DeLong EF (1992) Archaea in coastal marine environments. Proc Natl Acad Sci U S A 89:5685–5689
CAS
PubMed Central
PubMed
Article
Google Scholar
Auguet JC, Casamayor EO (2008) A hotspot for cold Crenarchaeota in the neuston of high mountain lakes. Environ Microbiol 10:1080–1086
CAS
PubMed
Article
Google Scholar
Hallam SJ, Mincer TJ, Schleper C, Preston CM, Roberts K et al (2006) Pathways of carbon assimilation and ammonia oxidation suggested by environmental genomic analyses of marine Crenarchaeota. PLoS Biol 4:e95
PubMed Central
PubMed
Article
Google Scholar
Treusch AH, Leininger S, Kletzin A, Schuster SC, Klenk HP et al (2005) Novel genes for nitrite reductase and Amo-related proteins indicate a role of uncultivated mesophilic Crenarchaeota in nitrogen cycling. Environ Microbiol 7:1985–1995
CAS
PubMed
Article
Google Scholar
Venter JC, Remington K, Heidelberg JF, Halpern AL, Rusch D et al (2004) Environmental genome shotgun sequencing of the Sargasso Sea. Science 304:66–74
CAS
PubMed
Article
Google Scholar
Konneke M, Bernhard AE, de la Torre JR, Walker CB, Waterbury JB et al (2005) Isolation of an autotrophic ammonia-oxidizing marine archaeon. Nature 437:543–546
PubMed
Article
Google Scholar
Galand PE, Gutierrez-Provecho C, Massana R, Gasol J, Casamayor EO (2010) Inter-annual recurrence of archaeal assemblages in the coastal NW Mediterranean Sea. Limnol Oceanogr 55:2117–2125
Article
Google Scholar
Mincer TJ, Church MJ, Taylor LT, Preston C, Karl DM et al (2007) Quantitative distribution of presumptive archaeal and bacterial nitrifiers in Monterey Bay and the North Pacific Subtropical Gyre. Environ Microbiol 9:1162–1175
CAS
PubMed
Article
Google Scholar
Hugoni M, Etien S, Bourges A, Lepere C, Domaizon I et al (2013) Dynamics of ammonia-oxidizing Archaea and Bacteria in contrasted freshwater ecosystems. Res Microbiol 164:360–370
CAS
PubMed
Article
Google Scholar
Vissers EW, Anselmetti FS, Bodelier PL, Muyzer G, Schleper C et al (2013) Temporal and spatial coexistence of archaeal and bacterial amoA genes and gene transcripts in Lake Lucerne. Archaea 2013:289478
PubMed Central
PubMed
Article
Google Scholar
Beman JM, Popp BN, Francis CA (2008) Molecular and biogeochemical evidence for ammonia oxidation by marine Crenarchaeota in the Gulf of California. ISME J 2:429–441
CAS
PubMed
Article
Google Scholar
Magalhães C, Machado A, Bordalo A (2009) Temporal variability in the abundance of ammonia oxidizing Bacteria vs. Archaea in sandy sediments of the Douro River estuary, Portugal. Aquat Microb Ecol 56:13–23
Article
Google Scholar
Mosier AC, Francis CA (2008) Relative abundance and diversity of ammonia-oxidizing Archaea and Bacteria in the San Francisco Bay estuary. Environ Microbiol 10:3002–3016
CAS
PubMed
Article
Google Scholar
Santoro AE, Francis CA, de Sieyes NR, Boehm AB (2008) Shifts in the relative abundance of ammonia-oxidizing Bacteria and Archaea across physicochemical gradients in a subterranean estuary. Environ Microbiol 10:1068–1079
CAS
PubMed
Article
Google Scholar
Bernhard AE, Bollmann A (2010) Estuarine nitrifiers: new players, patterns and processes. Estuar Coast Shelf Sci 88:1–11
CAS
Article
Google Scholar
Auguet JC, Triado-Margarit X, Nomokonova N, Camarero L, Casamayor EO (2012) Vertical segregation and phylogenetic characterization of ammonia-oxidizing Archaea in a deep oligotrophic lake. ISME J 6:1786–1797
CAS
PubMed Central
PubMed
Article
Google Scholar
