Denitrification Potential and Denitrifier Abundance in Downstream of Dams in Temperate Streams

논문상세정보
' Denitrification Potential and Denitrifier Abundance in Downstream of Dams in Temperate Streams' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • denitrificationenzymeactivity
  • denitrifierabundance
  • nitrogencycle
  • streamregulation
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
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0.0%

' Denitrification Potential and Denitrifier Abundance in Downstream of Dams in Temperate Streams' 의 참고문헌

  • Water quality issues in the Nakdong River Basin in the Republic of Korea
    Chun, K.C. Environ. Engineer. Policy 2 : 12 ~ [2001]
  • Variability and regulation of denitrification in an Upper Mississippi River backwater
    Strauss, E.A. J. North American Benthological Society 25 : 596 ~ 606 [2006]
  • The unaccounted yet abundant nitrous oxide-reducing microbial community: a potential nitrous oxide sink
    Jones, C.M. ISME J 7 : 417 ~ 426 [2013]
  • The potential of metagenomic approaches for understanding soil microbial processes
    Myrold, D.D. Soil Sci. Soc. America J 78 : 3 ~ 10 [2013]
  • The influence of organic carbon on nitrogen transformations in five wetland soils
    Davidsson, T.E. Soil Sci. Soc. America J 64 : 1129 ~ 1136 [2000]
  • The coupling of nitrification and denitrification in two estuarine sediments
    Jenkins, M.C. Limnol. Oceanogr 29 : 11 ~ [1984]
  • The control of nitrous oxide emissions from agricultural and natural soils
    Skiba, U. Chemosphere - Global Change Sci 2 : 379 ~ 386 [2000]
  • The MIQE guidelines:Minimum information for publication of quantitative real-time PCR experiments
    Bustin, S.A. Clin. Chem 55 : 611 ~ 622 [2009]
  • Subsurface denitrification in a forest riparian zone: Interactions between hydrology and supplies of nitrate and organic carbon
    Hill, A.R. Biogeochemistry 51 : 193 ~ 223 [2000]
  • Stream denitrification across biomes and its response to anthropogenic nitrate loading
    Mulholland, P.J. Nature 452 : 202 ~ 246 [2008]
  • Standard soil methods for long-term ecological research
    Groffman, P.M. Oxford University Press : 272 ~ 290 [1999]
  • Spatial-temporal variation of dissolved N2 and denitrification in an agricultural river network, southeast China
    Chen, N. Agricul. Ecosyst. Environ 189 : 1 ~ 10 [2014]
  • Spatial heterogeneity of denitrification genes in a highly homogenous urban stream
    Knapp, C.W. Environ. Sci. Technol 43 : 4273 ~ 4279 [2009]
  • Soil resources influence spatial patterns of denitrifying communities at scales compatible with land management
    Enwall, K. Appl. Environ. Microbiol 76 : 2243 ~ 2250 [2010]
  • Soil environmental conditions rather than denitrifier abundance and diversity drive potential denitrification after changes in land uses
    Attard, E. Glob. Change Biol 17 : 1975 ~ 1989 [2011]
  • Sediment size and nutrients regulate denitrification in a tropical stream
    Solomon, C.T. J. North American Benthological Society 28 : 480 ~ 490 [2009]
  • Sediment deposition and transport patterns following a reservoir sediment release
    Wohl, E.E. Water Resour. Res 36 : 319 ~ 333 [2000]
  • Relationship between nitrifier and denitrifier community composition and abundance in predicting nitrous oxide emissions from ephemeral wetland soils
    Ma, W.K. Soil Biol. Biochem 40 : 1114 ~ 1123 [2008]
  • Relationship between N-cycling communities and ecosystem functioning in a 50-year-old fertilization experiment
