<data xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance">
<row _id="1"><Ref_abbrev>Atkin_etal_2015</Ref_abbrev><Reference_full>Atkin OK, KJ Bloomfield, PB Reich, MG Tjoelker, GP Asner, D Bonal, G Bönisch, M Bradford, LA Cernusak, EG Cosio, D Creek, KY Crous, T Domingues, JS Dukes, JJG Egerton, JR Evans, GD Farquhar, NM Fyllas, PPG Gauthier, E Gloor, TE Gimeno, K. Griffin, R Guerrieri, MA Heskel, C Huntingford, FY Ishida, J Kattge, H Lambers, MJ Liddell, CH Lusk, RE Martin, TC Maximov, AP Maksimov, Y Mahli, BE Medlyn, PMeir, LM Mercado, N Mirotchnick, D Ng, Ü Niinemets, OS O’Sullivan, OL Philips, L Poorter, P Poot, IC Prentice, N Salinas, LM. Rowland, MG Ryan, S Sitch, Martijn Slot, NG Smith, MH Turnbull , MC VanderWel, F Valladares, EJ Veneklaas, LK Weerasinghe, C Wirth, IJ Wright, K Wythers, J Xiang, S Xiang, and J Zaragoza-Castells (2015) Global variability in leaf respiration among plant functional types in relation to climate and leaf traits. New Phytologist DOI: 10.1111/nph.13253</Reference_full></row>
<row _id="2"><Ref_abbrev>Blonder_etal_2011</Ref_abbrev><Reference_full>Blonder, B., Violle, C., Bentley, L. P. and Enquist, B. J. (2011), Venation networks and the origin of the leaf economics spectrum. Ecology Letters, 14: 91–100. doi:10.1111/j.1461-0248.2010.01554.x</Reference_full></row>
<row _id="3"><Ref_abbrev>Bond_etal_1999</Ref_abbrev><Reference_full>Bond, B.J., Farnsworth, B.T., Coulombe, R.A. &amp; Winner, W.E. (1999) Foliage physiology and biochemistry in response to light gradients in conifers with varying shade tolerance. Oecologia, 120, 183-192.</Reference_full></row>
<row _id="4"><Ref_abbrev>Calfapietra_etal_2005</Ref_abbrev><Reference_full>Calfapietra C, Tulva I, Eensalu E, Perez M, De Angelis P, Scarascia-Mugnozza G, Kull O. 2005. Canopy profiles of photosynthetic parameters under elevated CO2 and N fertilization in a poplar plantation. Environmental Pollution 137:525-535</Reference_full></row>
<row _id="5"><Ref_abbrev>Campetella_etal_2011</Ref_abbrev><Reference_full>Campetella, G; Botta-Dukát, Z; Wellstein, C; Canullo, R; Gatto, S; Chelli, S; Mucina, L; Bartha, S (2011): Patterns of plant trait-environment relationships along a forest succession chronosequence. Agriculture, Ecosystems &amp; Environment, 145(1), 38-48. doi:10.1016/j.agee.2011.06.025</Reference_full></row>
<row _id="6"><Ref_abbrev>Cernusak_Marshall_2001</Ref_abbrev><Reference_full>Cernusak LA, Marshall JD. 2001. Responses of foliar ?13C, gas exchange and leaf morphology to reduced hydraulic conductivity in Pinus monticola branches. Tree Physiology 21: 1215-1222</Reference_full></row>
<row _id="7"><Ref_abbrev>Cornelissen_etal_2003</Ref_abbrev><Reference_full>Cornelissen, J. H. C., B. Cerabolini, P. Castro-Diez, P. Villar-Salvador, G. Montserrat-Marti, J. P. Puyravaud, M. Maestro, M. J. A. Werger, and R. Aerts. 2003. Functional traits of woody plants: correspondence of species rankings between field adults and laboratory-grown seedlings? Journal of Vegetation Science 14:311-322.</Reference_full></row>
