Carbon, nitrogen and temperature controls on microbial activity in soils from an Antarctic dry valley

被引:101
|
作者
Hopkins, D. W. [1 ]
Sparrow, A. D.
Elberling, B.
Gregorich, E. G.
Novis, P. M.
Greenfield, L. G.
Tilston, E. L.
机构
[1] Univ Stirling, Sch Biol & Environm Sci, Stirling FK9 4LA, Scotland
[2] Univ Nevada, Dept Nat Resources & Environm Sci, Reno, NV 89512 USA
[3] Univ Copenhagen, Inst Geog, DK-1350 Copenhagen K, Denmark
[4] Agr Canada, Cent Expt Farm, Ottawa, ON K1A 0C6, Canada
[5] Landcare Res, Lincoln 8152, New Zealand
[6] Univ Canterbury, Sch Biol Sci, Christchurch, New Zealand
来源
SOIL BIOLOGY & BIOCHEMISTRY | 2006年 / 38卷 / 10期
基金
英国自然环境研究理事会; 美国国家科学基金会;
关键词
C-13 nuclear magnetic resonance; activation energy; carbon mineralization; decomposition; glucose; glycine; lacustrine detritus; microbial mat; ammonium; polar desert; Q(10);
D O I
10.1016/j.soilbio.2006.01.012
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
The Antarctic dry valleys are characterized by extremely low temperatures, dry conditions and lack of conspicuous terrestrial autotrophs, but the soils contain organic C, emit CO2 and support communities of heterotrophic soil organisms. We have examined the role of modern lacustrine detritus as a driver of soil respiration in the Garwood Valley, Antarctica, by characterizing the composition and mineralization of both lacustrine detritus and soil organic matter, and relating these properties to soil respiration and the abiotic controls on soil respiration. Laboratory mineralization of organic C in soils from different, geomorphically defined, landscape elements at 10 degrees C was comparable with decomposition of lacustrine detritus (mean residence times between 115 and 345 d for the detritus and 410 and 1670d for soil organic matter). The chemical composition of the detritus (C-to-N ratio = 9:1-12:1 and low alkyl-C-to-O-alkyl-C ratio in solid-state C-13 nuclear magnetic resonance spectroscopy) indicated that it was a labile, high quality resource for micro-organisms. Initial (0-6 d at 10 degrees C) respiratory responses to glucose, glycine and NH4Cl addition were positive in all the soils tested, indicating both C and N limitations on soil respiration. However, over the longer term (up to 48d at 10 degrees C) differential responses occurred. Glucose addition led to net C mineralization in most of the soils. In the lake shore soils, which contained accumulated lacustrine organic matter, glucose led to substantial priming of the decomposition of the indigenous organic matter, indicating a C or energetic limitation to mineralization in that soil. By contrast, over 48 d, glycine addition led to no net C mineralization in all soils except stream edge and lake shore soils, indicating either substantial assimilation of the added C (and N), or no detectable utilization of the glycine. The Q(10) values for basal respiration over the -0.5-20 degrees C temperature range were between 1.4 and 3.3 for the different soils, increasing to between 3.4 and 6.9 for glucose-induced respiration, and showed a temperature dependence with Q(10) increasing with declining temperature. Taken together, our results strongly support contemporaneous lacustrine detritus, blown from the lake shore, as an important driver of soil respiration in the Antarctic dry valley soils. (c) 2006 Elsevier Ltd. All rights reserved.
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页码:3130 / 3140
页数:11
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