    Hallin, S. ISME J 3 : 597 ~ 605 [2009]
  • Quantifying hydrologic impacts following dam construction along the Tana River, Kenya
    Maingi, J.K. J. Arid Environ 50 : 53 ~ 79 [2002]
  • Quantification of denitrifying bacteria in soils by nirK gene targeted real-time PCR
    Henry, S. J. Microbiol. Methods 59 : 327 ~ 335 [2004]
  • Process-based ecological river restoration: Visualizing three-dimensional connectivity and dynamic vectors to recover lost linkages
    Kondolf, G.M. Ecol. Soc 11 : 5 ~ [2006]
  • Phylogenetic analysis of nitrite, nitric oxide, and nitrous oxide respiratory enzymes reveal a complex evolutionary history for denitrification
    Jones, C.M. Mol. Biol. Evol 25 : 1955 ~ 1966 [2008]
  • Phases of denitrification following oxygen depletion in soil
    Smith, M.S. Soil Biol. Biochem 11 : 7 ~ [1979]
  • Nitric oxide reductase-targeted real-time PCR quantification of denitrifier populations in soil
    Dandie, C.E. Appl. Environ. Microbiol 73 : 4250 ~ 4258 [2007]
  • Multivariate analysis of ecological data using CANOCO
    Lepš, J. Cambridge University Press [2003]
  • Molecular diversity of denitrifying genes in continental margin sediments within the oxygen-deficient zone off the Pacific coast of Mexico
    Liu, X.D. Appl. Environ. Microbiol 69 : 3549 ~ 3560 [2003]
  • Microbial nitrate processing in shallow groundwater in a riparian forest
    Groffman, P.M. J. Environ. Qual 25 : 1309 ~ 1316 [1996]
  • Microbial metabolic potential for carbon degradation and nutrient (nitrogen and phosphorus) acquisition in an ombrotrophic peatland
    Lin, X. Appl. Environ. Microbiol 80 : 3531 ~ 3540 [2014]
  • Microbial dynamics during stream ecosystem succession: community structure and enzyme activities
  • Microbial community structure and denitrification in a wetland mitigation bank
    Peralta, A.L. Appl. Environ. Microbiol 76 : 4207 ~ 4215 [2010]
  • Microbial community composition and denitrifying enzyme activities in salt marsh sediments
    Cao, Y.P. Appl. Environ. Microbiol 74 : 7585 ~ 7595 [2008]
  • Microbes and microbial technology
    Rastogi, G. Springer : 29 ~ 57 [2011]
  • Methods of soil analysis. Part 2: Chemical and microbiological properties
    Page, A.L. Soil Science Society of America Madison [1982]
  • Metagenomic analysis of a permafrost microbial community reveals a rapid response to thaw
    Mackelprang, R. Nature 480 : 368 ~ 371 [2011]
  • Measures of nutrient processes as indicators of stream ecosystem health
    Udy, J.W. Hydrobiologia 572 : 89 ~ 102 [2006]
  • Mapping field-scale spatial patterns of size and activity of the denitrifier community
    Philippot, L. Environ. Microbiol 11 : 1518 ~ 1526 [2009]
  • Life history implications of rRNA gene copy number in Escherichia coli
    Stevenson, B.S. Appl. Environ. Microbiol 70 : 6670 ~ 6677 [2004]
  • Large-scale controls on potential respiration and denitrification in riverine floodplains
    Welti, N. Ecol. Engineer 42 : 73 ~ 84 [2012]
  • Influence of temperature and soil water content on bacterial, archaeal and denitrifying microbial communities in drained fen grassland soil microcosms
    Stres, B. FE Microbiol. Ecol 66 : 110 ~ 122 [2008]
  • Influence of an upstream dam on riparian zone hydrology and shallow groundwater nitrate dynamics
    Leach, M. Mc [2009]
  • Importance of denitrifiers lacking the genes encoding the nitrous oxide reductase for N2O emissions from soil