<row _id="8"><Ref_abbrev>Fitzjohn_2007_weeds_data_set</Ref_abbrev><Reference_full>Peltzer, D. A., and R. G. Fitzjohn, unpublished data.</Reference_full></row>
<row _id="9"><Ref_abbrev>Forsyth_Waitutu_data_set</Ref_abbrev><Reference_full>Forsyth DM, Richardson SJ, Menchenton K 2005. Leaf chemistry predicts the diet preferences of invasive red deer (Cervus elaphus) in a temperate New Zealand forest. Functional Ecology 19: 495–504.</Reference_full></row>
<row _id="10"><Ref_abbrev>Franz_Josef_moraine_data_set</Ref_abbrev><Reference_full>Richardson SJ, Peltzer DA, Allen RB, McGlone MS, Parfitt RL. 2004. Rapid development of phosphorus limitation in temperate rainforest along the Franz Josef soil chronosequence. Oecologia 139: 267?276.</Reference_full></row>
<row _id="11"><Ref_abbrev>Freschet_etal_2010</Ref_abbrev><Reference_full>Freschet, G. T., J. H. C. Cornelissen, R. S. P. van Logtestijn, and R. Aerts. 2010. Evidence of the ‘plant economics spectrum’ in a subarctic flora. Journal of Ecology 98:362-373.</Reference_full></row>
<row _id="12"><Ref_abbrev>Gravel_beaches_data_set</Ref_abbrev><Reference_full>Richardson, S. J., unpublished data.</Reference_full></row>
<row _id="13"><Ref_abbrev>Kattge_etal_2009</Ref_abbrev><Reference_full>Kattge, J., W. Knorr, T. Raddatz, and C. Wirth. 2009. Quantifying photosynthetic capacity and its relationship to leaf nitrogen content for global-scale terrestrial biosphere models. Global Change Biology 15:976-991.</Reference_full></row>
<row _id="14"><Ref_abbrev>Kichenin_etal_2013</Ref_abbrev><Reference_full>Kichenin et al. 2013. Contrasting effects of plant inter- and intraspecific variation on community-level trait measures along an environmental gradient. Functional Ecology 27:1254-1261. doi: 10.1111/1365-2435.12116</Reference_full></row>
<row _id="15"><Ref_abbrev>Kloeppel_etal_2000</Ref_abbrev><Reference_full>Kloeppel, B.D., Gower, S.T., Vogel, J.G. &amp; Reich, P.B. (2000) Leaf-level resource use for evergreen and deciduous conifers along a resource availability gradient. Functional Ecology, 14(3), 281-292.</Reference_full></row>
<row _id="16"><Ref_abbrev>Laughlin_etal_2011</Ref_abbrev><Reference_full>Laughlin, D.C., P.Z. Fulé, D.W. Huffman, J. Crouse, and E. Laliberte. 2011. Climatic constraints on trait-based forest assembly. Journal of Ecology 99:1489-1499.</Reference_full></row>
<row _id="17"><Ref_abbrev>Lukes_etal_2013</Ref_abbrev><Reference_full>Lukeš, P., Stenberg, P., Rautiainen, M., Mõttus, M., Vanhatalo, K.M. Optical properties of leaves and needles for boreal tree species in Europe (2013) Remote Sensing Letters, 4 (7), pp. 667-676</Reference_full></row>
<row _id="18"><Ref_abbrev>Maire_etal_2015</Ref_abbrev><Reference_full>Maire V, Ian J. Wright, I. Colin Prentice, Niels H. Batjes, Radika Bhaskar, Peter M. van Bodegom, Will K. Cornwell, David Ellsworth, Ülo Niinemets, Alejandro Ordoñez, Peter B. Reich, Louis S. Santiago (2015). Global soil and climate effects on leaf photosynthetic traits and rates. Global Ecology and Biogeography 24(6): 706-717. Maire V, Wright IJ, Prentice IC, Batjes NH, Bhaskar R, van Bodegom PM, Cornwell WK, Ellsworth D, Niinemets Ü, Ordoñez A, Reich PB, Santiago LS (2015) Data from: Global effects of soil and climate on leaf photosynthetic traits and rates. Dryad Digital Repository. http://dx.doi.org/10.5061/dryad.j42m7</Reference_full></row>
