dc.creatorFonseca C.R.
dc.creatorOverton J.McC.
dc.creatorCollins B.
dc.creatorWestoby M.
dc.date2000
dc.date2015-06-30T19:52:12Z
dc.date2015-11-26T14:47:33Z
dc.date2015-06-30T19:52:12Z
dc.date2015-11-26T14:47:33Z
dc.date.accessioned2018-03-28T21:58:04Z
dc.date.available2018-03-28T21:58:04Z
dc.identifier
dc.identifierJournal Of Ecology. , v. 88, n. 6, p. 964 - 977, 2000.
dc.identifier220477
dc.identifier10.1046/j.1365-2745.2000.00506.x
dc.identifierhttp://www.scopus.com/inward/record.url?eid=2-s2.0-0034495789&partnerID=40&md5=c3a3931b2bd4b67a04f4c17889c7dd50
dc.identifierhttp://www.repositorio.unicamp.br/handle/REPOSIP/107409
dc.identifierhttp://repositorio.unicamp.br/jspui/handle/REPOSIP/107409
dc.identifier2-s2.0-0034495789
dc.identifier.urihttp://repositorioslatinoamericanos.uchile.cl/handle/2250/1253333
dc.description1 If different factors inhibiting plant growth, e.g. low rainfall or low soil nutrients, were to select for species that have similar constellations of traits, then the unfavourable factors might usefully be grouped together as 'stress'. 2 We offer a method for assessing this issue. A species mixture at a site is described by a point on a plane with two traits as axes. Change along an environmental gradient is then represented as a trajectory across the trait-plane. Trajectories along different environmental gradients are compared. 3 We measured leaf width, specific leaf area (SLA) and mature canopy height for the 386 perennial species found at 46 sites spread along rainfall and soil total phosphorus gradients in south-eastern Australia. Each trait was lognormally distributed across species within sites, hence the mean of log10(trait) satisfactorily described the species mixture at each site. 4 Combinations of assemblage-mean leaf width with SLA followed similar trajectories as rainfall and soil total P decreased. For these traits in this setting, the method indicated that low rainfall and low soil P favour similar trait-combinations. 5 Mature plant height also decreased along both rainfall and soil P gradients, and thus was positively correlated with leaf width and SLA at the level of assemblage means. The rainfall trajectories involving height behaved differently from the soil P trajectories, especially at rainfalls below c. 400 mm year-1, where assemblage-mean height declined much further than at low soil P. 6 Across all species, traits were only very loosely correlated (r2 from 0.04 to 0.17). For leaf width and SLA, evolutionary divergences were positively correlated, both before and after cross-correlation with divergence in rainfall and soil P Was removed. This latter measures evolutionary divergence correlation within habitat. For height the picture was more complicated. Considering these within-habitat divergence correlations, species that were taller at maturity tended to have lower SLA and leaf width. This pattern is the reverse of the broad geographical correlation of assemblage means, showing that the patterns across assemblages result from species being selectively sifted from the regional flora into sites, not from evolutionary or cross-species correlations. 7 The trait-combination trajectory approach showed some commonalities between low soil nutrient and low rainfall habitats with regard to traits favoured in species occurring there, but also some differences. The approach has potential for clarifying which environmental factors can usefully be grouped together as 'stress', and which trait combinations can usefully be regarded as part of a syndrome favoured by stress.
dc.description88
dc.description6
dc.description964
dc.description977
dc.descriptionAnderson, S.E., Ingram, J.S.I., (1989) Tropical Soil Biology and Fertility: A Handbook of Methods, , C.A.B. International, Aberystwyth, UK
dc.descriptionBeadle, N.C.W., Soil phosphate and the delimitation of plant communities in eastern Australia (1954) Ecology, 35, pp. 370-375
dc.descriptionBeadle, N.C.W., Soil phosphate and its role in molding segments of the Australian flora and vegetation, with special reference to xeromorphy and sclerophylly (1966) Ecology, 47, pp. 992-1007
dc.descriptionBeard, J.S., Ecological control of the vegetation of Southwestern Australia: Moisture versus nutrients (1983) Mediterranean Type Ecosystems: the Role of Nutrients, pp. 66-73. , (eds F.J. Kruger, D.T. Mitchell & J.U.M. Jarvis). Springer-Verlag, Berlin
dc.descriptionBugmann, H., Functional types of trees in temperate and boreal forests: Classification and testing (1996) Journal of Vegetation Science, 7, pp. 359-370
dc.descriptionCain, S.A., De Oliveira Castro, G.M., (1971) Manual of Vegetation Analysis, , Hafner Publishing Company, New York