    Philippot, L. Glob. Change Biol 17 : 1497 ~ 1504 [2011]
  • Impacts of different N management regimes on nitrifier and denitrifier communities and N cycling in soil microenvironments
    Kong, A.Y. Soil Biol. Biochem 42 : 1523 ~ 1533 [2010]
  • Human alteration of the global nitrogen cycle: Sources and consequences
    Vitousek, P.M. Ecol. Appl 7 : 737 ~ 750 [1997]
  • Have we overemphasized the role of denitrification in aquatic ecosystems? A review of nitrate removal pathways
    Burgin, A. Front. Ecol. Environ 5 : 89 ~ 96 [2007]
  • Geomorphic control of denitrification in large river floodplain soils
    Pinay, G. Biogeochemistry 50 : 163 ~ 182 [2000]
  • Genomic analysis reveals widespread occurrence of new classes of copper nitrite reductases
    Ellis, M.J. J. Biol. Inorg. Chem 12 : 1119 ~ 1127 [2007]
  • Functional ecomorphology: Feedbacks between form and function in fluvial landscape ecosystems
    Fisher, S.G. Geomorphology 89 : 84 ~ 96 [2007]
  • Fragmentation and flow regulation of the world’s large river systems
    Nilsson, C. Science 308 : 405 ~ 408 [2005]
  • Finding the missing link between diversity and activity using denitrifying bacteria as a model functional community
    Philippot, L. Curr. Opin. Microbiol 8 : 234 ~ 239 [2005]
  • Factors regulating denitrification in a soil under pasture
    Luo, J. Soil Biol. Biochem 31 : 913 ~ 927 [1999]
  • Establishment and expansion of willows after dam operation in a monsoonal sandy stream
    Cho, H.J. 9th International Symposium on Ecohydraulics [2012]
  • Enzyme activities in constructed wetlands : implication for water quality amelioration
    Kang, H.J. Hydrobiologia 368 : 231 ~ 235 [1998]
  • Environmental controls on denitrifying communities and denitrification rates: Insights from molecular methods
    Wallenstein, M.D. Ecol. Appl 16 : 2143 ~ 2152 [2006]
  • Effects of soil chemical characteristics and water regime on denitrification genes (nirS, nirK, and nosZ) abundances in a created riverine wetland complex
    Ligi, T. Ecol. Engineer. [2013]
  • Effects of dam-induced flow regime change on downstream river morphology and vegetation cover in the Hwang River, Korea
    Choi, S.U.K. River Res. Applications 21 : 315 ~ 325 [2005]
  • Ecology of denitrifying prokaryotes in agricultural soil
    Philippot, L. Adv. Agronomy 96 : 249 ~ 305 [2007]
  • Ecological and evolutionary factors underlying global and local assembly of denitrifier communities
    Jones, C.M. ISME J 4 : 633 ~ 641 [2010]
  • Do dams and levees impact nitrogen cycling? Simulating the effects of flood alterations on floodplain denitrification
    Gergel, S.E. Glob. Change Biol 11 : 1352 ~ 1367 [2005]
  • Distribution of typical denitrifying functional genes and diversity of the nirS-encoding bacterial community related to environmental characteristics of river sediments
    Huang, S. Biogeosciences Discussions 8 : 5251 ~ 5280 [2011]
  • Disrupting biogeochemical cycles -Consequences of damming
    Friedl, G. Aquatic Sci 64 : 55 ~ 65 [2002]
  • Different responses of denitrification rates and denitrifying bacterial communities to hydrologic pulsing in created wetlands
    Song, K. Soil Biol. Biochem 42 : 1721 ~ 1727 [2010]
  • Development of PCR primer systems for amplification of nitrite reductase genes (nirK and nirS) to detect denitrifying bacteria in environmental samples
    Braker, G. Appl. Environ. Microbiol 64 : 3769 ~ 3775 [1998]
  • Denitrification in Gram-positive bacteria: an underexplored trait