<row _id="19"><Ref_abbrev>Mediavilla_Escudero_2003</Ref_abbrev><Reference_full>Mediavilla, S. &amp; Escudero, A. Relative growth rate of leaf biomass and leaf nitrogen content in several mediterranean woody species. Plant Ecology (2003) 168: 321. https://doi.org/10.1023/A:1024496717918</Reference_full></row>
<row _id="20"><Ref_abbrev>Medlyn_etal_1999</Ref_abbrev><Reference_full>Medlyn, B. E., F.-W. Badeck, D. G. G. De Pury, C. V. M. Barton, M. Broadmeadow, R. Ceulemans, P. De Angelis, M. Forstreuter, M. E. Jach, S. Kellomäki, E. Laitat, M. Marek, S. Philippot, A. Rey, J. Strassemeyer, K. Laitinen, R. Liozon, B. Portier, P. Roberntz, K. Wang, and P. G. Jarvis. 1999. Effects of elevated CO2 on photosynthesis in European forest species: a meta-analysis of model parameters. Plant, Cell and Environment 22:1475-1495.</Reference_full></row>
<row _id="21"><Ref_abbrev>Meir_etal_2002</Ref_abbrev><Reference_full>Meir, P., Kruijt, B., Broadmeadow, M., Kull, O., Carswell, F. &amp; Nobre, A. 2002 Acclimation of photosynthetic capacity to irradiance in tree canopies in relation to leaf nitrogen concentration and leaf mass per unit area. Plant, Cell and Environment. 25, 3, p. 343-357 15 p.</Reference_full></row>
<row _id="22"><Ref_abbrev>Merilo_etal_2006</Ref_abbrev><Reference_full>Merilo E, Heinsoo K, Kull O, Soderbergh I, Lundmark T, Koppel A. 2006. Leaf photosynthetic properties in a willow (Salix viminalis and Salix dasyclados) plantation in response to fertilization. European Journal of Forest Research 125: 93–100.</Reference_full></row>
<row _id="23"><Ref_abbrev>Merilo_etal_2009</Ref_abbrev><Reference_full>Merilo, E, I Tulva, O Raim, A Kukit, A Sellin, O Kull. 2009. Changes in needle nitrogen partitioning and photosynthesis during 80 years of tree ontogeny in Picea abies. Trees 23:951-958. DOI 10.1007/s00468-009-0337-9</Reference_full></row>
<row _id="24"><Ref_abbrev>Milla_Reich_2011</Ref_abbrev><Reference_full>Milla R, Reich PB. 2011. Multi-trait interactions, not phylogeny, fine-tune leaf size reduction with increasing altitude. Annals of Botany 107(3): 455–465. https://doi.org/10.1093/aob/mcq261</Reference_full></row>
<row _id="25"><Ref_abbrev>Molesworth_MW_data_set</Ref_abbrev><Reference_full>Peltzer, D. A., unpublished data.</Reference_full></row>
<row _id="26"><Ref_abbrev>Northland_2007_data_set</Ref_abbrev><Reference_full>Mason NWH, Peltzer DP, Richardson SJ, Bellingham PJ, Allen RB. 2010. Stand development moderates effects of ungulate exclusion on foliar traits in the forests of New Zealand. Journal of Ecology 98: 1422–1433.</Reference_full></row>
<row _id="27"><Ref_abbrev>Ordonez_etal_2010</Ref_abbrev><Reference_full>Ordonez, J. C., P. M. van Bodegom, J. P. M. Witte, R. P. Bartholomeus, J. R. van Hal, and R. Aerts. 2010. Plant Strategies in Relation to Resource Supply in Mesic to Wet Environments: Does Theory Mirror Nature? American Naturalist 175:225-239.</Reference_full></row>
