Plant community structure and nitrogen inputs modulate the climate signal on leaf traits
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N. Viovy | J. Kattge | M. Bahn | S. Lavorel | P. Choler | C. Violle | P. D. Ruffray | P. Bodegom | E. Garnier | C. Jolivet | F. Munoz | J. Ordoñez | Pierre Denelle | Jessy Loranger | Bernard Amiaud | H. Brisse | J. Olivier | S. Gachet | S. Lemauviel-Lavenant | B. Borgy | Guilhem Debarros | S. Diquélou | A. Mikolajczak | S. Lemauviel‐Lavenant | P. Ruffray | Benjamin Borgy
[1] N. Viovy,et al. Sensitivity of community-level trait-environment relationships to data representativeness: a test for functional biogeography , 2017 .
[2] Guirui Yu,et al. Latitudinal variation of leaf morphological traits from species to communities along a forest transect in eastern China , 2016, Journal of Geographical Sciences.
[3] S. Richardson,et al. Soil–climate interactions explain variation in foliar, stem, root and reproductive traits across temperate forests , 2016 .
[4] M. Uriarte,et al. Do community-weighted mean functional traits reflect optimal strategies? , 2016, Proceedings of the Royal Society B: Biological Sciences.
[5] Eric Garnier,et al. Plant Functional Diversity: Organism traits, community structure, and ecosystem properties , 2016 .
[6] Bill Shipley,et al. Reinforcing loose foundation stones in trait-based plant ecology , 2016, Oecologia.
[7] Christopher Baraloto,et al. A global meta-analysis of the relative extent of intraspecific trait variation in plant communities. , 2015, Ecology letters.
[8] Eric Garnier,et al. Vegetation ecology meets ecosystem science: Permanent grasslands as a functional biogeography case study. , 2015, The Science of the total environment.
[9] Nathan J B Kraft,et al. Shifts in trait means and variances in North American tree assemblages: species richness patterns are loosely related to the functional space , 2015 .
[10] P. Carrère,et al. Plant trait–digestibility relationships across management and climate gradients in permanent grasslands , 2014 .
[11] Jens Kattge,et al. The emergence and promise of functional biogeography , 2014, Proceedings of the National Academy of Sciences.
[12] Nadejda A. Soudzilovskaia,et al. Which is a better predictor of plant traits: temperature or precipitation? , 2014 .
[13] P. Reich. The world‐wide ‘fast–slow’ plant economics spectrum: a traits manifesto , 2014 .
[14] S. Rambal,et al. Combined effects of climate, resource availability, and plant traits on biomass produced in a Mediterranean rangeland. , 2014, Ecology.
[15] N. Swenson,et al. Convergent effects of elevation on functional leaf traits within and among species , 2014 .
[16] Eric Garnier,et al. Are trait‐based species rankings consistent across data sets and spatial scales? , 2014 .
[17] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[18] David A. Wardle,et al. Contrasting effects of plant inter‐ and intraspecific variation on community‐level trait measures along an environmental gradient , 2013 .
[19] P. Reich,et al. Mechanisms underlying global temperature-related patterns in leaf longevity , 2013 .
[20] Ian J. Wright,et al. Impacts of trait variation through observed trait–climate relationships on performance of an Earth system model: a conceptual analysis , 2012 .
[21] Eric Garnier,et al. Community assembly along a soil depth gradient: contrasting patterns of plant trait convergence and divergence in a Mediterranean rangeland , 2012 .
[22] P. Reich,et al. Correlations among leaf traits provide a significant constraint on the estimate of global gross primary production , 2012 .
[23] Nathan J B Kraft,et al. The biogeography and filtering of woody plant functional diversity in North and South America , 2012 .
[24] Cyrille Violle,et al. The return of the variance: intraspecific variability in community ecology. , 2012, Trends in ecology & evolution.
[25] Peter B. Reich,et al. Global quantification of contrasting leaf life span strategies for deciduous and evergreen species in response to environmental conditions , 2012 .
[26] B Shipley,et al. Is leaf dry matter content a better predictor of soil fertility than specific leaf area? , 2011, Annals of botany.
[27] F. Bello,et al. Community trait response to environment: disentangling species turnover vs intraspecific trait variability effects , 2011 .
