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Functional traits analyses: Scaling-up from species to community level

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References

  • Ackerly DD, Knight CA, Weiss SB, Barton K, Starnemer KP (2002) Leaf size, specific leaf area and microhabitat distribution of chaparral woody plants: contrasting patterns in species level and community analysis. Oecologia 130:449–457

    Article  Google Scholar 

  • Castro-Díez P, Villar-Salvador P, Pérez-Rontomé C, Maestro-Martínez M, Montserrat-Martí G (1997) Leaf morphology and leaf chemical composition in three Quercus (Fagaceae) species along a rainfall gradient in NE Spain. Trees 11:127–134

    Google Scholar 

  • Cingolani AM, Posse G, Collantes MB (2005) Plant functional traits, herbivore selectivity and response to sheep grazing in Patagonian steppe grasslands. J Appl Ecol 42(1):50–59

    Article  Google Scholar 

  • Cornelissen JHC, Castro-Díez P, Hunt R (1996) Seedling growth, allocation and leaf attributres in a wide range of woody plant species. J Ecol 84:755–765

    Article  Google Scholar 

  • Cornelissen JHC, Pérez-Harguindeguy N, Díaz S, Grime JP, Marzano B, Cabido M, Vendramini F, Cerabolini B (1999) Leaf structure and defense control litter decomposition rate across species and life forms in regional floras on two continents. New Phytol 143:191–200

    Article  Google Scholar 

  • Cornelissen JHC, Quested HM, Van Logtestijn RSP, Pérez-Harguindeguy N, Gwynn-Jones D, Díaz S, Callaghan RV, Press MC, Aerts R (2006) Foliar pH as a new plant trait: can it explain variation in foliar chemistry and carbon cycling processes among subartic plant species and types? Oecologia 147:315–326

    Article  PubMed  CAS  Google Scholar 

  • Craine JM, Towne EG (2010) High leaf tissue density grassland species consistently more abundant across topographic and disturbance contrasts in a North American tallgrass prairie. Plant Soil 337(1–2):193–203

    Article  CAS  Google Scholar 

  • Chapin FS, Autum K, Puignaire F (1993) Evolution of suites of traits in response to environmental stress. Am Nat 142:S78–S92

    Article  Google Scholar 

  • Diaz S, Lavorel S, de Bello F, Quetier F, Grigulis K, Robson M (2007) Incorporating plant functional diversity effects in ecosystem service assessments. PNAS 104(52):20684–20689

    Article  PubMed  CAS  Google Scholar 

  • Domínguez MT, Aponte C, Pérez-Ramos IM, García LV, Villar R, Marañón T (2012) Relationships between leaf morphological traits, nutrien concentrations and isotopic signatures for Mediterranean woody plant species and communities. Plant Soil (this issue)

  • Fonseca CR, Overton JM, Collins B, Westoby M (2000) Shifts in trait-combinations along rainfall and phosphorus gradients. J Ecol 88:964–977

    Article  Google Scholar 

  • Garnier E, Cortez J, Billes G, Navas ML, Roumet C, Debussche M, Laurent G, Blanchard A, Aubry D, Bellmann A, Neill C, Toussaint JP (2004) Plant functional markers capture ecosystem properties during secondary succession. Ecology 85(9):2630–2637

    Article  Google Scholar 

  • Gartner TB, Cardon ZG (2004) Decomposition dynamics in mixed-species leaf litter. Oikos 104(2):230–246

    Article  Google Scholar 

  • Grime JP (1998) Benefits of plant diversity to ecosystems: immediate, filter and founder effects. J Ecol 86(6):902–910

    Article  Google Scholar 

  • Grime JP, Hodgson JG, Hunt R (1988) Comparative plant ecology. A functional approach to common British species. Unwin Hyman, London

    Google Scholar 

  • Herms DA, Mattson WJ (1992) The dilemma of plants: to grow or defend. Q Rev Biol 67(3):283–335