<row _id="28"><Ref_abbrev>Palatability_data_set</Ref_abbrev><Reference_full>Mason NWH, Peltzer DP, Richardson SJ, Bellingham PJ, Allen RB. 2010. Stand development moderates effects of ungulate exclusion on foliar traits in the forests of New Zealand. Journal of Ecology 98: 1422–1433.</Reference_full></row>
<row _id="29"><Ref_abbrev>Porte_Loustau_1998</Ref_abbrev><Reference_full>Porte A, Loustau D. 1998. Variability of the photosynthetic characteristics of mature needles within the crown of a 25-year-old Pinus pinaster. Tree Physiology 18: 223–232.</Reference_full></row>
<row _id="30"><Ref_abbrev>Prentice_etal_2011</Ref_abbrev><Reference_full>Prentice, I.C., Meng, T., Wang, H., Harrison, S.P., Ni, J., Wang, G., 2011. Evidence for a universal scaling relationship of leaf CO2 drawdown along a moisture gradient. New Phytologist 190: 169–180</Reference_full></row>
<row _id="31"><Ref_abbrev>Preston_etal_2006</Ref_abbrev><Reference_full>Preston, K. A., W. K. Cornwell, and J. L. DeNoyer. 2006. Wood density and vessel traits as distinct correlates of ecological strategy in 51 California coast range angiosperms. New Phytologist 170:807-818.</Reference_full></row>
<row _id="32"><Ref_abbrev>Proteaceae_Mn_data_set</Ref_abbrev><Reference_full>Bellingham, P. J., unpublished data.</Reference_full></row>
<row _id="33"><Ref_abbrev>Quested_etal_2003</Ref_abbrev><Reference_full>Quested, H. M., J. H. C. Cornelissen, M. C. Press, T. V. Callaghan, R. Aerts, F. Trosien, P. Riemann, D. Gwynn-Jones, A. Kondratchuk, and S. E. Jonasson. 2003. Decomposition of sub-arctic plants with differing nitrogen economies: A functional role for hemiparasites. Ecology 84:3209-3221.</Reference_full></row>
<row _id="34"><Ref_abbrev>Scherer-Lorenzen_etal_2007</Ref_abbrev><Reference_full>Scherer-Lorenzen, M., Schulze, E.-D., Don, A., Schumacher, J. &amp; Weller, E. (2007) Exploring the functional significance of forest diversity: A new long-term experiment with temperate tree species (BIOTREE). Perspectives in Plant Ecology, Evolution and Systematics, 9, 53-70.</Reference_full></row>
<row _id="35"><Ref_abbrev>Small_1972</Ref_abbrev><Reference_full>Small, E. 1972. Ecological significance of four critical elements in plants of raised Spagnum peat bogs. Ecology 53:498–503.</Reference_full></row>
<row _id="36"><Ref_abbrev>Springer_etal_2005</Ref_abbrev><Reference_full>Springer, C.J., DeLucia, E.H., Thomas, R.B. (2005) Relationships between net photosynthesis and foliar nitrogen concentrations in a loblolly pine forest ecosystem grown in elevated atmospheric carbon dioxide. Tree Physiology, 25, 385-394.</Reference_full></row>
<row _id="37"><Ref_abbrev>Tanentzap_Murchison_Mtns_data_set</Ref_abbrev><Reference_full>Tanentzap AJ, Lee WG, Dugdale JS, Patrick BP, Fenner M, Walker S, Coomes DA 2011. Differential responses of vertebrate and invertebrate herbivores to traits of New Zealand subalpine shrubs. Ecology 92(4): 994-999.</Reference_full></row>
<row _id="38"><Ref_abbrev>Turnbull_etal_2007</Ref_abbrev><Reference_full>Turnbull TL, Kelly N, Adams MA, Warren CR. 2007. Within-canopy nitrogen and photosynthetic gradients are unaffected by soil fertility in field-grown Eucalyptus globulus. Tree Physiology 27: 1607-1617</Reference_full></row>