[28] S. Higgins,et al. TRY – a global database of plant traits , 2011, Global Change Biology.
[29] Sandra Díaz,et al. Global patterns of leaf mechanical properties. , 2011, Ecology letters.
[30] Sandra Lavorel,et al. Using plant functional traits to understand the landscape distribution of multiple ecosystem services , 2011 .
[31] R. Pakeman,et al. Leaf dry matter content as a predictor of grassland litter decomposition: a test of the ‘mass ratio hypothesis’ , 2011, Plant and Soil.
[32] Brody Sandel,et al. Contrasting trait responses in plant communities to experimental and geographic variation in precipitation. , 2010, The New phytologist.
[33] Carolyn Hull Sieg,et al. A multi‐trait test of the leaf‐height‐seed plant strategy scheme with 133 species from a pine forest flora , 2010 .
[34] Wilfried Thuiller,et al. Intraspecific functional variability: extent, structure and sources of variation , 2010 .
[35] Sandy P. Harrison,et al. Ecophysiological and bioclimatic foundations for a global plant functional classification , 2010 .
[36] N. Wrage,et al. e-FLORA-sys, a website tool to evaluate the agronomical and environmental value of grasslands. , 2010 .
[37] Peter M van Bodegom,et al. Plant Strategies in Relation to Resource Supply in Mesic to Wet Environments: Does Theory Mirror Nature? , 2009, The American Naturalist.
[38] Aaron Christ,et al. Mixed Effects Models and Extensions in Ecology with R , 2009 .
[39] Josep Peñuelas,et al. Global patterns of foliar nitrogen isotopes and their relationships with climate, mycorrhizal fungi, foliar nutrient concentrations, and nitrogen availability. , 2009, The New phytologist.
[40] L. Poorter,et al. Causes and consequences of variation in leaf mass per area (LMA): a meta-analysis. , 2009, The New phytologist.
[41] W. Knorr,et al. Quantifying photosynthetic capacity and its relationship to leaf nitrogen content for global‐scale terrestrial biosphere models , 2009 .
[42] P. Reich,et al. A global study of relationships between leaf traits, climate and soil measures of nutrient fertility , 2009 .
[43] Eric Garnier,et al. Leaf traits capture the effects of land use changes and climate on litter decomposability of grasslands across Europe. , 2009, Ecology.
[44] S. Lavorel,et al. Relative climatic, edaphic and management controls of plant functional trait signatures , 2009 .
[45] C. Huyghe. Evolution des prairies et cultures fourragères et de leurs modalités culturales et d'utilisation en France au cours des cinquante dernières années , 2009 .
[46] O. Duval,et al. Prediction of soil water retention properties after stratification by combining texture, bulk density and the type of horizon , 2008 .
[47] Martin Hermy,et al. The LEDA Traitbase: a database of life‐history traits of the Northwest European flora , 2008 .
[48] Christian Piedallu,et al. Efficient assessment of topographic solar radiation to improve plant distribution models , 2008 .
[49] Sandra Díaz,et al. Plant species traits are the predominant control on litter decomposition rates within biomes worldwide. , 2008, Ecology letters.
[50] J. O H A N N E,et al. Scaling environmental change through the community-level: a trait-based response-and-effect framework for plants , 2008 .
[51] D. Renison,et al. Filtering processes in the assembly of plant communities: Are species presence and abundance driven by the same traits? , 2007 .
[52] Frédérique Louault,et al. Leaf traits affect the above-ground productivity and quality of pasture grasses , 2007 .
[53] Eric Garnier,et al. Assessing the effects of land-use change on plant traits, communities and ecosystem functioning in grasslands: a standardized methodology and lessons from an application to 11 European sites. , 2007, Annals of botany.
[54] R. Pakeman,et al. Sampling plant functional traits: What proportion of the species need to be measured? , 2007 .
[55] L. 't Mannetje,et al. Grasslands of the world , 2006 .
[56] P. Reich,et al. Fundamental trade-offs generating the worldwide leaf economics spectrum. , 2006, Ecology.
[57] Eric Garnier,et al. Co-variations in litter decomposition, leaf traits and plant growth in species from a Mediterranean old-field succession , 2006 .
