Nitrogen fixation contribution to nitrogen cycling during cyanobacterial blooms in Utah Lake

被引:7
|
作者
Li, Hanyan [1 ]
Miller, Theron [2 ]
Lu, Jingrang [3 ]
Goel, Ramesh [1 ]
机构
[1] Univ Utah, Dept Civil & Environm Engn, 110 S Cent Campus Dr, Salt Lake City, UT 84112 USA
[2] Wasatch Front Water Qual Council, Salt Lake City, UT USA
[3] US EPA, Off Res & Dev, Cincinnati, OH 45220 USA
关键词
Freshwater; Brackish water; Cyanobacterial bloom; N fixation; Nitrogenase gene; Denitrification; FRESH-WATER; DENITRIFYING BACTERIA; MARINE ECOSYSTEMS; DENITRIFICATION; ABUNDANCE; PHOSPHORUS; GENES; NIRK; N-2; EUTROPHICATION;
D O I
10.1016/j.chemosphere.2022.134784
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Nitrogen (N) cycling is an essential process in lake systems and N-fixation is an important component of it. Recent studies have also found that nitrate reduction through heterotrophic denitrification in lake systems did not prevent harmful cyanobacterial blooms, but instead, may have favored the dominance of N-2-fixing cyanobacteria. The overall objective of this study was to estimate nitrogen fixation rates and the expressions of associated nitrogenase (nif gene) functional gene at several sites at different occasions in freshwater Utah Lake. For comparison purposes, one time sampling was also conducted in the brackish Farmington Bay of Great Salt Lake (GSL). The microbial ecology of the top 20-cm of surface water was investigated to assess the dominant cyanobacterial communities and N-related metabolisms. Our study revealed that Dolichospermum and Nodularia were potential N-2-fixers for Utah Lake and brackish Farmington Bay, respectively. The in situ N-2-fixation rates were 0-0.73 nmol N hr(-1)L(-1) for Utah Lake and 0-0.85 nmol N hr(-1)L(-1) for Farmington Bay, and these rates positively correlated with the abundance and expressions of the nif gene. In addition, nitrate reduction was measured in sediment (0.002-0.094 mg N VSS-1 hr(-1)). Significantly positive correlations were found among amoA, nirS and nirK abundance (R = 0.56-0.87, p < 0.05, Spearman) in both lakes. An exception was the lower nirK gene abundance detected at one site in Farmington Bay where high ammonium retentions were also detected. Based on a mass balance approach, we concluded that the amount of inorganic N loss through denitrification still exceeded the N input by N-2-fixation, much like in most lakes, rivers, and marine ecosystems. This & nbsp;indicates that N cycling processes such as denitrification mediated by heterotrophic bacteria contributes to N-export from the lakes resulting in N limitations.
引用
收藏
页数:13
相关论文
共 50 条
  • [1] Nitrogen removal by denitrification during cyanobacterial bloom in Lake Taihu
    Chen, Xiaofeng
    Yang, Liuyan
    Xiao, Lin
    Miao, Aijun
    Xi, Beidou
    JOURNAL OF FRESHWATER ECOLOGY, 2012, 27 (02) : 243 - 258
  • [2] Pelagic cyanobacterial nitrogen fixation in lakes and ponds of different latitudinal zones
    Li, Yan
    Yu, Ye-Xin
    Ma, Shuo-Nan
    Qiao, Rui-Ting
    Cui, Yong-De
    Wang, Hai-Jun
    Wang, Hong-Zhu
    AQUATIC SCIENCES, 2022, 84 (03)
  • [3] Nitrogen Fixation Occurring in Sediments: Contribution to the Nitrogen Budget of Lake Taihu, China
    Yao, Xiaolong
    Zhang, Lu
    Zhang, Yunlin
    Zhang, Bo
    Zhao, Zhonghua
    Zhang, Yibo
    Li, Min
    Jiang, Xingyu
    JOURNAL OF GEOPHYSICAL RESEARCH-BIOGEOSCIENCES, 2018, 123 (09) : 2661 - 2674
  • [4] Reduced forms of nitrogen are a driver of non-nitrogen-fixing harmful cyanobacterial blooms and toxicity in Lake Erie
    Newell, Silvia E.
    Davis, Timothy W.
    Johengen, Thomas H.
    Gossiaux, Duane
    Burtner, Ashley
    Palladino, Danna
    McCarthy, Mark J.
    HARMFUL ALGAE, 2019, 81 : 86 - 93
  • [5] Accounting for Nitrogen Fixation in Simple Models of Lake Nitrogen Loading/Export
    Ruan, Xiaodan
    Schellenger, Frank
    Hellweger, Ferdi L.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2014, 48 (10) : 5667 - 5673
  • [6] Microbial nitrogen cycling in Microcystis colonies and its contribution to nitrogen removal in eutrophic Lake Taihu, China
    Xie, Ke
    Wang, Yujing
    Xue, Jingya
    Wang, Hongwei
    Lai, Anxing
    Mao, Zhengdu
    Li, Huabing
    Lauridsen, Torben L.
    Li, Biao
    Wu, Qinglong L.
    SCIENCE OF THE TOTAL ENVIRONMENT, 2024, 954
  • [7] Cyanobacterial Blooms Enhance Nitrogen Removal in Lakes through Carbon/Nitrogen Coupling Metabolism
    Huang, Yingying
    Chen, Xuechu
    Ostrovsky, Ilia
    ACS ES&T WATER, 2023, 3 (10): : 3244 - 3252
  • [8] Benthic nitrogen regeneration, fixation, and denitrification in a temperate, eutrophic lake: Effects on the nitrogen budget and cyanobacteria blooms
    McCarthy, Mark J.
    Gardner, Wayne S.
    Lehmann, Moritz F.
    Guindon, Alexandre
    Bird, David F.
    LIMNOLOGY AND OCEANOGRAPHY, 2016, 61 (04) : 1406 - 1423
  • [9] Metagenomics Analysis to Investigate the Microbial Communities and Their Functional Profile During Cyanobacterial Blooms in Lake Varese
    Sanseverino, Isabella
    Pretto, Patrizia
    Antonio, Diana Conduto
    Lahm, Armin
    Facca, Chiara
    Loos, Robert
    Skejo, Helle
    Beghi, Andrea
    Pandolfi, Franca
    Genoni, Pietro
    Lettieri, Teresa
    MICROBIAL ECOLOGY, 2022, 83 (04) : 850 - 868
  • [10] Cyanobacteria as biological drivers of lake nitrogen and phosphorus cycling
    Cottingham, Kathryn L.
    Ewing, Holly A.
    Greer, Meredith L.
    Carey, Cayelan C.
    Weathers, Kathleen C.
    ECOSPHERE, 2015, 6 (01):