial extracellular polymeric substances regulates reduction of selenite to elemental selenium accompanying with enhancing microbial detoxification in aquatic environments. , 2020, Water research.
[5] S. Kasten,et al. Rates and Microbial Players of Iron-Driven Anaerobic Oxidation of Methane in Methanic Marine Sediments , 2020, Frontiers in Microbiology.
[6] J. Zopfi,et al. Manganese/iron‐supported sulfate‐dependent anaerobic oxidation of methane by archaea in lake sediments , 2019, Limnology and Oceanography.
[7] B. Herut,et al. Evidence for microbial iron reduction in the methanic sediments of the oligotrophic southeastern Mediterranean continental shelf , 2019, Biogeosciences.
[8] Fengping Wang,et al. Metal-dependent anaerobic methane oxidation in marine sediment: Insights from marine settings and other systems , 2019, Science China Life Sciences.
[9] J. Zopfi,et al. Manganese/iron-supported sulfate-dependent anaerobic oxidation of methane by archaea in lake sediments , 2019, bioRxiv.
[10] A. Findlay,et al. Sulfate reduction rates in the sediments of the Mediterranean continental shelf inferred from combined dissolved inorganic carbon and total alkalinity profiles , 2019, Marine Chemistry.
[11] Xiang Xiao,et al. Expanding anaerobic alkane metabolism in the domain of Archaea , 2019, Nature Microbiology.
[12] B. Jørgensen,et al. The sulfur cycle below the sulfate-methane transition of marine sediments , 2018, Geochimica et Cosmochimica Acta.
[13] B. Jørgensen,et al. Cryptic CH4 cycling in the sulfate–methane transition of marine sediments apparently mediated by ANME-1 archaea , 2018, The ISME Journal.
[14] Penghui Yang,et al. A novel method of simultaneous NH4+ and NO3- removal using Fe cycling as a catalyst: Feammox coupled with NAFO. , 2018, The Science of the total environment.
[15] A. Kushmaro,et al. Iron-Coupled Anaerobic Oxidation of Methane Performed by a Mixed Bacterial-Archaeal Community Based on Poorly Reactive Minerals. , 2017, Environmental science & technology.
[16] Q. Liang,et al. Methane‐metabolizing microbial communities in sediments of the Haima cold seep area, northwest slope of the South China Sea , 2017, FEMS microbiology ecology.
[17] B. Jørgensen,et al. Iron oxide reduction in methane-rich deep Baltic Sea sediments , 2017 .
[18] B. Herut,et al. Spatial distribution and sources of organic matter and pollutants in the SE Mediterranean (Levantine basin) deep water sediments. , 2017, Marine pollution bulletin.
[19] C. Hoffman,et al. Redox potential as a master variable controlling pathways of metal reduction by Geobacter sulfurreducens , 2016, The ISME Journal.
[20] D. Valentine,et al. Methanogens rapidly transition from methane production to iron reduction , 2016, Geobiology.
[21] Hang Yu,et al. Artificial electron acceptors decouple archaeal methane oxidation from sulfate reduction , 2016, Science.
[22] A. Boetius,et al. Intercellular wiring enables electron transfer between methanotrophic archaea and bacteria , 2015, Nature.
[23] B. Herut,et al. Geochemical evidence for biogenic methane production and consumption in the shallow sediments of the SE Mediterranean shelf (Israel) , 2015 .
[24] Richard B. Coffin,et al. Sulfate reduction and methane oxidation activity below the sulfate-methane transition zone in Alaskan Beaufort Sea continental margin sediments: Implications for deep sulfur cycling , 2014 .
[25] V. Orphan,et al. Iron oxides stimulate sulfate-driven anaerobic methane oxidation in seeps , 2014, Proceedings of the National Academy of Sciences.
[26] Souichiro Kato,et al. Reduction of Fe(III) oxides by phylogenetically and physiologically diverse thermophilic methanogens. , 2014, FEMS microbiology ecology.
[27] Thomas Holler,et al. Sulfur and oxygen isotope fractionation during sulfate reduction coupled to anaerobic oxidation of methane is dependent on methane concentration , 2014 .
[28] S. Joye,et al. Anaerobic oxidation of methane by sulfate in hypersaline groundwater of the Dead Sea aquifer , 2014, Geobiology.
[29] B. Herut,et al. Sulfur and oxygen isotope tracing of sulfate driven anaerobic methane oxidation in estuarine sediments , 2014 .
[30] S. Kasten,et al. An inorganic geochemical argument for coupled anaerobic oxidation of methane and iron reduction in marine sediments , 2014, Geobiology.
[31] Hailiang Dong,et al. Microbial reduction of Fe(III) in smectite minerals by thermophilic methanogen Methanothermobacter thermautotrophicus , 2013 .
[32] C. Schubert,et al. Anaerobic oxidation of methane in an iron‐rich Danish freshwater lake sediment , 2013 .
[33] Markus Schmid,et al. Zero-valent sulphur is a key intermediate in marine methane oxidation , 2012, Nature.
[34] Alfonso Mucci,et al. Preservation of organic matter in sediments promoted by iron , 2012, Nature.
[35] T. Fischer,et al. Microbial reduction of Fe(III) in illite–smectite minerals by methanogen Methanosarcina mazei , 2012 .