[58] E. Garnier,et al. A structural equation model to integrate changes in functional strategies during old-field succession. , 2006, Ecology.
[59] P. Reich,et al. Irradiance, temperature and rainfall influence leaf dark respiration in woody plants: evidence from comparisons across 20 sites. , 2006, The New phytologist.
[60] Dali Guo,et al. Leaf nitrogen and phosphorus stoichiometry across 753 terrestrial plant species in China. , 2005, The New phytologist.
[61] William G. Lee,et al. Modulation of leaf economic traits and trait relationships by climate , 2005 .
[62] Rodney X. Sturdivant,et al. Applied Logistic Regression: Hosmer/Applied Logistic Regression , 2005 .
[63] Joseph M. Craine,et al. ENVIRONMENTAL CONSTRAINTS ON A GLOBAL RELATIONSHIP AMONG LEAF AND ROOT TRAITS OF GRASSES , 2005 .
[64] Ramakrishna R. Nemani,et al. A generalized, bioclimatic index to predict foliar phenology in response to climate , 2004 .
[65] Eric Garnier,et al. PLANT FUNCTIONAL MARKERS CAPTURE ECOSYSTEM PROPERTIES DURING SECONDARY SUCCESSION , 2004 .
[66] J. P. Grime,et al. The plant traits that drive ecosystems: Evidence from three continents , 2004 .
[67] Sean C. Thomas,et al. The worldwide leaf economics spectrum , 2004, Nature.
[68] G. Gebauer,et al. Nitrate, nitrate reduction and organic nitrogen in plants from different ecological and taxonomic groups of Central Europe , 1988, Oecologia.
[69] Terry V. Callaghan,et al. DECOMPOSITION OF SUB‐ARCTIC PLANTS WITH DIFFERING NITROGEN ECONOMIES: A FUNCTIONAL ROLE FOR HEMIPARASITES , 2003 .
[70] M. Maestro,et al. Functional traits of woody plants: correspondence of species rankings between field adults and laboratory-grown seedlings? , 2003 .
[71] S. Lavorel,et al. Predicting changes in community composition and ecosystem functioning from plant traits: revisiting the Holy Grail , 2002 .
[72] Bill Shipley,et al. Dry matter content as a measure of dry matter concentration in plants and their parts , 2002 .
[73] O. Sala,et al. Temperate Grassland and Shrubland Ecosystems , 2001 .
[74] Jacob McC. Overton,et al. Shifts in trait‐combinations along rainfall and phosphorus gradients , 2000 .
[75] F. Chapin,et al. Consequences of changing biodiversity , 2000, Nature.
[76] Mark Westoby,et al. EVOLUTIONARY DIVERGENCES IN LEAF STRUCTURE AND CHEMISTRY, COMPARING RAINFALL AND SOIL NUTRIENT GRADIENTS , 1999 .
[77] Sandra Lavorel,et al. Disturbance response in vegetation – towards a global perspective on functional traits , 1999 .
[78] V. Pyankov,et al. Leaf structure and specific leaf mass: the alpine desert plants of the Eastern Pamirs, Tadjikistan , 1999 .
[79] Hendrik Poorter,et al. A comparison of specific leaf area, chemical composition and leaf construction costs of field plants from 15 habitats differing in productivity , 1999 .
[80] J. P. Grime,et al. Benefits of plant diversity to ecosystems: immediate, filter and founder effects , 1998 .
[81] D. King,et al. A tool for estimating soil water available for plants using the 1:1,000,000 scale soil geographical data base of Europe , 1997 .
[82] J. Cornelissen,et al. An experimental comparison of leaf decomposition rates in a wide range of temperate plant species and types , 1996 .
[83] Bill Shipley,et al. Structured interspecific determinants of specific leaf area in 34 species of herbaceous angiosperms , 1995 .
[84] N. Stephenson. Climatic Control of Vegetation Distribution: The Role of the Water Balance , 1990, The American Naturalist.
[85] A. Dziewulska. The spatial differentiation of grasslands in Europe , 1990 .
[86] D. Hosmer,et al. Applied Logistic Regression , 1991 .
[87] H. Conard. Plant Sociology , 1929, Botanical Gazette.