Nitrogen dynamics after two years of elevated CO2in phosphorus limitedEucalyptuswoodland

被引:5
作者
Andresen, Louise C. [1 ]
Carrillo, Yolima [2 ]
Macdonald, Catriona A. [2 ]
Castaneda-Gomez, Laura [2 ]
Bode, Samuel [3 ]
Rutting, Tobias [1 ]
机构
[1] Univ Gothenburg, Dept Earth Sci, Gothenburg, Sweden
[2] Western Sydney Univ, Hawkesbury Inst Environm, Richmond, Australia
[3] Univ Ghent, Dept Green Chem & Technol, Ghent, Belgium
关键词
Gross N mineralization rate; Depolymerization; Free amino acids; Phosphorus limitation; MATURE EUCALYPT WOODLAND; CO2 ENRICHMENT FACE; ATMOSPHERIC CO2; AMINO-ACID; SOIL-NITROGEN; N UPTAKE; AVAILABILITY; CARBON; MINERALIZATION; RESPONSES;
D O I
10.1007/s10533-020-00699-y
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
It is uncertain how the predicted further rise of atmospheric carbon dioxide (CO2) concentration will affect plant nutrient availability in the future through indirect effects on the gross rates of nitrogen (N) mineralization (production of ammonium) and depolymerization (production of free amino acids) in soil. The response of soil nutrient availability to increasing atmospheric CO(2)is particularly important for nutrient poor ecosystems. Within a FACE (Free-Air Carbon dioxide Enrichment) experiment in a native, nutrient poorEucalyptuswoodland (EucFACE) with low soil organic matter (<= 3%), our results suggested there was no shortage of N. Despite this, microbial N use efficiency was high (c. 90%). The free amino acid (FAA) pool had a fast turnover time (4 h) compared to that of ammonium (NH4+) which was 11 h. Both NH4-N and FAA-N were important N pools; however, protein depolymerization rate was three times faster than gross N mineralization rates, indicating that organic N is directly important in the internal ecosystem N cycle. Hence, the depolymerization was the major provider of plant available N, while the gross N mineralization rate was the constraining factor for inorganic N. After two years of elevated CO2, no major effects on the pools and rates of the soil N cycle were found in spring (November) or at the end of summer (March). The limited response of N pools or N transformation rates to elevated CO(2)suggest that N availability was not the limiting factor behind the lack of plant growth response to elevated CO2, previously observed at the site.
引用
收藏
页码:297 / 312
页数:16
相关论文
共 68 条
[1]   Amino acid and N mineralization dynamics in heathland soil after long-term warming and repetitive drought [J].
Andresen, L. C. ;
Bode, S. ;
Tietema, A. ;
Boeckx, P. ;
Rutting, T. .
SOIL, 2015, 1 (01) :341-349
[2]  
Andresen LC, 2016, ADV ECOL RES, P437
[3]   Simultaneous quantification of depolymerization and mineralization rates by a novel 15N tracing model [J].
Andresen, Louise C. ;
Bjorsne, Anna-Karin ;
Bode, Samuel ;
Klemedtsson, Leif ;
Boeckx, Pascal ;
Rutting, Tobias .
SOIL, 2016, 2 (03) :433-442
[4]   Seasonal changes in nitrogen availability, and root and microbial uptake of 15N13C9-phenylalanine and 15N-ammonium in situ at a temperate heath [J].
Andresen, Louise C. ;
Michelsen, Anders ;
Jonasson, Sven ;
Strom, Lena .
APPLIED SOIL ECOLOGY, 2011, 51 :94-101
[5]   Recovery of soil organic matter, organic matter turnover and nitrogen cycling in a post-mining forest rehabilitation chronosequence [J].
Banning, N. C. ;
Grant, C. D. ;
Jones, D. L. ;
Murphy, D. V. .
SOIL BIOLOGY & BIOCHEMISTRY, 2008, 40 (08) :2021-2031
[6]  
Bartholomew W. V, 1954, SOIL SCI SOC AM P, V18, P33, DOI [10.2136/sssaj1954.03615995001800010009x, DOI 10.2136/SSSAJ1954.03615995001800010009X]
[7]  
Bates D., 2017, LME4 LINEAR MIXED EF
[8]   Evidence of a strong coupling between root exudation, C and N availability, and stimulated SOM decomposition caused by rhizosphere priming effects [J].
Bengtson, Per ;
Barker, Jason ;
Grayston, Sue J. .
ECOLOGY AND EVOLUTION, 2012, 2 (08) :1843-1852
[9]   Gross nitrogen transformations in adjacent native and plantation forest's of subtropical Australia [J].
Burton, Joanne ;
Chen, Chengrong ;
Xu, Zhihong ;
Ghadiri, Hossein .
SOIL BIOLOGY & BIOCHEMISTRY, 2007, 39 (02) :426-433
[10]   A plant-microbe interaction framework explaining nutrient effects on primary production [J].
Capek, Petr T. ;
Manzoni, Stefano ;
Kastovska, Eva ;
Wild, Birgit ;
Diakova, Katerina ;
Barta, Jiri ;
Schnecker, Jorg ;
Blasi, Christina ;
Martikainen, Pertti J. ;
Alves, Ricardo Jorge Eloy ;
Guggenberger, Georg ;
Gentsch, Norman ;
Hugelius, Gustaf ;
Palmtag, Juri ;
Mikutta, Robert ;
Shibistova, Olga ;
Urich, Tim ;
Schleper, Christa ;
Richter, Andreas ;
Santruckova, Hana .
NATURE ECOLOGY & EVOLUTION, 2018, 2 (10) :1588-1596