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Ecology

Factors driving trait-convergence linked to leaf economic spectrum in tropical ferns

ORCID Icon, ORCID Icon, ORCID Icon &
Pages 518-531 | Received 28 Nov 2022, Accepted 09 Feb 2023, Published online: 27 Feb 2023

References

  • Abrahão, A, PDB Costa, H Lambers, SAL Andrade, ACHF Sawaya, MH Ryan, RS Oliveira. 2019. Soil types select for plants with matching nutrient-acquisition and-use traits in hyperdiverse and severely nutrient-impoverished campos rupestres and cerrado in Central Brazil. J Eco. 107(3):1302–1316. doi:10.1111/1365-2745.13111.
  • Aros-Mualin, D, S Noben, DN Karger, CI Carvajal-Hernández, L Salazar, A Hernández-Rojas, J Kluge, MA Sundue, M Lehnert, D Quandt, et al. 2021. Functional diversity in ferns is driven by species richness rather than by environmental constraints. Front Plant Sci. 11:615723. doi:10.3389/fpls.2020.615723.
  • Asefa, M, M Cao, G Zhang, X Ci, J Li, J Yang. 2017. Environmental filtering structures tree functional traits combination and lineages across space in tropical tree assemblages. Sci Rep. 7(1):132. doi:10.1038/s41598-017-00166-z.
  • Ávila-Lovera, E, GR Goldsmith, KM Kay, JL Funk, J Medeiros. 2022. Above- and below-ground functional trait coordination in the Neotropical understory genus Costus. AoB Plants. 14(1):lab073. doi:10.1093/aobpla/plab073.
  • Barros, MF, BX Pinho, T Leão, M Tabarelli. 2018. Soil attributes structure plant assemblages across an Atlantic forest mosaic. J Plant Ecol. 11(4):613–622. doi:10.1093/jpe/rtx037.
  • Barton, K 2012. MuMIn: multi-model inference. R package version 1.7. 2. http://CRAN.R-project.org/package=MuMIn.
  • Bergholz, K, F May, I Giladi, M Ristow, Y Ziv, F Jeltsch. 2017. Environmental heterogeneity drives fine-scale species assembly and functional diversity of annual plants in a semi-arid environment. Perspect Plant Ecol Evol Syst. 24:138–146. doi:10.1016/j.ppees.2017.01.001.
  • Botta-dukát, Z, B Czúcz. 2016. Testing the ability of functional diversity indices to detect trait convergence and divergence using individual-based simulation. Methods Ecol Evol. 7(1):114–126. doi:10.1111/2041-210X.12450.
  • Burnham, KP, DR Anderson. 2002. Model selection and multimodel inference: a practical information-theoretic approach. New York: Springer.
  • Cadotte, MW, K Carscadden, N Mirotchnick. 2011. Beyond species: functional diversity and the maintenance of ecological processes and services. J Appl Ecol. 48(5):1079–1087. doi:10.1111/j.1365-2664.2011.02048.x.
  • Cadotte, MW, J Cavender-Bares, D Tilman, TH Oakley, RP Freckleton. 2009. Using phylogenetic, functional and trait diversity to understand patterns of plant community productivity. PloS One. 4(5):e5695. doi:10.1371/journal.pone.0005695.
  • Candeias, M, J Fraterrigo. 2020. Trait coordination and environmental filters shape functional trait distributions of forest understory herbs. Ecol Evol. 26(24):14098–14112. doi:10.1002/ece3.7000.
  • Carrijo, JN, L Maracahipes, MC Scalon, DV Silvério, AC Abadia, MV Fagundes, AA Veríssimo, LA Gonçalves, D Carrijo, J Martins, et al. 2021. Functional traits as indicators of ecological strategies of savanna woody species under contrasting substrate conditions. Flora. 284:151925. doi:10.1016/j.flora.2021.151925.
  • Carvajal-Hernández, CI, JA Gómez-Díaz, M Kessler, T Krömer. 2018. Influence of elevation and habitat disturbance on the functional diversity of ferns and lycophytes. Plant Ecol Divers. 11(3):335–347. doi:10.1080/17550874.2018.1484526.
  • Cavender-Bares, J, A Keen, B Miles. 2006. Phylogenetic structure of Floridian plant communities depends on spatial and taxonomic scale. Ecology. 87(sp7):S109–122. doi:10.1890/0012-9658(2006)87[109:PSOFPC]2.0.CO;2.
  • Cornwell, WK, DD Ackerly. 2009. Community assembly and shifts in plant trait distributions across an environmental gradient in coastal California. Ecol Monogr. 79(1):109–126. doi:10.1890/07-1134.1.