    Article  Google Scholar 

  • Hodgson JG, Montserrat-Martí G, Charles M, Jones G, Wilson P, Shipley B, Sharafi M, Cerabolini B, Cornelissen JHC, Brand SR, Bogard A, Castro-Díez P, Guerrero-Campo J, Palmer C, Pérez-Rontomé C, Carter G, Hynd A, Romo-Díez A, de Torres EL, Royo Pla F (2011) Is leaf dry matter content a better predictor of soil fertility than specific leaf area? Ann Bot 7:1337–1345. doi:10.1093/aob/mcr225

    Article  Google Scholar 

  • Lambers H, Poorter H (1992) Inherent variations in growth rate between higher plants: a search for physiological causes and ecological consecuences. Adv Ecol Res 23:187–261

    Article  CAS  Google Scholar 

  • Lavorel S, Garnier E (2002) Predicting changes in community composition and ecosystem functioning from plant traits: revisiting the Holy Grail. Funct Ecol 16:545–556

    Article  Google Scholar 

  • Lockwood JL, Simberloff D, McKinney ML, Von Holle B (2001) How many, and which, plants will invade natural areas? Biol Invasions 3(1):1–8

    Article  Google Scholar 

  • Poole DK, Miller PC (1981) The distribution of plant water stress and vegetation characteristics in Southern California Chaparral. Am Midl Nat 105(1):32–43

    Article  Google Scholar 

  • Reich PB, Ellsworth DS, Walters MB, Vose JM, Gresham C, Volin JC, Bowman WD (1999) Generalities of lef trait relationships: a test across six biomes. Ecology 80(6):1955–1969

    Article  Google Scholar 

  • Richardson DM, Pyšek P, Rejmánek M, Barbour MG, Panetta FD, West CJ (2000) Naturalization and invasion of alien plants: concepts and definitions. Divers Distrib 6:93–107

    Article  Google Scholar 

  • Vile D, Shipley B, Garnier E (2006) Ecosystem productivity can be predicted from potential relative growth rate and species abundance. Ecol Lett 9(9):1061–1067

    Article  PubMed  Google Scholar 

  • Villar-Salvador P, Castro-Díez P, Pérez-Rontomé C, Montserrat-Martí G (1997) Stem xylem features in three Quercus (Fagaceae) species along a climatic gradient in NE Spain. Trees 12:90–96

    Google Scholar 

  • Violle C, Navas ML, Vile D, Kazakou E, Fortunel C, Hummel I, Garnier E (2007) Let the concept of trait be functional! Oikos 116(5):882–892

    Article  Google Scholar 

  • Westoby M, Falster DS, Moles AT, Vesk PA, Wright IJ (2002) Plant Ecological Strategies: some leading dimensions of variation between species. Annu Rev Ecol Syst 33:125–159

    Article  Google Scholar 

  • Wilson PJ, Thompson K, Hodgson JG (1999) Specific leaf area and leaf dry matter content as alternative predictors of plant strategies. New Phytol 143(1):155–162

    Article  Google Scholar 

  • Williamson M, Fitter A (1996) The characters of successful invaders. Biol Conserv 78:163–170

    Article  Google Scholar 

  • Witkowski ETF, Lamont BB (1991) Leaf specific mass confounds leaf density and thickness. Oecologia 88:486–493

    Google Scholar 

  • Wright IJ, Reich PB, Westoby M, Ackerly DD, Baruch Z, Bongers F, Cavender-Bares J, Chapin T, Cornelissen JHC, Diemer M, Flexas J, Garnier E, Groom PK, Gulias J, Hikosaka K, Lamont BB, Lee T, Lee W, Lusk C, Midgley JJ (2004) The worldwide leaf economics spectrum. Nature 428(22):821–827

    Article  PubMed  CAS  Google Scholar 

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Acknowledgments

I want to thank Prof. Hans Lambers for his invitation to write this commentary; Dr. A. Alonso and Dr. M.T. Domínguez for their comments to improve the ms; during the production of this paper my research was supported by grants CGL2010-16388/BOS, POII10-0179-4700 and the REMEDINAL network S2009/AMB-1783.

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Correspondence to Pilar Castro-Díez.

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Responsible Editor: Hans Lambers.

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Castro-Díez, P. Functional traits analyses: Scaling-up from species to community level. Plant Soil 357, 9–12 (2012). https://doi.org/10.1007/s11104-012-1185-8

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