dc.descriptionChabot, B.F., Hicks, D.J., The ecology of leaf life spans (1982) Annual Review of Ecology and Systematics, 13, pp. 229-559
dc.descriptionChapin III, F.S., Integrated responses of plants to stress (1991) Bioscience, 41, pp. 29-36
dc.descriptionChapin III, F.S., Autumn, K., Pugnaire, F., Evolution of suites of traits in relation to environmental stress (1993) American Naturalist, 139, pp. 1293-1304
dc.descriptionChapin III, F.S., Bret-Harte, M., Syndonia, M., Hobbie, S.E., Zhong, H., Plant functional types as predictors of transient responses of arctic vegetation to global change (1996) Journal of Vegetation Science, 7, pp. 347-358
dc.descriptionChase, M.W., Phylogenetics of seed plants: An analysis of nucleotide sequences from the plastid gene rbcL (1993) Annals of the Missouri Botanical Garden, 80, pp. 528-580
dc.descriptionCowling, R.M., Campbell, B.M., Convergence in vegetation structure in the Mediterranean communities of California, Chile and South Africa (1980) Vegetatio, 43, pp. 191-197
dc.descriptionCrisp, M.D., Doyle, J.J., (1995) Advances in Legume Systematics, , Whitstable Litho, Kent
dc.descriptionCunningham, S.A., Summerhayes, B.A., Westoby, M., Evolutionary divergences in leaf structure and chemistry, comparing rainfall and soil nutrient gradients (1999) Ecological Monographs, 69, pp. 569-588
dc.descriptionDolph, G.E., Dilcher, D.L., Variation in leaf size with respect to climate in the tropics of the Western Hemisphere (1980) Bulletin of the Torrey Botanical Club, 107, pp. 154-162
dc.descriptionFelsenstein, J., Phylogenies and the comparative method (1985) American Naturalist, 125, pp. 1-15
dc.descriptionGivnish, T.J., On the adaptive significance of compound leaves, with particular reference to tropical trees (1978) Tropical Trees as Living Systems, pp. 351-380. , (eds P.B. Tomlinson & M.H. Zimmermann). Cambridge University Press, Cambridge
dc.descriptionGivnish, T.J., On the significance of leaf form (1979) Topics in Plant Population Biology, pp. 375-407. , (eds O.T. Solbrig, S. Jain, G.B. Johnson & P.H. Raven). Columbia University Press, New York
dc.descriptionGivnish, T.J., Leaf and canopy adaptations in tropical forests (1984) Physiological Ecology of Plants of the Wet Tropics, pp. 51-84. , (eds E. Medina, H.A. Mooney & C. Vásquez-Yánes). Dr W. Junk, The Hague
dc.descriptionGivnish, T.J., Optimal stomatal conductance allocation of energy between leaves and roots, and the marginal cost of transpiration (1986) On the Economy of Plant Form and Function, pp. 171-213. , (ed. T.J. Givnish). Cambridge University Press, Cambridge, UK
dc.descriptionGivnish, T.J., Comparative studies of leaf form: Assessing the relative roles of selective pressures and phylogenetic constraints (1987) New Phytologist, 106, pp. 131-160
dc.descriptionGivnish, T.J., Vermeij, G.J., Sizes and shapes of liane leaves (1976) American Naturalist, 110, pp. 743-778
dc.descriptionGrafen, A., The phylogenetic regression (1989) Philosophical Transactions of the Royal Society of London B, 326, pp. 119-157
dc.descriptionGrafen, A., (1991) A User's Guide to the Phylogenetic Regression Program, Phylo. Glm, Version 1.03, , Royal Statistical Society, London
dc.descriptionGrafen, A., The uniqueness of the phylogenetic regression (1992) Journal of Theoretical Biology, 156, pp. 405-423
dc.descriptionGrime, J.P., Evidence for the existence of three primary strategies in plants and its relevance to ecological and evolutionary theory (1977) American Naturalist, 111, pp. 1169-1194
dc.descriptionGrime, J.P., (1979) Plant Strategies and Vegetation Processes, , Wiley, New York
dc.descriptionGrime, J.P., The stress debate: Symptom of impending synthesis? (1989) Biological Journal of the Linnean Society, 137, pp. 3-17
dc.descriptionGrime, J.P., Hodgson, J.G., Hunt, R., (1988) Comparative Plant Ecology, , Unwin-Hyman, London
dc.descriptionGrubb, P.J., The maintenance of species-richness in plant communities: The importance of the regeneration niche (1977) Biological Reviews, 52, pp. 107-145
dc.descriptionGrubb, P.J., Plant population and vegetation in relation to habitat, disturbance and competition: Problems of generalization (1985) The Population Structure of Vegetation, pp. 595-621. , (ed. J. White). Dr Dr W. Junk, The Hague
dc.descriptionGrubb, P.J., A positive distrust in simplicity - Lessons from plant defences and from competition among plants and among animals (1992) Journal of Ecology, 80, pp. 585-610
dc.descriptionGrubb, P.J., A reassessment of the strategies of plants which cope with shortages of resources (1998) Perspectives in Plant Ecology, Evolution and Systematics, 1, pp. 3-31