Qin W, Amin SA, Martens-Habbena W, Walker CB, Urakawa H et al (2014) Marine ammonia-oxidizing archaeal isolates display obligate mixotrophy and wide ecotypic variation. Proc Natl Acad Sci U S A 111:12504–12509
CAS
PubMed Central
PubMed
Article
Google Scholar
Alonso-Saez L, Waller AS, Mende DR, Bakker K, Farnelid H et al (2012) Role for urea in nitrification by polar marine Archaea. Proc Natl Acad Sci U S A 109:17989–17994
CAS
PubMed Central
PubMed
Article
Google Scholar
Walker CB, de la Torre JR, Klotz MG, Urakawa H, Pinel N et al (2010) Nitrosopumilus maritimus genome reveals unique mechanisms for nitrification and autotrophy in globally distributed marine Crenarchaea. Proc Natl Acad Sci U S A 107:8818–8823
CAS
PubMed Central
PubMed
Article
Google Scholar
Pedneault E, Galand PE, Potvin M, Tremblay JE, Lovejoy C (2014) Archaeal amoA and ureC genes and their transcriptional activity in the Arctic Ocean. Sci Rep 4:4661
PubMed Central
PubMed
Article
Google Scholar
Beam JP, Jay ZJ, Kozubal MA, Inskeep WP (2014) Niche specialization of novel Thaumarchaeota to oxic and hypoxic acidic geothermal springs of Yellowstone National Park. ISME J 8:938–951
CAS
PubMed Central
PubMed
Article
Google Scholar
Konneke M, Schubert DM, Brown PC, Hugler M, Standfest S et al (2014) Ammonia-oxidizing Archaea use the most energy-efficient aerobic pathway for CO2 fixation. Proc Natl Acad Sci U S A 111:8239–8244
PubMed Central
PubMed
Article
Google Scholar
Herlemann DP, Labrenz M, Jurgens K, Bertilsson S, Waniek JJ et al (2011) Transitions in bacterial communities along the 2000 km salinity gradient of the Baltic Sea. ISME J 5:1571–1579
CAS
PubMed Central
PubMed
Article
Google Scholar
Kirchman DL, Dittel AI, Malmstrom RR, Cottrell MT (2005) Biogeography of major bacterial groups in the Delaware Estuary. Limnol Oceanogr 50:1697–1706
CAS
Article
Google Scholar
Lozupone CA, Knight R (2007) Global patterns in bacterial diversity. Proc Natl Acad Sci U S A 104:11436–11440
CAS
PubMed Central
PubMed
Article
Google Scholar
Auguet JC, Barberan A, Casamayor EO (2009) Global ecological patterns in uncultured Archaea. ISME J 4:182–190
PubMed
Article
Google Scholar
Bernhard AE, Tucker J, Giblin AE, Stahl DA (2007) Functionally distinct communities of ammonia-oxidizing bacteria along an estuarine salinity gradient. Environ Microbiol 9:1439–1447
CAS
PubMed
Article
Google Scholar
Santoro AE, Casciotti K, Francis CA (2010) Activity, abundance and diversity of nitrifying Archaea and Bacteria in the central California Current. Environ Microbiol Rep 12:1989–2006
CAS
Article
Google Scholar
Galand PE, Lovejoy C, Pouliot J (2008) Microbial community diversity and heterotrophic production in a coastal Arctic ecosystem: a Stamukhi lake and its source waters. Limnol Oceanogr 53:813–823
Article
Google Scholar
Galand PE, Lovejoy C, Vincent WF (2006) Remarkably diverse and contrasting archaeal communities in a large arctic river and the coastal Arctic Ocean. Aquat Microb Ecol 44:115–126
Article
Google Scholar
Herfort L, Kim JH, Coolen MJL, Abbas B, Schouten S et al (2009) Diversity of Archaea and detection of crenarchaeotal amoA genes in the river Rhine and Têt. Aquat Microb Ecol 55:189–201
Article
Google Scholar
Alonso-Saez L, Balague V, Sa EL, Sanchez O, Gonzalez JM et al (2007) Seasonality in bacterial diversity in north-west Mediterranean coastal waters: assessment through clone libraries, fingerprinting and FISH. FEMS Microbiol Ecol 60:98–112
CAS
PubMed
Article
Google Scholar
