Anaerobic Ammonium Oxidation Linked to Microbial Reduction of Natural Organic Matter in Marine Sediments

被引:76
作者
Emilia Rios-Del Toro, E. [1 ]
Valenzuela, Edgardo I. [1 ]
Ernesto Ramirez, J. [1 ]
Lopez-Lozano, Nguyen E. [1 ]
Cervantes, Francisco J. [1 ]
机构
[1] IPICYT, Div Ciencias Ambientales, San Luis Potosi 78216, Slp, Mexico
关键词
HUMIC SUBSTANCES; ELECTRON-ACCEPTORS; SIMULTANEOUS REMOVAL; ANAMMOX BACTERIA; SP-NOV; WATER; MOIETIES; MEDIATOR; N-2;
D O I
10.1021/acs.estlett.8b00330
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Identification of microbial processes driving the loss of nitrogen from the oceans is of paramount relevance as these processes affect primary productivity in these ecosystems, which ultimately affects global biogeochemical cycles. Denitrification and anammox (anaerobic ammonium oxidation coupled to nitrite reduction) are the only identified processes so far that lead to nitrogen loss in marine environments. Here we provide stoichiometric and spectroscopic evidence, as well as tracer analysis with [N-15] ammonium, revealing that anaerobic ammonium oxidation linked to the microbial reduction of natural organic matter (NOM) fuels nitrogen loss in marine sediments from the eastern tropical North Pacific coast. Tracer analysis revealed that the NOM-dependent anammox process was responsible for producing similar to 1.5 mu g of N-15(2) (g of sediment)(-1) day(-1) after incubation for 27 days in sediment incubations amended with Pahokee peat, while intrinsic NOM present in the sediment promoted the production of, similar to 0.4 mu g of N-15(2) (g of sediment)(-1) Taxonomic characterization, based on 16S rRNA gene sequencing, of the biota present in marine sediments performing the NOM-dependent anammox process revealed several microbial members are potentially involved. The most predominant bacterial phylotypes detected were associated with Phycisphaeraceae, Actinomarinales, Acidiferrobacteraceae, and Rhodobacteraceae, while Nitrosopumilaceae was the only archaeal family whose level clearly increased during the course of NOM-dependent anammox. This is a novel pathway interconnecting the oceanic biogeochemical cycles of N and C, which may significantly propel nitrogen fluxes in organic-rich, coastal marine sediments.
引用
收藏
页码:571 / 577
页数:13
相关论文
共 29 条
[1]   Electrochemical Analysis of Proton and Electron Transfer Equilibria of the Reducible Moieties in Humic Acids [J].
Aeschbacher, Michael ;
Vergari, Daniele ;
Schwarzenbach, Rene P. ;
Sander, Michael .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2011, 45 (19) :8385-8394
[2]   Marine microorganisms and global nutrient cycles [J].
Arrigo, KR .
NATURE, 2005, 437 (7057) :349-355
[3]   Organic Matter Stoichiometry, Flux, and Oxygen Control Nitrogen Loss in the Ocean [J].
Babbin, Andrew R. ;
Keil, Richard G. ;
Devol, Allan H. ;
Ward, Bess B. .
SCIENCE, 2014, 344 (6182) :406-408
[4]   C-14 ACTIVITY OF DISSOLVED ORGANIC-CARBON FRACTIONS IN THE NORTH-CENTRAL PACIFIC AND SARGASSO SEA [J].
BAUER, JE ;
WILLIAMS, PM ;
DRUFFEL, ERM .
NATURE, 1992, 357 (6380) :667-670
[5]   N2 production by the anammox reaction in the anoxic water column of Golfo Dulce, Costa Rica [J].
Dalsgaard, T ;
Canfield, DE ;
Petersen, J ;
Thamdrup, B ;
Acuña-González, J .
NATURE, 2003, 422 (6932) :606-608
[6]   Nitrogen cycle - Solution to a marine mystery [J].
Devol, AH .
NATURE, 2003, 422 (6932) :575-576
[7]   Anaerobic ammonium oxidation linked to sulfate and ferric iron reduction fuels nitrogen loss in marine sediments [J].
Emilia Rios-Del Toro, E. ;
Valenzuela, Edgardo I. ;
Lopez-Lozano, Nguyen E. ;
Guadalupe Cortes-Martinez, M. ;
Sanchez-Rodriguez, Miguel A. ;
Calvario-Martinez, Omar ;
Sanchez-Carrillo, Salvador ;
Cervantes, Francisco J. .
BIODEGRADATION, 2018, 29 (05) :429-442
[8]   Up-flow anaerobic sediment trapped (UAST) reactor as a new configuration for the enrichment of anammox bacteria from marine sediments [J].
Emilia Rios-Del Toro, E. ;
Lopez-Lozano, Nguyen E. ;
Cervantes, Francisco J. .
BIORESOURCE TECHNOLOGY, 2017, 238 :528-533
[9]   Coupling between anammox and autotrophic denitrification for simultaneous removal of ammonium and sulfide by enriched marine sediments [J].
Emilia Rios-Del Toro, E. ;
Cervantes, Francisco J. .
BIODEGRADATION, 2016, 27 (2-3) :107-118
[10]   Biological reduction of uranium coupled with oxidation of ammonium by Acidimicrobiaceae bacterium A6 under iron reducing conditions [J].
Gilson, Emily R. ;
Huang, Shan ;
Jaffe, Peter R. .
BIODEGRADATION, 2015, 26 (06) :475-482