    Verbaendert, I. Biochem. Soc. Trans 39 : 254 ~ 258 [2011]
  • Denitrification and organic carbon availability in two aquifers
    Starr, R.C. Ground Water 31 : 934 ~ 947 [1993]
  • Denitrification across landscapes and waterscapes: a synthesis
    Seitzinger, S. Ecol. Appl 16 : 2064 ~ 2090 [2006]
  • Cross-stream comparison of substrate-specific denitrification potential
    Findlay, S. Biogeochemistry 104 : 381 ~ 392 [2011]
  • Crop residue influence on denitrification, N2O emissions and denitrifier community abundance in soil
    Miller, M.N. Soil Biol. Biochem 40 : 2553 ~ 2562 [2008]
  • Correlations between in situ denitrification activity and nir-gene abundances in pristine and impacted prairie streams
    Graham, D.W. Environ. Pollut. 158 : 3225 ~ 3229 [2010]
  • Comparative metagenomic, phylogenetic and physiological analyses of soil microbial communities across nitrogen gradients
    Fierer, N. ISME J 6 : 1007 ~ 1017 [2012]
  • Community composition and functioning of denitrifying bacteria from adjacent meadow and forest soils
    Rich, J.J. Appl. Environ. Microbiol 69 : 5974 ~ 5982 [2003]
  • Climate change 2007: The physical science basis
    IPCC [2007]
  • Changes in benthic denitrification, nitrate ammonification, and anammox process rates and nitrate and nitrite reductase gene abundances along an estuarine nutrient gradient (the Colne estuary, United Kingdom)
    Dong, L.F. Appl. Environ. Microbiol 75 : 3171 ~ 3179 [2009]
  • Changes in bacterial denitrifier community abundance over time in an agricultural field and their relationship with denitrification activity
    Dandie, C.E. Appl. Environ. Microbiol 74 : 5997 ~ 6005 [2008]
  • Cell biology and molecular basis of denitrification
    Zumft, W.G. Microbiol. Mol. Biol. Rev 61 : 533 ~ 616 [1997]
  • Biogeochemical hot spots and hot moments at the interface of terrestrial and aquatic ecosystems
    McClain, M.E. Ecosyste 6 : 301 ~ 312 [2003]
  • Benthic metabolism and denitrification in a river reach: a comparison between vegetated and bare sediments
    Pinardi, M. J. Limnol 68 : 133 ~ 145 [2009]
  • Application of a hierarchical framework for assessing environmental impacts of dam operation: changes in streamflow, bed mobility and recruitment of riparian trees in a western North American river
    Burke, M. J. Environ. Manage 90 : S224 ~ S236 [2009]
  • Anthropogenic nitrogen sources and relationships to riverine nitrogen export in the northeastern USA
    Boyer, E. Biogeochemistry 57 : 137 ~ 169 [2002]
  • Advantages and limitations of quantitative PCR (q‐PCR)‐based approaches in microbial ecology
    Smith, C.J. FE Microbiol. Ecol 67 : 6 ~ 20 [2009]
  • Abundance, diversity and functional gene expression of denitrifier communities in adjacent riparian and agricultural zones
    Dandie, C.E. FE Microbiol. Ecol 77 : 69 ~ 82 [2011]
  • Abundance of narG, nirS, nirK, and nosZ genes of denitrifying bacteria during primary successions of a glacier foreland
    Kandeler, E. Appl. Environ. Microbiol 72 : 5957 ~ 5962 [2006]
  • A seasonal change in the distribution of a stream-dwelling stonefly nymph reflects oxygen supply and water flow
    Genkai-Kato, M. Ecol. Res 20 : 223 ~ 226 [2005]
  • A peculiar river:Geology, geomorphology, and hydrology of the Deschutes river
    Grant, G.E. Oregon : 203 ~ 219 [2003]
  • A geomorphic perspective on nutrient retention following dam removal
    Stanley, E.H. BioScience 52 : 693 ~ 701 [2002]