Mary I, Cummings DG, Biegala IC, Burkill PH, Archer SD et al (2006) Seasonal dynamics of bacterioplankton community structure at a coastal station in the western English Channel. Aquat Microb Ecol 42:119–126
Article
Google Scholar
Campbell BJ, Yu L, Heidelberg JF, Kirchman DL (2011) Activity of abundant and rare Bacteria in a coastal ocean. Proc Natl Acad Sci U S A 108:12776–12781
CAS
PubMed Central
PubMed
Article
Google Scholar
Hugoni M, Taib N, Debroas D, Domaizon I, Jouan Dufournel I et al (2013) Structure of the rare archaeal biosphere and seasonal dynamics of active ecotypes in surface coastal waters. Proc Natl Acad Sci U S A 110:6004–6009
CAS
PubMed Central
PubMed
Article
Google Scholar
Lorenzen CJ (1967) Determination of chlorophyll and pheopigments: spectrophotometric equations. Limnol Oceanogr 12:343–346
CAS
Article
Google Scholar
Strickland J, Parsons T (1968) A practical handbook of sea water analysis
Rotthauwe JH, Witzel KP, Liesack W (1997) The ammonia monooxygenase structural gene amoA as a functional marker: molecular fine-scale analysis of natural ammonia-oxidizing populations. Appl Environ Microbiol 63:4704–4712
Takai K, Horikoshi K (2000) Rapid detection and quantification of members of the archaeal community by quantitative PCR using fluorogenic probes. Appl Environ Microbiol 66:5066–5072
CAS
PubMed Central
PubMed
Article
Google Scholar
Kim M, Morrison M, Yu Z (2011) Evaluation of different partial 16S rRNA gene sequence regions for phylogenetic analysis of microbiomes. J Microbiol Methods 84:81–87
CAS
PubMed
Article
Google Scholar
Taib N, Mangot JF, Domaizon I, Bronner G, Debroas D (2013) Phylogenetic affiliation of SSU rRNA genes generated by massively parallel sequencing: new insights into the freshwater protist diversity. PLoS ONE 8:e58950
CAS
PubMed Central
PubMed
Article
Google Scholar
Edgar RC, Haas BJ, Clemente JC, Quince C, Knight R (2011) UCHIME improves sensitivity and speed of chimera detection. Bioinformatics 27:2194–2200
CAS
PubMed Central
PubMed
Article
Google Scholar
Edgar RC (2004) Muscle: multiple sequence alignment with high accuracy and high throughput. Nucleic Acids Res 32:1792–1797
CAS
PubMed Central
PubMed
Article
Google Scholar
Tamura K, Peterson D, Peterson N, Stecher G, Nei M et al (2011) MEGA5: molecular evolutionary genetics analysis using maximum likelihood, evolutionary distance, and maximum parsimony methods. Mol Biol Evol 28:2731–2739
CAS
PubMed Central
PubMed
Article
Google Scholar
Francis CA, Roberts KJ, Beman JM, Santoro AE, Oakley BB (2005) Ubiquity and diversity of ammonia-oxidizing Archaea in water columns and sediments of the ocean. Proc Natl Acad Sci U S A 102:14683–14688
CAS
PubMed Central
PubMed
Article
Google Scholar
Borcard D, Legendre P, Drapeau P (1992) Partialling out the spatial component of ecological variation. Ecology 73:1045–1055
Article
Google Scholar
Massana R, DeLong EF, Pedros-Alio C (2000) A few cosmopolitan phylotypes dominate planktonic archaeal assemblages in widely different oceanic provinces. Appl Environ Microbiol 66:1777–1787
CAS
PubMed Central
PubMed
Article
Google Scholar
Abell GC, Revill AT, Smith C, Bissett AP, Volkman JK et al (2010) Archaeal ammonia oxidizers and nirS-type denitrifiers dominate sediment nitrifying and denitrifying populations in a subtropical macrotidal estuary. ISME J 4:286–300
CAS
PubMed
Article
Google Scholar
Martens-Habbena W, Berube PM, Urakawa H, de la Torre JR, Stahl DA (2009) Ammonia oxidation kinetics determine niche separation of nitrifying Archaea and Bacteria. Nature 461:976–979
CAS
PubMed
Article
Google Scholar
