Plant and microbial N acquisition under elevated atmospheric CO2 in two mesocosm experiments with annual grasses

被引:36
作者
Hu, SJ
Wu, JS
Burkey, KO
Firestone, MK
机构
[1] N Carolina State Univ, Dept Plant Pathol, Raleigh, NC 27695 USA
[2] ARS, USDA, Air Qual Plant Growth & Dev Unit, Raleigh, NC 27603 USA
[3] Univ Calif Berkeley, Dept Environm Sci Policy & Management, Berkeley, CA 94720 USA
关键词
Avena barbata; Avena fatua; elevated CO2; microbial biomass C and N; N-15; availability; N tracer; plant-microbial N partitioning;
D O I
10.1111/j.1365-2486.2005.00905.x
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
The impact of elevated CO2 on terrestrial ecosystem C balance, both in sign or magnitude, is not clear because the resulting alterations in C input, plant nutrient demand and water use efficiency often have contrasting impacts on microbial decomposition processes. One major source of uncertainty stems from the impact of elevated CO2 on N availability to plants and microbes. We examined the effects of atmospheric CO2 enrichment (ambient+370 mumol mol(-1)) on plant and microbial N acquisition in two different mesocosm experiments, using model plant species of annual grasses of Avena barbata and A. fatua, respectively. The A. barbata experiment was conducted in a N-poor sandy loam and the A. fatua experiment was on a N-rich clayey loam. Plant-microbial N partitioning was examined through determining the distribution of a N-15 tracer. In the A. barbata experiment, N-15 tracer was introduced to a field labeling experiment in the previous year so that N-15 predominantly existed in nonextractable soil pools. In the A. fatua experiment, N-15 was introduced in a mineral solution [((NH4)-N-15)(2)SO4 solution] during the growing season of A. fatua. Results of both N budget and N-15 tracer analyses indicated that elevated CO2 increased plant N acquisition from the soil. In the A. barbata experiment, elevated CO2 increased plant biomass N by ca. 10% but there was no corresponding decrease in soil extractable N, suggesting that plants might have obtained N from the nonextractable organic N pool because of enhanced microbial activity. In the A. fatua experiment, however, the CO2-led increase in plant biomass N was statistically equal to the reduction in soil extractable N. Although atmospheric CO2 enrichment enhanced microbial biomass C under A. barbata or microbial activity (respiration) under A. fatua, it had no significant effect on microbial biomass N in either experiment. Elevated CO2 increased the colonization of A. fatua roots by arbuscular mycorrhizal fungi, which coincided with the enhancement of plant competitiveness for soluble soil N. Together, these results suggest that elevated CO2 may tighten N cycling through facilitating plant N acquisition. However, it is unknown to what degree results from these short-term microcosm experiments can be extrapolated to field conditions. Long-term studies in less-disturbed soils are needed to determine whether CO2-enhancement of plant N acquisition can significantly relieve N limitation over plant growth in an elevated CO2 environment.
引用
收藏
页码:213 / 223
页数:11
相关论文
共 53 条
[1]  
[Anonymous], 1991, ECOLOGY MYCORRHIZAE
[2]  
[Anonymous], 2001, Climate Change 2001:Impacts, Adaptation and Vulnerability
[3]   Microbial decomposition at elevated CO2 levels: effect of litter quality [J].
Ball, AS .
GLOBAL CHANGE BIOLOGY, 1997, 3 (04) :379-386
[4]   Root system adjustments:: regulation of plant nutrient uptake and growth responses to elevated CO2 [J].
BassiriRad, H ;
Gutschick, VP ;
Lussenhop, J .
OECOLOGIA, 2001, 126 (03) :305-320
[5]   Alterations of nitrogen dynamics under elevated carbon dioxide in an intact Mojave Desert ecosystem: evidence from nitrogen-15 natural abundance [J].
Billings, SA ;
Schaeffer, SM ;
Zitzer, S ;
Charlet, T ;
Smith, SD ;
Evans, RD .
OECOLOGIA, 2002, 131 (03) :463-467
[6]   Carbon dioxide enrichment and nitrogen fertilization effects on cotton (Gossypium hirsutum L.) plant residue chemistry and decomposition [J].
Booker, FL ;
Shafer, SR ;
Wei, CM ;
Horton, SJ .
PLANT AND SOIL, 2000, 220 (1-2) :89-98
[7]   ALKALINE PERSULFATE OXIDATION FOR DETERMINING TOTAL NITROGEN IN MICROBIAL BIOMASS EXTRACTS [J].
CABRERA, ML ;
BEARE, MH .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1993, 57 (04) :1007-1012
[8]   Contrasting effects of elevated CO2 on old and new soil carbon pools [J].
Cardon, ZG ;
Hungate, BA ;
Cambardella, CA ;
Chapin, FS ;
Field, CB ;
Holland, EA ;
Mooney, HA .
SOIL BIOLOGY & BIOCHEMISTRY, 2001, 33 (03) :365-373
[9]   EFFECTS OF CO2 AND TEMPERATURE ON GROWTH AND RESOURCE USE OF COOCCURRING C3 AND C4 ANNUALS [J].
COLEMAN, JS ;
BAZZAZ, FA .
ECOLOGY, 1992, 73 (04) :1244-1259
[10]   Elevated CO2 reduces field decomposition rates of Betula pendula (Roth) leaf litter [J].
Cotrufo, MF ;
Ineson, P .
OECOLOGIA, 1996, 106 (04) :525-530