Temperature adaptation of bacterial communities in experimentally warmed forest soils

被引:117
作者
Rousk, Johannes [1 ]
Frey, Serita D. [2 ]
Baath, Erland [1 ]
机构
[1] Lund Univ, Dept Biol, Sect Microbial Ecol, Lund, Sweden
[2] Univ New Hampshire, Dept Nat Resources & Environm, Durham, NH 03824 USA
基金
美国国家科学基金会; 瑞典研究理事会;
关键词
bacterial growth; leucine incorporation; minimum temperature; Q10; soil warming; temperature adaptation; ORGANIC-MATTER DECOMPOSITION; LEUCINE INCORPORATION; MICROBIAL RESPIRATION; THERMAL ADAPTATION; PROTEIN-SYNTHESIS; GROWTH-RATE; SENSITIVITY; ACCLIMATION; ASSEMBLAGES; DEPENDENCE;
D O I
10.1111/j.1365-2486.2012.02764.x
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
A detailed understanding of the influence of temperature on soil microbial activity is critical to predict future atmospheric CO2 concentrations and feedbacks to anthropogenic warming. We investigated soils exposed to 3-4 years of continuous 5 degrees C-warming in a field experiment in a temperate forest. We found that an index for the temperature adaptation of the microbial community, T-min for bacterial growth, increased by 0.19 degrees C per 1 degrees C rise in temperature, showing a community shift towards one adapted to higher temperature with a higher temperature sensitivity (Q(10(5-15 degrees C)) increased by 0.08 units per 1 degrees C). Using continuously measured temperature data from the field experiment we modelled in situ bacterial growth. Assuming that warming did not affect resource availability, bacterial growth was modelled to become 60% higher in warmed compared to the control plots, with the effect of temperature adaptation of the community only having a small effect on overall bacterial growth (<5%). However, 3 years of warming decreased bacterial growth, most likely due to substrate depletion because of the initially higher growth in warmed plots. When this was factored in, the result was similar rates of modelled in situ bacterial growth in warmed and control plots after 3 years, despite the temperature difference. We conclude that although temperature adaptation for bacterial growth to higher temperatures was detectable, its influence on annual bacterial growth was minor, and overshadowed by the direct temperature effect on growth rates.
引用
收藏
页码:3252 / 3258
页数:7
相关论文
共 41 条
[1]   CLIMATE CHANGE Microbial mitigation [J].
Agren, Goran I. .
NATURE GEOSCIENCE, 2010, 3 (05) :303-304
[2]   Soil-carbon response to warming dependent on microbial physiology [J].
Allison, Steven D. ;
Wallenstein, Matthew D. ;
Bradford, Mark A. .
NATURE GEOSCIENCE, 2010, 3 (05) :336-340
[3]   MEASUREMENT OF PROTEIN-SYNTHESIS BY SOIL BACTERIAL ASSEMBLAGES WITH THE LEUCINE INCORPORATION TECHNIQUE [J].
BAATH, E .
BIOLOGY AND FERTILITY OF SOILS, 1994, 17 (02) :147-153
[4]   Adaptation of a rapid and economical microcentrifugation method to measure thymidine and leucine incorporation by soil bacteria [J].
Bååth, E ;
Pettersson, M ;
Söderberg, KH .
SOIL BIOLOGY & BIOCHEMISTRY, 2001, 33 (11) :1571-1574
[5]   Investigating biological control over soil carbon temperature sensitivity [J].
Balser, Teri C. ;
Wixon, Devin L. .
GLOBAL CHANGE BIOLOGY, 2009, 15 (12) :2935-2949
[6]   Adaptation of soil microbial communities to temperature: comparison of fungi and bacteria in a laboratory experiment [J].
Barcenas-Moreno, Gema ;
Gomez-Brandon, Maria ;
Rousk, Johannes ;
Baath, Erland .
GLOBAL CHANGE BIOLOGY, 2009, 15 (12) :2950-2957
[7]   Thermal adaptation of soil microbial respiration to elevated temperature [J].
Bradford, Mark A. ;
Davies, Christian A. ;
Frey, Serita D. ;
Maddox, Thomas R. ;
Melillo, Jerry M. ;
Mohan, Jacqueline E. ;
Reynolds, James F. ;
Treseder, Kathleen K. ;
Wallenstein, Matthew D. .
ECOLOGY LETTERS, 2008, 11 (12) :1316-1327
[8]   Thermal adaptation of heterotrophic soil respiration in laboratory microcosms [J].
Bradford, Mark A. ;
Watts, Brian W. ;
Davies, Christian A. .
GLOBAL CHANGE BIOLOGY, 2010, 16 (05) :1576-1588
[9]  
Christensen JH, 2007, AR4 CLIMATE CHANGE 2007: THE PHYSICAL SCIENCE BASIS, P847
[10]   Experimental warming shows that decomposition temperature sensitivity increases with soil organic matter recalcitrance [J].
Conant, Richard T. ;
Steinweg, J. Megan ;
Haddix, Michelle L. ;
Paul, Eldor A. ;
Plante, Alain F. ;
Six, Johan .
ECOLOGY, 2008, 89 (09) :2384-2391