dc.descriptionHall, J.B., Swaine, M.D., (1981) Distribution and Ecology of Vascular Plants in a Tropical Rain Forest, , Dr W. Junk, The Hague
dc.descriptionHarper, J.L., After description (1981) The Plant Community as a Working Mechanism, pp. 11-25. , (ed. E.I. Newman). Blackwell Scientific, Oxford
dc.descriptionHarvey, P.H., Pagel, M.D., (1991) The Comparative Method in Evolutionary Biology, , Oxford University Press, Oxford
dc.descriptionHubbell, S.P., Foster, R.B., Commonness and rarity in a tropical forest: Implications for tropical tree diversity (1986) Conservation Biology, pp. 205-231. , (ed. M.E. Soule). Sinauer, Sunderland, Massachusetts
dc.descriptionHutchinson, M.F., Bischof, R.J., A new method for estimating thc spatial distribution of mean seasonal and annual rainfall applied to the Hunter Valley (1983) Australian Metereological Magazine, 31, pp. 179-184
dc.descriptionKeddy, P.A., (1989) Competition, , Chapman & Hall, London
dc.descriptionLambers, H., Chapin III, F.S., Pons, T.L., (1998) Plant Physiological Ecology, , Springer-Verlag, New York
dc.descriptionLarcher, W., (1995) Physiological Plant Ecology. 3rd edn., , Springer-Verlag, Berlin
dc.descriptionLevitt, J., (1972) Responses of Plants to Environmental Stresses, , Academic Press, New York
dc.descriptionLoveless, A.R., A nutritional interpretation of sclerophylly based on differences in the chemical composition of sclerophyllous and mesophytic leaves (1961) Annals of Botany, 25, pp. 168-184
dc.descriptionMonk, C.D., An ecological significance of evergreenness (1966) Ecology, 47, pp. 504-505
dc.descriptionMooney, H.A., Carbon-gaining capacity and allocation patterns of Mediterranean-climate plants (1983) Mediterranean Type Ecosystems: the Role of Nutrients, pp. 102-119. , (eds F.J. Kruger, D.T. Mitchell & J.U.M. Jarvis). Springer-Verlag, Berlin
dc.descriptionMurphy, J., Ridley, J.P., A modified single solution method for the determination of phosphate in natural waters (1967) Analytica Chimica Acta, 27, pp. 31-36
dc.descriptionOsmond, C.B., Austin, M.P., Berry, J.A., Billings, W.D., Boyer, J.S., Dacey, J.W.H., Nobel, P.S., Winner, W.E., Stress physiology and the distribution of plants (1987) Bioscience, 37, pp. 38-48
dc.descriptionParkhurst, D.F., Loucks, O.L., Optimal leaf size in relation to environment (1972) Journal of Ecology, 60, pp. 505-537
dc.descriptionRaunkiaer, C., (1934) The Life Forms of Plants and Statistical Plant Geography, , Clarendon Press, Oxford
dc.descriptionRidley, M., (1983) The Explanation of Organic Diversity, , Clarendon Press, Oxford
dc.descriptionSchimper, A.F.W., (1898) Pflanzengeographie Auf Physiologischer Grundlage, , G. Fischer, Jena, Germany
dc.descriptionShields, L.M., Leaf xeromorphy as related to physiological and structural influences (1950) Botanical Review, 16, pp. 399-447
dc.descriptionSmith, W.K., Bell, D.T., Shepherd, K.A., Associations between leaf structure, orientation and light exposure in five Western Australian communities (1998) American Journal of Botany, 85, pp. 56-63
dc.descriptionSpecht, R.L., Moll, E.J., Mediterranean-type heathlands and sclerophyllous shrublands of the world: An overview (1983) Mediterranean Type Ecosystems: the Role of Nutrients, pp. 40-65. , (eds F.J. Kruger, D.T. Mitchell & J.U.M. Jarvis). Springer-Verlag, Berlin
dc.descriptionTaiz, L., Zeiger, E., (1991) Plant Physiology. Benjamin/Cummings, , Redwood, California, USA
dc.descriptionTurner, I.M., Sclerophylly: Primarily protective? (1994) Functional Ecology, 8, pp. 669-675
dc.descriptionWalter, H., (1973) The Vegetation of the Earth, , Springer, New York
dc.descriptionWebb, L.J., Environment relationships of the structural types of Australian rain forest vegetation (1968) Ecology, 49, pp. 296-311
dc.descriptionWerger, M.J.A., Ellenbroek, G.A., Leaf size and leaf consistence of a riverine forest formation along a climatic gradient (1978) Oecologia, 34, pp. 297-308
dc.descriptionWestoby, M., A leaf-height-seed (LHS) plant ecology strategy scheme (1998) Plant and Soil, 199, pp. 213-227
dc.descriptionWestoby, M., Generalization in functional plant ecology: The species-sampling problem, plant ecology strategy schemes, and phylogeny (1999) Handbook of Functional Plant Ecology, pp. 847-872. , (eds F.I. Pugnaire & F. Valladares). M. Dekker, New York
dc.descriptionWolfe, J.A., A method of obtaining climatic parameters from leaf assemblages (1993) United States Geological Survey Bulletin, 2040, pp. 1-73
dc.languageen
dc.publisher
dc.relationJournal of Ecology
dc.rightsfechado
dc.sourceScopus
dc.titleShifts In Trait-combinations Along Rainfall And Phosphorus Gradients
dc.typeArtículos de revistas


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