Vegetation-mediated feedback in water, carbon, nitrogen and phosphorus cycles

被引:14
作者
Wassen, Martin J. [1 ]
de Boer, Hugo J. [1 ]
Fleischer, Katrin [1 ]
Rebel, Karin T. [1 ]
Dekker, Stefan C. [1 ]
机构
[1] Univ Utrecht, Copernicus Inst Sustainable Dev, Fac Geosci, NL-3508 TC Utrecht, Netherlands
关键词
Carbon; Nitrogen; Phosphorus; Nutrients; Stomata; Global climate change; Plants; Water; Ecosystem; Feedbacks; Scales; ELEVATED CO2; NUTRIENT LIMITATION; BIOLOGICAL-CONTROL; LEAF CONDUCTANCE; PLANT-GROWTH; CLIMATE; FOREST; DEPOSITION; LAND; PHOSPHATASE;
D O I
10.1007/s10980-012-9843-z
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Since the industrial revolution, industry, traffic and the manufacture and application of nitrogenous fertilizers have increased carbon dioxide emissions and accelerated the nitrogen (N) cycle. The combined effects of a warming climate, CO2 fertilization, land-use change and increased N availability may be responsible for primary productivity increases in many parts of the world. Enhanced productivity may lead to shifts in albedo and transpiration, which feed back to the water cycle through heat fluxes and precipitation. Plants may also respond to elevated CO2 by closing their stomata or by structurally adapting their stomatal density and size, which potentially diminishes transpiration. Intensification of agriculture has also led to an increase in both nitrogenous (N) and phosphorus (P) fertilization. The combined effect of atmospheric N deposition and P fertilization has distorted the balance between N and P availability in many ecosystems. The active role of plants in accessing nutrients from the soil may trigger switches in nutrient availability, triggering shifts in plant productivity and species composition in these ecosystems and therefore also in the carbon (C) cycle. In response to global change, the above plant responses may influence each other positively or negatively and may impact on the elemental cycles of C, N and P and the water cycle. We are only beginning to understand how these four cycles interact, the role of plant processes and vegetation in these interactions, and the net outcome for plant competition, vegetation distribution, landscape development and directions of global change. In this paper we have integrated a number of recent research findings into known relationships that together elucidate interactions between these cycles through vegetation, and could potentially have unexpected effects on landscapes and larger-scale systems (continental, global). These interactions include processes operating at very distinct temporal and spatial scales, in which terrestrial ecosystems and their spatial organization in the landscape are key. We argue that to better understand the effects of changes in land cover and land use on biogeochemical and biogeophysical fluxes, it is necessary to account for feedbacks via vegetation and how these interfere with elemental cycles. Finally, we suggest directions for further research to fill the current knowledge gaps.
引用
收藏
页码:599 / 614
页数:16
相关论文
共 103 条
[61]   A review of nitrogen enrichment effects on three biogenic GHGs: the CO2 sink may be largely offset by stimulated N2O and CH4 emission [J].
Liu, Lingli ;
Greaver, Tara L. .
ECOLOGY LETTERS, 2009, 12 (10) :1103-1117
[62]   A New Conceptual Model of Nitrogen Saturation Based on Experimental Nitrogen Addition to an Oak Forest [J].
Lovett, Gary M. ;
Goodale, Christine L. .
ECOSYSTEMS, 2011, 14 (04) :615-631
[63]  
Luo Y, 2004, BIOSCIENCE, V54, P731, DOI 10.1641/0006-3568(2004)054[0731:PNLOER]2.0.CO
[64]  
2
[65]   Role of nitrogen in carbon mitigation in forest ecosystems [J].
Macdonald, Catriona A. ;
Anderson, Ian C. ;
Bardgett, Richard D. ;
Singh, Brajesh K. .
CURRENT OPINION IN ENVIRONMENTAL SUSTAINABILITY, 2011, 3 (05) :303-310
[66]   Ecosystem carbon storage in arctic tundra reduced by long-term nutrient fertilization [J].
Mack, MC ;
Schuur, EAG ;
Bret-Harte, MS ;
Shaver, GR ;
Chapin, FS .
NATURE, 2004, 431 (7007) :440-443
[67]   Nitrogen inputs accelerate phosphorus cycling rates across a wide variety of terrestrial ecosystems [J].
Marklein, Alison R. ;
Houlton, Benjamin Z. .
NEW PHYTOLOGIST, 2012, 193 (03) :696-704
[68]   Why is plant-growth response to elevated CO2 amplified when water is limiting, but reduced when nitrogen is limiting?: A growth-optimisation hypothesis [J].
McMurtrie, Ross E. ;
Norby, Richard J. ;
Medlyn, Belinda E. ;
Dewar, Roderick C. ;
Pepper, David A. ;
Reich, Peter B. ;
Barton, Craig V. M. .
FUNCTIONAL PLANT BIOLOGY, 2008, 35 (06) :521-534
[69]   Soil warming, carbon-nitrogen interactions, and forest carbon budgets [J].
Melillo, Jerry M. ;
Butler, Sarah ;
Johnson, Jennifer ;
Mohan, Jacqueline ;
Steudler, Paul ;
Lux, Heidi ;
Burrows, Elizabeth ;
Bowles, Francis ;
Smith, Rose ;
Scott, Lindsay ;
Vario, Chelsea ;
Hill, Troy ;
Burton, Andrew ;
Zhou, Yu-Mei ;
Tang, Jim .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2011, 108 (23) :9508-9512
[70]   Regulation of soil phosphatase and chitinase activity by N and P availability [J].
Olander, LP ;
Vitousek, PM .
BIOGEOCHEMISTRY, 2000, 49 (02) :175-190