A global relationship between the heterotrophic and autotrophic components of soil respiration?

被引:497
作者
Bond-Lamberty, B [1 ]
Wang, CK
Gower, ST
机构
[1] Univ Wisconsin, Dept Forest Ecol & Management, 1630 Linden Dr, Madison, WI 53706 USA
[2] NE Forestry Univ, Ecol Program, Harbin 150040, Peoples R China
关键词
autotrophic respiration; carbon cycling; heterotrophic respiration; Monte Carlo simulation; root respiration; soil CO2 flux;
D O I
10.1111/j.1365-2486.2004.00816.x
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
Soil surface CO2 flux (R-S) is overwhelmingly the product of respiration by roots (autotrophic respiration, R-A) and soil organisms (heterotrophic respiration, R-H). Many studies have attempted to partition R-S into these two components, with highly variable results. This study analyzes published data encompassing 54 forest sites and shows that R-A and R-H are each strongly (R-2>0.8) correlated to annual R-S across a wide range of forest ecosystems. Monte Carlo simulation showed that these correlations were significantly stronger than any correlation introduced as an artefact of measurement method. Biome type, measurement method, mean annual temperature, soil drainage, and leaf habit were not significant. For sites with available data, there was a significant (R-2=0.56) correlation between total detritus input and R-H, while R-A was unrelated to net primary production. We discuss why R-A and R-H might be related to each other on large scales, as both ultimately depend on forest carbon balance and photosynthate supply. Limited data suggest that these or similar relationships have broad applicability in other ecosystem types. Site-specific measurements are always more desirable than the application of inferred broad relationships, but belowground measurements are difficult and expensive, while measuring R-S is straightforward and commonly done. Thus the relationships presented here provide a useful method that can help constrain estimates of terrestrial carbon budgets.
引用
收藏
页码:1756 / 1766
页数:11
相关论文
共 103 条
[1]  
Amthor Jeffrey S., 1994, P501
[2]   Separation of root respiration from total soil respiration using carbon-13 labeling during Free-Air Carbon Dioxide Enrichment (FACE) [J].
Andrews, JA ;
Harrison, KG ;
Matamala, R ;
Schlesinger, WH .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1999, 63 (05) :1429-1435
[3]   Soil CO2 dynamics, acidification, and chemical weathering in a temperate forest with experimental CO2 enrichment [J].
Andrews, JA ;
Schlesinger, WH .
GLOBAL BIOGEOCHEMICAL CYCLES, 2001, 15 (01) :149-162
[4]  
Arneth A, 1998, TREE PHYSIOL, V18, P785
[5]   Tree root and soil heterotrophic respiration as revealed by girdling of boreal Scots pine forest:: extending observations beyond the first year [J].
BhupinderpalSingh ;
Nordgren, A ;
Löfvenius, MO ;
Högberg, MN ;
Mellander, PE ;
Högberg, P .
PLANT CELL AND ENVIRONMENT, 2003, 26 (08) :1287-1296
[6]  
BILLINGS WD, 1978, ECOL STUD, V29, P415
[7]   Annual carbon flux from woody debris for a boreal black spruce fire chronosequence [J].
Bond-Lamberty, B ;
Wang, C ;
Gower, ST .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2002, 108 (D3)
[8]  
BONDLAMBERTY, 2004, IN PRESS TREE PHYSL
[9]   Roots exert a strong influence on the temperature sensitivity of soil respiration [J].
Boone, RD ;
Nadelhoffer, KJ ;
Canary, JD ;
Kaye, JP .
NATURE, 1998, 396 (6711) :570-572
[10]   CONTRIBUTIONS OF ABOVEGROUND LITTER, BELOWGROUND LITTER, AND ROOT RESPIRATION TO TOTAL SOIL RESPIRATION IN A TEMPERATURE MIXED HARDWOOD FOREST [J].
BOWDEN, RD ;
NADELHOFFER, KJ ;
BOONE, RD ;
MELILLO, JM ;
GARRISON, JB .
CANADIAN JOURNAL OF FOREST RESEARCH, 1993, 23 (07) :1402-1407