Winter C, Bouvier T, Weinbauer MG, Thingstad TF (2010) Trade-offs between competition and defense specialists among unicellular planktonic organisms: the “killing the winner” hypothesis revisited. Microbiol Mol Biol Rev 74:42–57
CAS
PubMed Central
PubMed
Article
Google Scholar
Sintes E, Bergauer K, De Corte D, Yokokawa T, Herndl GJ (2013) Archaeal amoA gene diversity points to distinct biogeography of ammonia-oxidizing Crenarchaeota in the ocean. Environ Microbiol 15:1647–1658
CAS
PubMed Central
PubMed
Article
Google Scholar
Auguet JC, Casamayor EO (2013) Partitioning of Thaumarchaeota populations along environmental gradients in high mountain lakes. FEMS Microbiol Ecol 84:154–164
CAS
PubMed
Article
Google Scholar
Restrepo-Ortiz CX, Auguet JC, Casamayor EO (2013) Targeting spatiotemporal dynamics of planktonic SAGMGC-1 and segregation of ammonia-oxidizing thaumarchaeota ecotypes by newly designed primers and quantitative polymerase chain reaction. Environ Microbiol 16:689–700
PubMed
Article
Google Scholar
Mußmann M, Brito I, Pitcher A, Sinninghe Damste JS, Hatzenpichler R et al (2011) Thaumarchaeotes abundant in refinery nitrifying sludges express amoA but are not obligate autotrophic ammonia oxidizers. Proc Natl Acad Sci U S A 108:16771–16776
PubMed Central
PubMed
Article
Google Scholar
Pester M, Rattei T, Flechl S, Grongroft A, Richter A et al (2011) amoA-based consensus phylogeny of ammonia-oxidizing Archaea and deep sequencing of amoA genes from soils of four different geographic regions. Environ Microbiol 14:525–539
PubMed
Article
Google Scholar
Pulliam HR (1988) Sources, sinks, and population regulation. Am Nat 132:652–661
Article
Google Scholar
Barberan A, Fernandez-Guerra A, Auguet JC, Galand PE, Casamayor EO (2011) Phylogenetic ecology of widespread uncultured clades of the kingdom Euryarchaeota. Mol Ecol 20:1988–1996
PubMed
Article
Google Scholar
Frigaard NU, Martinez A, Mincer TJ, DeLong EF (2006) Proteorhodopsin lateral gene transfer between marine planktonic Bacteria and Archaea. Nature 439:847–850
CAS
PubMed
Article
Google Scholar
Iverson V, Morris RM, Frazar CD, Berthiaume CT, Morales RL et al (2012) Untangling genomes from metagenomes: revealing an uncultured class of marine Euryarchaeota. Science 335:587–590
CAS
PubMed
Article
Google Scholar
Meng J, Xu J, Qin D, He Y, Xiao X et al (2014) Genetic and functional properties of uncultivated MCG Archaea assessed by metagenome and gene expression analyses. ISME J 8:650–659
CAS
PubMed Central
PubMed
Article
Google Scholar
Webster G, O’Sullivan LA, Meng Y, Williams AS, Sass AM et al (2015) Archaeal community diversity and abundance changes along a natural salinity gradient in estuarine sediments. FEMS Microbiol Ecol 91:1–18
PubMed Central
PubMed
Article
Google Scholar
Inagaki F, Nunoura T, Nakagawa S, Teske A, Lever M et al (2006) Biogeographical distribution and diversity of microbes in methane hydrate-bearing deep marine sediments on the Pacific Ocean Margin. Proc Natl Acad Sci U S A 103:2815–2820
CAS
PubMed Central
PubMed
Article
Google Scholar
Singh SK, Verma P, Ramaiah N, Chandrashekar AA, Shouche YS (2010) Phylogenetic diversity of archaeal 16S rRNA and ammonia monooxygenase genes from tropical estuarine sediments on the central west coast of India. Res Microbiol 161:177–186
CAS
PubMed
Article
Google Scholar
Lloyd KG, Schreiber L, Petersen DG, Kjeldsen KU, Lever MA et al (2013) Predominant Archaea in marine sediments degrade detrital proteins. Nature 496:215–218
CAS
PubMed
Article
Google Scholar