Molybdenum limitation of asymbiotic nitrogen fixation in tropical forest soils

被引:0
作者
Barron A.R. [1 ]
Wurzburger N. [1 ]
Bellenger J.P. [2 ]
Wright S.J. [3 ]
Kraepiel A.M.L. [4 ]
Hedin L.O. [1 ]
机构
[1] Department of Ecology and Evolutionary Biology, Princeton University, Guyot Hall, Princeton
[2] Department of Geosciences, Princeton University, Guyot Hall, Princeton
[3] Smithsonian Tropical Research Institute, Balboa
[4] Department of Chemistry, Princeton University, Guyot Hall, Princeton
基金
美国安德鲁·梅隆基金会; 美国国家科学基金会;
关键词
D O I
10.1038/ngeo366
中图分类号
学科分类号
摘要
Nitrogen fixation, the biological conversion of di-nitrogen to plant-available ammonium, is the primary natural input of nitrogen to ecosystems, and influences plant growth and carbon exchange at local to global scales. The role of this process in tropical forests is of particular concern, as these ecosystems harbour abundant nitrogen-fixing organisms and represent one third of terrestrial primary production. Here we show that the micronutrient molybdenum, a cofactor in the nitrogen-fixing enzyme nitrogenase, limits nitrogen fixation by free-living heterotrophic bacteria in soils of lowland Panamanian forests. We measured the fixation response to long-term nutrient manipulations in intact forests, and to short-term manipulations in soil microcosms. Nitrogen fixation increased sharply in treatments of molybdenum alone, in micronutrient treatments that included molybdenum by design and in treatments with commercial phosphorus fertilizer, in which molybdenum was a hidden contaminant. Fixation did not respond to additions of phosphorus that were not contaminated by molybdenum. Our findings show that molybdenum alone can limit asymbiotic nitrogen fixation in tropical forests and raise new questions about the role of molybdenum and phosphorus in the tropical nitrogen cycle. We suggest that molybdenum limitation may be common in highly weathered acidic soils, and may constrain the ability of some forests to acquire new nitrogen in response to CO 2 fertilization. © 2009 Macmillan Publishers Limited. All rights reserved.
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页码:42 / 45
页数:3
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共 30 条
  • [1] Galloway J.N., Et al., Nitrogen cycles: Past, present, and future, Biogeochemistry, 70, pp. 153-226, (2004)
  • [2] Mahaffey C., Michaels A.F., Capone D.G., The conundrum of marine N<sub>2</sub> fixation, Am. J. Sci, 305, pp. 546-595, (2005)
  • [3] Vitousek P.M., Et al., Towards an ecological understanding of biological nitrogen fixation, Biogeochemistry, 57, pp. 1-45, (2002)
  • [4] Cleveland C.C., Et al., Global patterns of terrestrial biological nitrogen (N<sub>2</sub>) fixation in natural ecosystems, Glob. Biogeochem. Cycles, 13, pp. 623-645, (1999)
  • [5] Reich P.B., Hungate B.A., Luo Y.Q., Carbon-nitrogen interactions in terrestrial ecosystems in response to rising atmospheric carbon dioxide, Annu. Rev. Ecol. Evol. Syst, 37, pp. 611-636, (2006)
  • [6] Gutschick V.P., Evolved strategies in nitrogen acquisition by plants, Am. Nat, 118, pp. 607-637, (1981)
  • [7] Field C.B., Behrenfeld M.J., Randerson J.T., Falkowski P., Primary production of the biosphere: Integrating terrestrial and oceanic components, Science, 281, pp. 237-240, (1998)
  • [8] Clark D.A., Detecting tropical forests' responses to global climatic and atmospheric change: Current challenges and away forward, Biotropica, 39, pp. 4-19, (2007)
  • [9] Hungate B.A., Et al., CO<sub>2</sub> elicits long-term decline in nitrogen fixation, Science, 304, pp. 1291-1291, (2004)
  • [10] Wang Y.P., Houlton B.Z., Field C.B., A model of biogeochemical cycles of carbon, nitrogen, and phosphorus including symbiotic nitrogen fixation and phosphatase production, Glob. Biogeochem. Cycles, 21, (2007)