Increased Nitrogen Loading Facilitates Nitrous Oxide Production through Fungal and Chemodenitrification in Estuarine and Coastal Sediments

被引:27
作者
Li, Xiaofei [1 ,2 ]
Gao, Dengzhou [2 ]
Li, Ye [2 ]
Zheng, Yanling [1 ]
Dong, Hongpo [2 ]
Liang, Xia [2 ]
Liu, Min [1 ]
Hou, Lijun [2 ]
机构
[1] East China Normal Univ, Sch Geog Sci, Key Lab Geog Informat Sci, Minist Educ, Shanghai 200241, Peoples R China
[2] East China Normal Univ, State Key Lab Estuarine & Coastal Res, Yangtze Delta Estuarine Wetland Ecosyst Observat &, Minist Educ & Shanghai, Shanghai 200241, Peoples R China
基金
中国国家自然科学基金;
关键词
nitrate; nitrous oxide; bacterial denitrification; fungal denitrification; estuarine sediment; N2O PRODUCTION; ISOTOPOLOGUE FRACTIONATION; DUAL-ISOTOPE; DENITRIFICATION; REDUCTION; SOIL; PATHWAYS; COMMUNITIES; VALIDATION; OXIDATION;
D O I
10.1021/acs.est.2c06602
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Estuarine and coastal environments are assumed to contribute to nitrous oxide (N2O) emissions under increasing nitrogen loading. However, isotopic and molecular mechanisms underlying N2O production pathways under elevated nitrogen concentration remain poorly understood. Here we used microbial inhibition, isotope mass balance, and molecular approaches to investigate N2O production mechanisms in estuarine and coastal sediments through a series of anoxic incubations. Site preference of the N2O molecule increased due to increasing nitrate concentration, suggesting the changes in N2O production pathways. Enhanced N2O production under high nitrate concentration was not mediated by bacterial denitrification, but instead was mainly regulated by fungal denitrification. Elevated nitrate concentration increased the contribution of fungal denitrification to N2O production by 11-25%, whereas it decreased bacterial N2O production by 16-33%. Chemodenitrification was also enhanced by high nitrate concentration, contributing to 13-28% of N2O production. Elevated nitrate concentration significantly mediated nirK-type denitrifiers structure and abundance, which are the keystone taxa driving N2O production. Collectively, these results suggest that increasing nitrate concentration can shift N2O production pathways from bacterial to fungal and chemodenitrification, which are mainly responsible for the enhanced N2O production and have widespread implications for N2O projections under ongoing nitrogen pollution in estuarine and coastal ecosystems.
引用
收藏
页码:2660 / 2671
页数:12
相关论文
共 60 条
  • [1] Microbial community composition in sediments resists perturbation by nutrient enrichment
    Bowen, Jennifer L.
    Ward, Bess B.
    Morrison, Hilary G.
    Hobbie, John E.
    Valiela, Ivan
    Deegan, Linda A.
    Sogin, Mitchell L.
    [J]. ISME JOURNAL, 2011, 5 (09) : 1540 - 1548
  • [2] Constraining the role of iron in environmental nitrogen transformations: Dual stable isotope systematics of abiotic NO2- reduction by Fe(II) and its production of N2O
    Buchwald, Carolyn
    Grabb, Kalina
    Hansel, Colleen M.
    Wankel, Scott D.
    [J]. GEOCHIMICA ET COSMOCHIMICA ACTA, 2016, 186 : 1 - 12
  • [3] Nitrous oxide emissions from soils: how well do we understand the processes and their controls?
    Butterbach-Bahl, Klaus
    Baggs, Elizabeth M.
    Dannenmann, Michael
    Kiese, Ralf
    Zechmeister-Boltenstern, Sophie
    [J]. PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2013, 368 (1621)
  • [4] QIIME allows analysis of high-throughput community sequencing data
    Caporaso, J. Gregory
    Kuczynski, Justin
    Stombaugh, Jesse
    Bittinger, Kyle
    Bushman, Frederic D.
    Costello, Elizabeth K.
    Fierer, Noah
    Pena, Antonio Gonzalez
    Goodrich, Julia K.
    Gordon, Jeffrey I.
    Huttley, Gavin A.
    Kelley, Scott T.
    Knights, Dan
    Koenig, Jeremy E.
    Ley, Ruth E.
    Lozupone, Catherine A.
    McDonald, Daniel
    Muegge, Brian D.
    Pirrung, Meg
    Reeder, Jens
    Sevinsky, Joel R.
    Tumbaugh, Peter J.
    Walters, William A.
    Widmann, Jeremy
    Yatsunenko, Tanya
    Zaneveld, Jesse
    Knight, Rob
    [J]. NATURE METHODS, 2010, 7 (05) : 335 - 336
  • [5] Human activities and climate variability drive fast-paced change across the world's estuarine-coastal ecosystems
    Cloern, James E.
    Abreu, Paulo C.
    Carstensen, Jacob
    Chauvaud, Laurent
    Elmgren, Ragnar
    Grall, Jacques
    Greening, Holly
    Johansson, John Olov Roger
    Kahru, Mati
    Sherwood, Edward T.
    Xu, Jie
    Yin, Kedong
    [J]. GLOBAL CHANGE BIOLOGY, 2016, 22 (02) : 513 - 529
  • [6] Quantifying nitrous oxide production pathways in wastewater treatment systems using isotope technology - A critical review
    Duan, Haoran
    Ye, Liu
    Erler, Dirk
    Ni, Bing-Jie
    Yuan, Zhiguo
    [J]. WATER RESEARCH, 2017, 122 : 96 - 113
  • [7] Transformation of the nitrogen cycle: Recent trends, questions, and potential solutions
    Galloway, James N.
    Townsend, Alan R.
    Erisman, Jan Willem
    Bekunda, Mateete
    Cai, Zucong
    Freney, John R.
    Martinelli, Luiz A.
    Seitzinger, Sybil P.
    Sutton, Mark A.
    [J]. SCIENCE, 2008, 320 (5878) : 889 - 892
  • [8] A dual nitrite isotopic investigation of chemodenitrification by mineral-associated Fe(II) and its production of nitrous oxide
    Grabb, Kalina C.
    Buchwald, Carolyn
    Hansel, Colleen M.
    Wankel, Scott D.
    [J]. GEOCHIMICA ET COSMOCHIMICA ACTA, 2017, 196 : 388 - 402
  • [9] Abiotic nitrous oxide production from hydroxylamine in soils and their dependence on soil properties
    Heil, Jannis
    Liu, Shurong
    Vereecken, Harry
    Brueggemann, Nicolas
    [J]. SOIL BIOLOGY & BIOCHEMISTRY, 2015, 84 : 107 - 115
  • [10] Quantitative detection of the nosZ gene, encoding nitrous oxide reductase, and comparison of the abundances of 16S rRNA, narG, nirK, and nosZ genes in soils
    Henry, S.
    Bru, D.
    Stres, B.
    Hallet, S.
    Philippot, L.
    [J]. APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2006, 72 (08) : 5181 - 5189