Atmospheric CO2 enrichment and nutrient additions to planted soil increase mineralisation of soil organic matter, but do not alter microbial utilisation of plant- and soil C-sources

被引:85
作者
Paterson, Eric [1 ]
Thornton, Barry [1 ]
Midwood, Andrew J. [1 ]
Osborne, Shona M. [1 ]
Sim, Allan [1 ]
Millard, Pete [1 ]
机构
[1] Macaulay Inst, Environm Grp, Aberdeen AB15 8QH, Scotland
关键词
rhizodeposition; soil organic matter; respiration; carbon mineralisation; elevated CO2; PLFA;
D O I
10.1016/j.soilbio.2008.06.005
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Plants link atmospheric and soil carbon pools through CO2 fixation, carbon translocation, respiration and rhizodeposition. Within soil, microbial communities both mediate carbon-sequestration and return to the atmosphere through respiration. The balance of microbial use of plant-derived and soil organic matter (SOM) carbon sources and the influence of plant-derived inputs on microbial activity are key determinants of soil carbon-balance, but are difficult to quantify. In this study we applied continuous C-13-labelling to soil-grown Lolium perenne, imposing atmospheric CO2 concentrations and nutrient additions as experimental treatments. The relative use of plant- and SOM-carbon by microbial communities was quantified by compound-specific C-13-analysis of phospholipid fatty acids (PLFAs). An isotopic mass-balance approach was applied to partition the substrate sources to soil respiration (i.e. plant- and SOM-derived), allowing direct quantification of SOM-mineralisation. Increased CO2 concentration and nutrient amendment each increased plant growth and rhizodeposition, but did not greatly alter microbial substrate use in soil. However, the increased root growth and rhizosphere volume with elevated CO2 and nutrient amendment resulted in increased rates of SOM-mineralisation per experimental unit. As rhizosphere microbial communities utilise both plant- and SOM C-sources, the results demonstrate that plant-induced priming of SOM-mineralisation can be driven by factors increasing plant growth. That the balance of microbial C-use was not affected on a specific basis may suggest that the treatments did not affect soil C-balance in this study. (C) 2008 Elsevier Ltd. All rights reserved.
引用
收藏
页码:2434 / 2440
页数:7
相关论文
共 53 条
[1]   Increased quantity and quality of coarse soil organic matter fraction at elevated CO2 in a grazed grassland are a consequence of enhanced root growth rate and turnover [J].
Allard, V ;
Newton, PCD ;
Lieffering, M ;
Soussana, JF ;
Carran, RA ;
Matthew, C .
PLANT AND SOIL, 2005, 276 (1-2) :49-60
[2]   Maize root biomass and net rhizodeposited carbon: An analysis of the literature [J].
Amos, B. ;
Walters, D. T. .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 2006, 70 (05) :1489-1503
[3]  
BALDOCCHI DD, 2003, GLOBAL CHANGE BIOL, V12, P141
[4]   Microbial decomposition at elevated CO2 levels: effect of litter quality [J].
Ball, AS .
GLOBAL CHANGE BIOLOGY, 1997, 3 (04) :379-386
[5]   Plant species and nitrogen effects on soil biological properties of temperate upland grasslands [J].
Bardgett, RD ;
Mawdsley, JL ;
Edwards, S ;
Hobbs, PJ ;
Rodwell, JS ;
Davies, WJ .
FUNCTIONAL ECOLOGY, 1999, 13 (05) :650-660
[6]   Microbial community utilization of added carbon substrates in response to long-term carbon input manipulation [J].
Brant, Justin B. ;
Sulzman, Elizabeth W. ;
Myrold, David D. .
SOIL BIOLOGY & BIOCHEMISTRY, 2006, 38 (08) :2219-2232
[7]   Dynamics of labile and recalcitrant soil carbon pools in a sorghum free-air CO2 enrichment (FACE) agroecosystem [J].
Cheng, L. ;
Leavitt, S. W. ;
Kimball, B. A. ;
Pinter, P. J., Jr. ;
Ottmane, M. J. ;
Matthias, A. ;
Wall, G. W. ;
Brooks, T. ;
Williams, D. G. ;
Thompson, T. L. .
SOIL BIOLOGY & BIOCHEMISTRY, 2007, 39 (09) :2250-2263
[8]   Partitioning sources of soil-respired CO2 and their seasonal variation using a unique radiocarbon tracer [J].
Cisneros-Dozal, LM ;
Trumbore, S ;
Hanson, PJ .
GLOBAL CHANGE BIOLOGY, 2006, 12 (02) :194-204
[9]   UPTAKE OF NITRATE BY LOLIUM-PERENNE FROM FLOWING NUTRIENT SOLUTION .2. EFFECT OF LIGHT, DEFOLIATION, AND RELATIONSHIP TO CO2 FLUX [J].
CLEMENT, CR ;
HOPPER, MJ ;
JONES, LHP ;
LEAFE, EL .
JOURNAL OF EXPERIMENTAL BOTANY, 1978, 29 (112) :1173-1183
[10]   Microbial functional diversity can be influenced by the addition simple organic substrates to soil [J].
Degens, BP .
SOIL BIOLOGY & BIOCHEMISTRY, 1998, 30 (14) :1981-1988