The decomposition of Lolium perenne in soils exposed to elevated CO2:: comparisons of mass loss of litter with soil respiration and soil microbial biomass

被引:45
作者
Sowerby, A
Blum, H
Gray, TRG
Ball, AS
机构
[1] Univ Essex, Dept Biol Sci, John Tabor Labs, Colchester CO4 3SQ, Essex, England
[2] Swiss Fed Inst Sci, Dept Plant Sci, Eschikon Res Stn, CH-8315 Lindau, Switzerland
关键词
decomposition; elevated CO2; microbial biomass; soil; soil respiration; Lolium perenne;
D O I
10.1016/S0038-0717(00)00045-6
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Two key questions regarding the effects of elevated atmospheric CO2 on soil microbial biomass are, (a) will future levels of elevated CO2 affect the amount of microbial biomass in soil? and (b) how will any observed changes impact on C-flux from soils? These questions were addressed by examining soil microbial biomass, and in situ estimations of soil respiration in grassland soils exposed to free air carbon dioxide enrichment (60 Pa). Corresponding measurements of plant litter mass loss were taken using litter bags, ensuring that ambient litter was decomposed in ambient soil, and elevated CO2 grown litter was decomposed in soils exposed to elevated CO2. Significantly greater levels of microbial biomass (p < 0.05, paired t-test) were detected in soils exposed to elevated CO2 (1174.1 compared to 878.9 mu g N g(-1) dry soil for ambient CO2 exposed soils). This corresponded with a significant increase (p < 0.005, paired t-test) in in situ soil respiration from the elevated CO2 acclimatised soils (28.7 compared to 20.4 mu mol CO2 m(2) h(-1) from soils exposed to ambient CO2). However, when soil respiration was calculated per unit of microbial biomass, no differences in activity per unit biomass were detected (approx. 0.02 mu mol CO2 m(2) h(-1) unit biomass(-1)), suggesting that increased soil microbial biomass, rather than increased activity was responsible for the observed differences. The mass loss of litter was greater in the elevated CO2 acclimatised soils (p < 0.05, ANOVA), even though the initial nutrient ratios of the litter were not significantly different. (C) 2000 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:1359 / 1366
页数:8
相关论文
共 35 条
[1]  
Ball AS, 1997, GLOBAL CHANGE BIOL, V3, P29
[2]  
BALL AS, 2000, IN PRESS SOIL BIOL B
[3]   EFFECTS OF ENHANCED ATMOSPHERIC CO2 AND NUTRIENT SUPPLY ON THE QUALITY AND SUBSEQUENT DECOMPOSITION OF FINE ROOTS OF BETULA-PENDULA ROTH AND PICEA-SITCHENSIS (BONG) CARR [J].
COTRUFO, ME ;
INESON, P .
PLANT AND SOIL, 1995, 170 (02) :267-277
[4]   Elevated CO2 reduces field decomposition rates of Betula pendula (Roth) leaf litter [J].
Cotrufo, MF ;
Ineson, P .
OECOLOGIA, 1996, 106 (04) :525-530
[5]   Elevated CO2 reduces the nitrogen concentration of plant tissues [J].
Cotrufo, MF ;
Ineson, P ;
Scott, A .
GLOBAL CHANGE BIOLOGY, 1998, 4 (01) :43-54
[6]   DECOMPOSITION OF TREE LEAF LITTERS GROWN UNDER ELEVATED CO2 - EFFECT OF LITTER QUALITY [J].
COTRUFO, MF ;
INESON, P ;
ROWLAND, AP .
PLANT AND SOIL, 1994, 163 (01) :121-130
[7]   Elevated CO2 affects field decomposition rate and palatability of tree leaf litter:: Importance of changes in substrate quality [J].
Cotrufo, MF ;
Briones, MJI ;
Ineson, P .
SOIL BIOLOGY & BIOCHEMISTRY, 1998, 30 (12) :1565-1571
[8]   EVIDENCE OF A FEEDBACK MECHANISM LIMITING PLANT-RESPONSE TO ELEVATED CARBON-DIOXIDE [J].
DIAZ, S ;
GRIME, JP ;
HARRIS, J ;
MCPHERSON, E .
NATURE, 1993, 364 (6438) :616-617
[9]   Impacts of elevated atmospheric CO2 on litter quality, litter decomposability and nitrogen turnover rate of two oak species in a Mediterranean forest ecosystem [J].
Gahrooee, FR .
GLOBAL CHANGE BIOLOGY, 1998, 4 (06) :667-677
[10]   RESOURCE CAPTURE, BIOMASS ALLOCATION AND GROWTH IN HERBACEOUS PLANTS [J].
GARNIER, E .
TRENDS IN ECOLOGY & EVOLUTION, 1991, 6 (04) :126-131