Fate of airborne nitrogen in heathland ecosystems: a 15N tracer study

被引:26
|
作者
Friedrich, Uta [1 ]
Falk, Kirsten [1 ]
Bahlmann, Enno [2 ]
Marquardt, Thorben [1 ]
Meyer, Hartmut [1 ]
Niemeyer, Thomas [1 ]
Schemmel, Siegfried [1 ]
von Oheimb, Goddert [1 ]
Haerdtle, Wener [1 ]
机构
[1] Univ Luneburg, Inst Ecol & Environm Chem, D-21335 Luneburg, Germany
[2] IfBM Univ Hamburg, Inst Biogeochem & Marine Chem, D-20146 Hamburg, Germany
关键词
Calluna vulgaris; dry lowland heath; N cycling; N deposition; N retention; N saturation; ATMOSPHERIC NITROGEN; INCREASED DEPOSITION; NUTRIENT LIMITATION; ABOVEGROUND BIOMASS; ORGANIC-MATTER; FOREST; SOIL; N-15; CALLUNA; MINERALIZATION;
D O I
10.1111/j.1365-2486.2010.02322.x
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
In the present study, we analyze the fate of airborne nitrogen in heathland ecosystems (NW Germany) by means of a 15N tracer experiment. Our objective was to quantify N sequestration and N allocation patterns in an ecosystem that is naturally limited by N, but that has been exposed to airborne N inputs exceeding critical loads for more than 3 decades. We hypothesized that the system has a tendency towards N saturation, which should be indicated by low N sequestration and high N leaching. We analyzed 15N partitioning (aboveground biomass and soil horizons) and investigated 15N leaching over 2 years following a 15N tracer pulse addition. 15N tracer recovery was 90% and 76% in the first and second year, respectively. Contrary to our expectations, more than 99% of the tracer recovered was sequestered in the biomass and soil, while leaching losses were < 0.05% after 2 years. Mosses were the most important short-term sink for 15N (64% recovery in the first year), followed by the organic layer. In the second year, the moss layer developed from a sink to a source (23% losses), and soil compartments were the most important sink (gains of 11.2% in the second year). Low 15N recovery in the current year's shoots of Calluna vulgaris (< 2%) indicated minor availability of 15N tracer sequestered in the organic layer. N partitioning patterns showed that the investigated heaths still have conservative N cycling, even after several decades of high N loads. This finding is mainly attributable to the high immobilization capacities for N of podzols in soil compartments. In the long term, the podzol A- and B-horizons in particular may immobilize considerable amounts of incoming N. Since N compounds of these horizons are not readily bio-available, podzols have a high potential to withdraw airborne N from the system's N cycle.
引用
收藏
页码:1549 / 1559
页数:11
相关论文
共 50 条
  • [21] Effects of ryegrass amendments on immobilization and mineralization of nitrogen in a plastic shed soil: A 15N tracer study
    Quan, Zhi
    Huang, Bin
    Lu, Caiyan
    Su, Chenxia
    Song, Linlin
    Zhao, Xinghan
    Shi, Yi
    Chen, Xin
    Fang, Yunting
    CATENA, 2021, 203
  • [22] Full 15N tracer accounting to revisit major assumptions of 15N isotope pool dilution approaches for gross nitrogen mineralization
    Braun, Judith
    Mooshammer, Maria
    Wanek, Wolfgang
    Prommer, Judith
    Walker, Tom W. N.
    Rutting, Tobias
    Richter, Andreas
    SOIL BIOLOGY & BIOCHEMISTRY, 2018, 117 : 16 - 26
  • [23] Innovative 15N microplot research techniques to study nitrogen use efficiency under different ecosystems
    Follett, RF
    COMMUNICATIONS IN SOIL SCIENCE AND PLANT ANALYSIS, 2001, 32 (7-8) : 951 - 979
  • [24] Heathland vegetation as a bio-monitor for nitrogen deposition and source attribution using δ 15N values
    Skinner, RA
    Ineson, P
    Jones, H
    Sleep, D
    Leith, ID
    Sheppard, LJ
    ATMOSPHERIC ENVIRONMENT, 2006, 40 (03) : 498 - 507
  • [25] The fate of 15N-labelled nitrogen deposition in coniferous forest ecosystems
    Tietema, A
    Emmett, BA
    Gundersen, P
    Kjonaas, OJ
    Koopmans, CJ
    FOREST ECOLOGY AND MANAGEMENT, 1998, 101 (1-3) : 19 - 27
  • [26] Fate and transformations of 15N labelled nitrogen applied in spring to citrus trees
    Martínez, JM
    Bañuls, J
    Quiñones, A
    Martín, B
    Primo-Millo, E
    Legaz, F
    JOURNAL OF HORTICULTURAL SCIENCE & BIOTECHNOLOGY, 2002, 77 (03): : 361 - 367
  • [27] Study of organic N transformation in red soils by 15N tracer method
    Ye Qing Fu Zhang Qin Zheng Xi Hai Fu Wu Gang and He Zhen Li Institute of Nuclear Agricultural Sciences Zhejiang AgriculturalUniversity Hangzhou Uniformly N labelled ryegrass was used to investigate NH pro
    Nuclear Science and Techniques, 1997, (02)
  • [28] Nutrient accumulation and fate of nitrogen (15N) in young bearing orange trees
    Boaretto, Rodrigo Marcelli
    Mattos, Dirceu, Jr.
    Trivelin, Paulo Cesar Ocheuze
    Muraoka, Takashi
    Boaretto, Antonio Enedi
    REVISTA BRASILEIRA DE FRUTICULTURA, 2007, 29 (03) : 600 - 605
  • [29] Application of 15N to the study of hepatic nitrogen metabolism
    Brosnan, JT
    Brosnan, ME
    Nissim, I
    ADVANCES IN ENZYME REGULATION, VOL 42, PROCEEDINGS, 2002, 42 : 305 - 315
  • [30] Tracking the fate of nitrate through pulse-flow wetlands: A mesocosm scale 15N enrichment tracer study
    Messer, Tiffany L.
    Burchell, Michael R.
    Bohlke, J. K.
    Tobias, Craig R.
    ECOLOGICAL ENGINEERING, 2017, 106 : 597 - 608