Global environmental impacts of agricultural expansion: The need for sustainable and efficient practices

David Tilman1
1Department of Ecology, Evolution and Behavior, University of Minnesota, 1987 Upper Buford Circle, St. Paul, MN 55108, USA

Tóm tắt

The recent intensification of agriculture, and the prospects of future intensification, will have major detrimental impacts on the nonagricultural terrestrial and aquatic ecosystems of the world. The doubling of agricultural food production during the past 35 years was associated with a 6.87-fold increase in nitrogen fertilization, a 3.48-fold increase in phosphorus fertilization, a 1.68-fold increase in the amount of irrigated cropland, and a 1.1-fold increase in land in cultivation. Based on a simple linear extension of past trends, the anticipated next doubling of global food production would be associated with approximately 3-fold increases in nitrogen and phosphorus fertilization rates, a doubling of the irrigated land area, and an 18% increase in cropland. These projected changes would have dramatic impacts on the diversity, composition, and functioning of the remaining natural ecosystems of the world, and on their ability to provide society with a variety of essential ecosystem services. The largest impacts would be on freshwater and marine ecosystems, which would be greatly eutrophied by high rates of nitrogen and phosphorus release from agricultural fields. Aquatic nutrient eutrophication can lead to loss of biodiversity, outbreaks of nuisance species, shifts in the structure of food chains, and impairment of fisheries. Because of aerial redistribution of various forms of nitrogen, agricultural intensification also would eutrophy many natural terrestrial ecosystems and contribute to atmospheric accumulation of greenhouse gases. These detrimental environmental impacts of agriculture can be minimized only if there is much more efficient use and recycling of nitrogen and phosphorus in agroecosystems.

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Tài liệu tham khảo

faostat (Food and Agriculture Organization of the United Nations, Rome, 1997).

10.1073/pnas.96.11.5960

D Tilman Resource Competition and Community Structure: Monographs in Population Biology (Princeton Univ. Press, Princeton, 1982).

P M Vitousek, J D Aber, R W Howarth, G E Likens, P A Matson, D W Schindler, W H Schlesinger, D Tilman Ecol Appl 7, 737–750 (1997).

W H Schlesinger Biogeochemistry: An Analysis of Global Change (Academic, San Diego, 1991).

10.1007/BF02179827

10.1073/pnas.96.11.6001

10.2307/1939481

10.1086/283633

10.1146/annurev.es.13.110182.002025

Smith V. H. Tilman G. D. & Nekola J. C. (1999) Environ. Pollution in press.

10.1098/rstl.1880.0010

J Thurston Ecological Aspects of the Mineral Nutrition of Plants, ed I Rorison (Blackwell Scientific, Oxford), pp. 3–10 (1969).

10.1111/j.1749-6632.1963.tb13389.x

10.2307/2265614

10.1007/BF00047389

10.2307/2937080

10.1890/1051-0761(1998)008[0559:NPOSWW]2.0.CO;2

10.1126/science.271.5250.785

10.1086/283366

G C Daily Nature’s Services: Societal Dependence on Natural Ecosystems (Island, Washington, DC, 1997).

10.1038/387253a0

10.1126/science.277.5325.504

10.1038/24376

10.1126/science.277.5325.494

A W Crosby Ecological Imperialism: The Biological Expansion of Europe 900–1900 (Cambridge Univ. Press, Cambridge, 1986).

S J McNaughton Biodiversity and Ecosystem Function, eds E-D Schulze, H A Mooney (Springer, Berlin), pp. 361–383 (1993).

10.1038/367363a0

10.1038/37348

10.1086/286117

10.1086/286118

Tilman D. (1999) Ecology in press.

10.1038/368734a0

10.1098/rstb.1995.0025

10.2307/3546198

10.1038/379718a0

10.1126/science.277.5330.1300

10.2307/3547058

M J Swift, J M Anderson Biodiversity and Ecosystem Function, eds E-D Schulze, H A Mooney (Springer, Berlin), pp. 15–41 (1993).

10.1007/s004420050180

10.1073/pnas.94.5.1857

10.2136/sssaj1994.03615995005800020040x

Knops J. M. H. & Tilman D. (1999) Ecology in press.