The response of two Glomus mycorrhizal fungi and a fine endophyte to elevated atmospheric CO2, soil warming and drought

被引:76
作者
Staddon, PL
Gregersen, R
Jakobsen, I
机构
[1] Riso Natl Lab, Plant Res Dept, DK-4000 Roskilde, Denmark
[2] Univ Copenhagen, Dept Microbiol, DK-1353 Copenhagen, Denmark
关键词
climate change; external mycorrhizal hyphae; global environmental change; increased atmospheric CO2; percent root length colonized;
D O I
10.1111/j.1365-2486.2004.00861.x
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
Plantago lanceolata plants were grown under various environmental conditions in association with the mycorrhizal fungi Glomus mosseae, G. caledonium and a fine endophyte either individually or all together. Using a time-course approach, we investigated the effects of elevated atmospheric CO2 (eCO(2)), soil warming and drought and their interactions on root length colonized (RLC) by mycorrhizal fungi and extraradical mycorrhizal hyphal (EMH) production. Plant growth responded as would be expected to the environmental manipulations. There was no plant growth-independent effect of eCO(2) on mycorrhizal colonization; however, EMH production was stimulated by eCO(2), i.e. there was increased partitioning of below-ground carbon to the EMH. Soil warming directly stimulated both percent RLC by the Glomus species and EMH density; soil warming did not affect RLC by the fine endophyte. Drought decreased percent RLC for the fine endophyte, but not for the Glomus species. The presence of one mycorrhizal fungus did not affect the response of another to the environmental variables. There was no evidence of any interactive effects of the environmental variables on RLC, but there were significant environmental interactions on EMH production. In particular, the stimulatory effects of eCO(2) and soil warming on EMH density were not additive. The results are discussed in terms of the soil carbon cycle, highlighting some crucial gaps in our knowledge. If future environmental changes affect mycorrhizal fungal turnover and respiration, then this could have important implications for the terrestrial carbon cycle.
引用
收藏
页码:1909 / 1921
页数:13
相关论文
共 83 条
[31]  
MILLER RM, 1992, MYCORRHIZAS IN ECOSYSTEMS, P171
[32]   Climate-driven increases in global terrestrial net primary production from 1982 to 1999 [J].
Nemani, RR ;
Keeling, CD ;
Hashimoto, H ;
Jolly, WM ;
Piper, SC ;
Tucker, CJ ;
Myneni, RB ;
Running, SW .
SCIENCE, 2003, 300 (5625) :1560-1563
[33]   MULTI-FUNCTIONALITY AND BIODIVERSITY IN ARBUSCULAR MYCORRHIZAS [J].
NEWSHAM, KK ;
FITTER, AH ;
WATKINSON, AR .
TRENDS IN ECOLOGY & EVOLUTION, 1995, 10 (10) :407-411
[34]   Six years of in situ CO2 enrichment evoke changes in soil structure and soil biota of nutrient-poor grassland [J].
Niklaus, PA ;
Alphei, D ;
Ebersberger, D ;
Kampichler, C ;
Kandeler, E ;
Tscherko, D .
GLOBAL CHANGE BIOLOGY, 2003, 9 (04) :585-600
[36]   Acclimation of ecosystem CO2 exchange in the Alaskan Arctic in response to decadal climate warming [J].
Oechel, WC ;
Vourlitis, GL ;
Hastings, SJ ;
Zulueta, RC ;
Hinzman, L ;
Kane, D .
NATURE, 2000, 406 (6799) :978-981
[37]  
Ostle N, 2000, RAPID COMMUN MASS SP, V14, P1345, DOI 10.1002/1097-0231(20000815)14:15<1345::AID-RCM22>3.0.CO
[38]  
2-B
[39]   Changed plant and animal life cycles from 1952 to 2000 in the Mediterranean region [J].
Peñuelas, J ;
Filella, I ;
Comas, P .
GLOBAL CHANGE BIOLOGY, 2002, 8 (06) :531-544
[40]   Responses of tree fine roots to temperature [J].
Pregitzer, KS ;
King, JA ;
Burton, AJ ;
Brown, SE .
NEW PHYTOLOGIST, 2000, 147 (01) :105-115