Leaf traits within communities: Context may affect the mapping of traits to function

被引:116
作者
Funk, Jennifer L. [1 ]
Cornwell, William K. [2 ]
机构
[1] Chapman Univ, Sch Earth & Environm Sci, Orange, CA 92866 USA
[2] VU, Fac Earth & Life Sci, Dept Ecol Sci, NL-1081 HV Amsterdam, Netherlands
关键词
carbon capture; community ecology; functional trait; GLOPNET database; leaf economics spectrum; LES; leaf life span; leaf mass per unit area; LMA; leaf-trait variation; photosynthesis; trait-based ecology; PLANT; AREA; MASS; CONSEQUENCES; DETERMINANTS; CONVERGENCE; TOLERANCE; HERBIVORY; LEAVES; HABIT;
D O I
10.1890/12-1602.1
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
The leaf economics spectrum (LES) has revolutionized the way many ecologists think about quantifying plant ecological trade-offs. In particular, the LES has connected a clear functional trade-off (long-lived leaves with slow carbon capture vs. short-lived leaves with fast carbon capture) to a handful of easily measured leaf traits. Building on this work, community ecologists are now able to quickly assess species carbon-capture strategies, which may have implications for community-level patterns such as competition or succession. However, there are a number of steps in this logic that require careful examination, and a potential danger arises when interpreting leaf-trait variation among species within communities where trait relationships are weak. Using data from 22 diverse communities, we show that relationships among three common functional traits (photosynthetic rate, leaf nitrogen concentration per mass, leaf mass per area) are weak in communities with low variation in leaf life span (LLS), especially communities dominated by herbaceous or deciduous woody species. However, globally there are few LLS data sets for communities dominated by herbaceous or deciduous species, and more data are needed to confirm this pattern. The context-dependent nature of trait relationships at the community level suggests that leaf-trait variation within communities, especially those dominated by herbaceous and deciduous woody species, should be interpreted with caution.
引用
收藏
页码:1893 / 1897
页数:5
相关论文
共 24 条
[1]   Functional strategies of chaparral shrubs in relation to seasonal water deficit and disturbance [J].
Ackerly, D .
ECOLOGICAL MONOGRAPHS, 2004, 74 (01) :25-44
[2]  
[Anonymous], 2012, R LANG ENV STAT COMP
[3]   The determinants of leaf turgor loss point and prediction of drought tolerance of species and biomes: a global meta-analysis [J].
Bartlett, Megan K. ;
Scoffoni, Christine ;
Sack, Lawren .
ECOLOGY LETTERS, 2012, 15 (05) :393-405
[4]   Plant functional traits suggest novel ecological strategy for an invasive shrub in an understorey woody plant community [J].
Brym, Zachary T. ;
Lake, Jeffrey K. ;
Allen, David ;
Ostling, Annette .
JOURNAL OF APPLIED ECOLOGY, 2011, 48 (05) :1098-1106
[6]   The evolution of the worldwide leaf economics spectrum [J].
Donovan, Lisa A. ;
Maherali, Hafiz ;
Caruso, Christina M. ;
Huber, Heidrun ;
de Kroon, Hans .
TRENDS IN ECOLOGY & EVOLUTION, 2011, 26 (02) :88-95
[7]   Influence of four major plant traits on average height, leaf-area cover, net primary productivity, and biomass density in single-species forests: a theoretical investigation [J].
Falster, Daniel S. ;
Brannstrom, Ake ;
Dieckmann, Ulf ;
Westoby, Mark .
JOURNAL OF ECOLOGY, 2011, 99 (01) :148-164
[8]   Adaptive significance of evergreen vs. deciduous leaves: Solving the triple paradox [J].
Givnish, TJ .
SILVA FENNICA, 2002, 36 (03) :703-743
[9]   Biogeographic constraints on the world-wide leaf economics spectrum [J].
Heberling, J. Mason ;
Fridley, Jason D. .
GLOBAL ECOLOGY AND BIOGEOGRAPHY, 2012, 21 (12) :1137-1146
[10]   TRY - a global database of plant traits [J].
Kattge, J. ;
Diaz, S. ;
Lavorel, S. ;
Prentice, C. ;
Leadley, P. ;
Boenisch, G. ;
Garnier, E. ;
Westoby, M. ;
Reich, P. B. ;
Wright, I. J. ;
Cornelissen, J. H. C. ;
Violle, C. ;
Harrison, S. P. ;
van Bodegom, P. M. ;
Reichstein, M. ;
Enquist, B. J. ;
Soudzilovskaia, N. A. ;
Ackerly, D. D. ;
Anand, M. ;
Atkin, O. ;
Bahn, M. ;
Baker, T. R. ;
Baldocchi, D. ;
Bekker, R. ;
Blanco, C. C. ;
Blonder, B. ;
Bond, W. J. ;
Bradstock, R. ;
Bunker, D. E. ;
Casanoves, F. ;
Cavender-Bares, J. ;
Chambers, J. Q. ;
Chapin, F. S., III ;
Chave, J. ;
Coomes, D. ;
Cornwell, W. K. ;
Craine, J. M. ;
Dobrin, B. H. ;
Duarte, L. ;
Durka, W. ;
Elser, J. ;
Esser, G. ;
Estiarte, M. ;
Fagan, W. F. ;
Fang, J. ;
Fernandez-Mendez, F. ;
Fidelis, A. ;
Finegan, B. ;
Flores, O. ;
Ford, H. .
GLOBAL CHANGE BIOLOGY, 2011, 17 (09) :2905-2935