A model of biogeochemical cycles of carbon, nitrogen, and phosphorus including symbiotic nitrogen fixation and phosphatase production

被引:179
作者
Wang, Y. -P.
Houlton, B. Z.
Field, C. B.
机构
[1] CSIRO Marine & Atmospher Res, Aspendale, Vic 3195, Australia
[2] Carnegie Inst Washington, Dept Global Ecol, Stanford, CA 94305 USA
[3] Stanford Univ, Dept Biol Sci, Stanford, CA 94305 USA
关键词
D O I
10.1029/2006GB002797
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Global climate models have not yet considered the effects of nutrient cycles and limitation when forecasting carbon uptake by the terrestrial biosphere into the future. Using the principle of resource optimization, we here develop a new theory by which C, N, and P cycles interact. Our model is able to replicate the observed responses of net primary production to nutrient additions in N-limited, N- and P-colimited, and P-limited terrestrial environments. Our framework identifies a new pathway by which N-2 fixers can alter P availability: By investing in N-rich, phosphorus liberation enzymes (phosphatases), fixers can greatly accelerate soil P availability and P cycling rates. This interaction is critical for the successful invasion and establishment of N-2 fixers in an N-limited environment. We conclude that our model can be used to examine nutrient limitation broadly, and thus offers promise for coupling the biogeochemical system of C, N, and P to broader climate-system models.
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页数:15
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共 47 条
[1]   Partitioning of P and the activity of root acid phosphatase in white clover (Trifolium repens L.) are modified by increased atmospheric CO2 and P fertilisation [J].
Almeida, JPF ;
Lüscher, A ;
Frehner, M ;
Oberson, A ;
Nösberger, J .
PLANT AND SOIL, 1999, 210 (02) :159-166
[2]   Elevated atmospheric CO2 concentrations increase wheat root phosphatase activity when growth is limited by phosphorus [J].
Barrett, DJ ;
Richardson, AE ;
Gifford, RM .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1998, 25 (01) :87-93
[3]   Global patterns of terrestrial biological nitrogen (N2) fixation in natural ecosystems [J].
Cleveland, CC ;
Townsend, AR ;
Schimel, DS ;
Fisher, H ;
Howarth, RW ;
Hedin, LO ;
Perakis, SS ;
Latty, EF ;
Von Fischer, JC ;
Elseroad, A ;
Wasson, MF .
GLOBAL BIOGEOCHEMICAL CYCLES, 1999, 13 (02) :623-645
[4]   CHANGES IN SOIL-PHOSPHORUS FRACTIONS AND ECOSYSTEM DYNAMICS ACROSS A LONG CHRONOSEQUENCE IN HAWAII [J].
CREWS, TE ;
KITAYAMA, K ;
FOWNES, JH ;
RILEY, RH ;
HERBERT, DA ;
MUELLERDOMBOIS, D ;
VITOUSEK, PM .
ECOLOGY, 1995, 76 (05) :1407-1424
[5]   THE ROLE OF ACID-PHOSPHATASES IN PLANT PHOSPHORUS-METABOLISM [J].
DUFF, SMG ;
SARATH, G ;
PLAXTON, WC .
PHYSIOLOGIA PLANTARUM, 1994, 90 (04) :791-800
[6]   Nitrogen cycles:: past, present, and future [J].
Galloway, JN ;
Dentener, FJ ;
Capone, DG ;
Boyer, EW ;
Howarth, RW ;
Seitzinger, SP ;
Asner, GP ;
Cleveland, CC ;
Green, PA ;
Holland, EA ;
Karl, DM ;
Michaels, AF ;
Porter, JH ;
Townsend, AR ;
Vörösmarty, CJ .
BIOGEOCHEMISTRY, 2004, 70 (02) :153-226
[7]   Limited applicability of the CENTURY model to highly weathered tropical soils [J].
Gijsman, AJ ;
Oberson, A ;
Tiessen, H ;
Friesen, DK .
AGRONOMY JOURNAL, 1996, 88 (06) :894-903
[8]   Acid phosphatase activity in phosphorus-deficient white lupin roots [J].
Gilbert, GA ;
Knight, JD ;
Vance, CP ;
Allan, DL .
PLANT CELL AND ENVIRONMENT, 1999, 22 (07) :801-810
[9]   EVOLVED STRATEGIES IN NITROGEN ACQUISITION BY PLANTS [J].
GUTSCHICK, VP .
AMERICAN NATURALIST, 1981, 118 (05) :607-637
[10]   Nutrient losses over four million years of tropical forest development [J].
Hedin, LO ;
Vitousek, PM ;
Matson, PA .
ECOLOGY, 2003, 84 (09) :2231-2255