<row _id="39"><Ref_abbrev>Ultramafic_data_set</Ref_abbrev><Reference_full>Freschet GT, Dias ATC, Ackerly DD, Aerts R, van Bodegom PM, Cornwell WK, Dong M, Kurokawa H, Liu G, Onipchenko VG, Ordoñez JC, Peltzer DA, Richardson SJ, Shidakov II, Soudzilovskaia NA, Tao J, Cornelissen JHC. 2011. Global to community scale differences in the prevalence of convergent over divergent leaf trait distributions in plant assemblages. Global Ecology and Biogeography 20: 755–765.</Reference_full></row>
<row _id="40"><Ref_abbrev>Urewera_data_set</Ref_abbrev><Reference_full>Richardson SJ, Allen RB, Doherty EJ. 2008. Shifts in leaf N:P ratio during resorption reflect soil P in temperate rainforest. Functional Ecology 22: 738–745.</Reference_full></row>
<row _id="41"><Ref_abbrev>Vergutz_etal_2012</Ref_abbrev><Reference_full>Vergutz, L., S. Manzoni, A. Porporato, R.F. Novais, and R.B. Jackson. 2012. A Global Database of Carbon and Nutrient Concentrations of Green and Senesced Leaves. Data set. Available on-line [http://daac.ornl.gov] from Oak Ridge National Laboratory Distributed Active Archive Center, Oak Ridge, Tennessee, U.S.A. http://dx.doi.org/10.3334/ORNLDAAC/1106</Reference_full></row>
<row _id="42"><Ref_abbrev>Warren_Adams_2001</Ref_abbrev><Reference_full>Warren, C.R. &amp; Adams, M.A. (2001) Distribution of N, Rubisco and photosynthesis in Pinus pinaster and acclimation to light. Plant, Cell and Environment, 24, 597-609.</Reference_full></row>
<row _id="43"><Ref_abbrev>Warren_etal_2003</Ref_abbrev><Reference_full>Warren, C.R., Livingston, N.J., Turpin, D.H., Grant, N.J., Turpin, D.H., Harrison, D.L. &amp; Black, T.A. (2003) Transfer conductance in second growth Douglas-fir (Pseudotsuga menziesii (Mirb.)Franco). Plant, Cell and Environment, 26(8), 1215-1227.</Reference_full></row>
<row _id="44"><Ref_abbrev>West_Coast_2007_data_set</Ref_abbrev><Reference_full>Mason NWH, Peltzer DP, Richardson SJ, Bellingham PJ, Allen RB. 2010. Stand development moderates effects of ungulate exclusion on foliar traits in the forests of New Zealand. Journal of Ecology 98: 1422–1433.</Reference_full></row>
<row _id="45"><Ref_abbrev>Wilson_etal_2000</Ref_abbrev><Reference_full>WILSON K, D BALDOCCHI, P HANSON (2000) Spatial and seasonal variability of photosynthetic parameters and their relationship to leaf nitrogen in a deciduous forest. Tree Physiology 20, 565–578</Reference_full></row>
<row _id="46"><Ref_abbrev>Wright_etal_2004</Ref_abbrev><Reference_full>Wright, I. J., P. B. Reich, M. Westoby, D. D. Ackerly, Z. Baruch, F. Bongers, J. Cavender-Bares, T. Chapin, J. H. C. Cornelissen, M. Diemer, J. Flexas, E. Garnier, P. K. Groom, J. Gulias, K. Hikosaka, B. B. Lamont, T. Lee, W. Lee, C. Lusk, J. J. Midgley, M. L. Navas, U. Niinemets, J. Oleksyn, N. Osada, H. Poorter, P. Poot, L. Prior, V. I. Pyankov, C. Roumet, S. C. Thomas, M. G. Tjoelker, E. J. Veneklaas, and R. Villar. 2004. The worldwide leaf economics spectrum. Nature 428:821-827.</Reference_full></row>
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