[36] V. Orphan,et al. Trace Metal Requirements for Microbial Enzymes Involved in the Production and Consumption of Methane and Nitrous Oxide , 2011, Front. Microbio..
[37] F. Gelman,et al. Geochemical evidence for iron‐mediated anaerobic oxidation of methane , 2011 .
[38] B. Jørgensen,et al. A cryptic sulfur cycle driven by iron in the methane zone of marine sediment (Aarhus Bay, Denmark) , 2011 .
[39] S. Katsev,et al. The methane cycle in ferruginous Lake Matano , 2011, Geobiology.
[40] M. Bar-Matthews,et al. Climatic variability during the last ∼90 ka of the southern and northern Levantine Basin as evident from marine records and speleothems , 2009 .
[41] K. Knittel,et al. Anaerobic oxidation of methane: progress with an unknown process. , 2009, Annual review of microbiology.
[42] S. Kasten,et al. Diagenetic changes of magnetic and geochemical signals by anaerobic methane oxidation in sediments of the Zambezi deep-sea fan (SW Indian Ocean) , 2008 .
[43] S. Bernasconi,et al. A revised isotope fractionation model for dissimilatory sulfate reduction in sulfate reducing bacteria , 2005 .
[44] D. Schrag,et al. Rates of methanogenesis and methanotrophy in deep‐sea sediments , 2005 .
[45] D. Canfield,et al. Development of a sequential extraction procedure for iron: implications for iron partitioning in continentally derived particulates , 2005 .
[46] Daniel Rokhsar,et al. Reverse Methanogenesis: Testing the Hypothesis with Environmental Genomics , 2004, Science.
[47] J. Scholten,et al. Direct inhibition of methanogenesis by ferric iron. , 2004, FEMS microbiology ecology.
[48] D. R. Bond,et al. Electron Transfer by Desulfobulbus propionicus to Fe(III) and Graphite Electrodes , 2004, Applied and Environmental Microbiology.
[49] E. Delong,et al. Identification of Methyl Coenzyme M Reductase A (mcrA) Genes Associated with Methane-Oxidizing Archaea , 2003, Applied and Environmental Microbiology.
[50] E. Roden,et al. Competition between Fe(III)-Reducing and Methanogenic Bacteria for Acetate in Iron-Rich Freshwater Sediments , 2003, Microbial Ecology.
[51] David L. Valentine,et al. Biogeochemistry and microbial ecology of methane oxidation in anoxic environments: a review , 2002, Antonie van Leeuwenhoek.
[52] D. R. Bond,et al. Reduction of Fe(III) oxide by methanogens in the presence and absence of extracellular quinones. , 2002, Environmental microbiology.
[53] B. Herut,et al. Composition of clays along the continental shelf off Israel: contribution of the Nile versus local sources , 2000 .
[54] R. Conrad. Contribution of hydrogen to methane production and control of hydrogen concentrations in methanogenic soils and sediments , 1999 .
[55] S. Kasten,et al. Deep sulfate reduction completely mediated by anaerobic methane oxidation in sediments of the upwelling area off Namibia , 1998 .
[56] D. Canfield,et al. Sulfur isotope fractionation during bacterial sulfate reduction in organic-rich sediments. , 1997, Geochimica et cosmochimica acta.
[57] Tori M. Hoehler,et al. Field and laboratory studies of methane oxidation in an anoxic marine sediment: Evidence for a methanogen‐sulfate reducer consortium , 1994 .
[58] Kelly P. Nevin,et al. Dissimilatory Fe(III) and Mn(IV) reduction. , 1991, Advances in microbial physiology.
[59] D. Canfield. Reactive iron in marine sediments. , 1989, Geochimica et cosmochimica acta.
[60] D. Lovley,et al. Competitive Mechanisms for Inhibition of Sulfate Reduction and Methane Production in the Zone of Ferric Iron Reduction in Sediments , 1987, Applied and environmental microbiology.
[61] D. Hammond,et al. Early oxidation of organic matter in pelagic sediments of the eastern equatorial Atlantic: suboxic diagenesis , 1979 .
[62] L. Stookey. Ferrozine---a new spectrophotometric reagent for iron , 1970 .
[63] Joel D. Cline,et al. SPECTROPHOTOMETRIC DETERMINATION OF HYDROGEN SULFIDE IN NATURAL WATERS1 , 1969 .
[64] M. Elvert,et al. Potential electron acceptors for anaerobic methane oxidation during long-term incubations of lake sediments , 2021, Goldschmidt2021 abstracts.
[65] B. Jørgensen. Bacteria and Marine Biogeochemistry , 2006 .
[66] K. Nauhaus,et al. Environmental regulation of the anaerobic oxidation of methane: a comparison of ANME-I and ANME-II communities. , 2005, Environmental microbiology.
[67] R. Conrad,et al. Competition for electron donors among nitrate reducers, ferric iron reducers, sulfate reducers, and methanogens in anoxic paddy soil , 2004, Biology and Fertility of Soils.
[68] P. Aharon. Microbial Processes and Products Fueled by Hydrocarbons at Submarine Seeps , 2000 .
[69] B. Jørgensen,et al. Sulfate Reduction in Marine Sediments , 2000 .
[70] A. Boetius,et al. Bacterial activity in sediments of the deep Arabian Sea in relation to vertical flux , 2000 .
[71] Y. Nir. Recent sediments of the Israel Mediterranean continental shelf and slope , 1984 .