  • Costa, LEN, X Arnan, RP Farias, ICL Barros. 2019. Community responses to fine-scale environmental conditions: ferns alpha and beta diversity along Brazilian Atlantic forest remnants. Acta Oecol. 101:103475. doi:10.1016/j.actao.2019.103475.
  • Costa, FR, WE Magnusson, RC Luizão. 2005. Mesoscale distribution patterns of Amazonian understorey herbs in relation to topography, soil and watersheds. J Ecol. 93(5):863–878. doi:10.1111/j.1365-2745.2005.01020.x.
  • De’ath, G. 1999. Extended dissimilarity: a method of robust estimation of ecological distances from high beta diversity data. Plant Ecol. 144(2):191–199. doi:10.1023/A:1009763730207.
  • De Bello, F, W Thuiller, J Lepš, P Choler, JC Clément, P Macek, MT Sebastià, S Lavorel. 2009. Partitioning of functional diversity reveals the scale and extent of trait convergence and divergence. J Veg Sci. 20(3):475–486. doi:10.1111/j.1654-1103.2009.01042.x.
  • De Pauw, K, C Meeussen, S Govaert, P Sanczuk, T Vanneste, M Bernhardt-Römermann, K Bollmann, J Brunet, K Calders, SAO Cousins, et al. 2021. Taxonomic, phylogenetic and functional diversity of understorey plants respond differently to environmental conditions in European forest edges. J Ecol. 109(7):2629–2648. doi:10.1111/1365-2745.13671.
  • Diamond, JM. 1975. Assembly rules of species communities. Ecology and Evolution of Communities. Cambridge (USA): Harvard University Press.
  • Díaz, S, J Kattge, JHC Cornelissen, IJ Wright, S Lavorel, S Dray, B Reu, M Kleyer, C Wirth, I Colin Prentice, et al. 2016. The global spectrum of plant form and function. Nature. 529(7585):167–171. doi:https://doi.org/10.1038/nature16489.
  • Flynn, DFB, M Gogol-Prokurat, T Nogeire, N Molinari, BT Richers, BB Lin, N Simpson, MM Mayfield, F De Clerck. 2009. Loss of functional diversity under land use intensification across multiple taxa. Ecol Lett. 12(1):22–33. doi:10.1111/j.1461-0248.2008.01255.x.
  • Fonseca, CR, G Ganade. 2001. Species functional redundancy, random extinctions and the stability of ecosystems. J Ecol. 89(1):118–125. doi:10.1046/j.1365-2745.2001.00528.x.
  • Fox, J, S Weisberg, D Adler, D Bates, G Baud-Bovy, S Ellison, G Monette. 2012. Package ‘car’. Vienna: R Foundation for Statistical Computing; p. 16.
  • Grime, JP. 2006. Trait convergence and trait divergence in herbaceous plant communities: mechanisms and consequences. J Veg Sci. 17(2):255–260. doi:10.1111/j.1654-1103.2006.tb02444.x.
  • Harrell, FE, Jr, MFE Harrell Jr. 2019. Package ‘hmisc’. CRAN2018:235–236.
  • Hernandez-Rojas, AC, J Kluge, S Noben, JD Reyes Chávez, T Krömer, CI Carvajal-Hernández, L Salazar, M Kessler. 2021. Phylogenetic diversity of ferns reveals different patterns of niche conservatism and habitat filtering between epiphytic and terrestrial assemblages. Front Biogeog. 13(3):e50023. doi:10.21425/f5fbg50023.
  • HilleRislambers, J, PB Adler, WS Harpole, JM Levine, MM Mayfield. 2012. Rethinking community assembly through the lens of coexistence theory. Annu Rev Ecol Evol. 43(1):227–248. doi:10.1146/annurev-ecolsys-110411-160411.
  • Hodgson, JG, G Montserrat-Martí, M Charles, G Jones, P Wilson, B Shipley, M Sharafi, BEL Cerabolini, JHC Cornelissen, SR Band, et al. 2011. Is leaf dry matter content a better predictor of soil fertility than specific leaf area? Ann Bot. 108(7):1337–1345. doi:10.1093/aob/mcr225.
  • Jones, MM, S Ferrier, R Condit, G Manion, S Aguilar, R Perez, G Zotz. 2013. Strong congruence in tree and fern community turnover in response to soils and climate in central Panama. J Ecol. 101(2):506–516. doi:10.1111/1365-2745.12053.
  • Jones, MM, H Tuomisto, DB Clark, P Olivas. 2006. Effects of mesoscale environmental heterogeneity and dispersal limitation on floristic variation in rain forest ferns. J Trop Ecol. 94(1):181–195. doi:10.1111/j.1365-2745.2005.01071.x.
  • Kassambara, AFM. 2017. Package ‘factoextra’. Extract and visualize the results of multivariate data analyses. R package version. 1(5): 337–354.
  • Kembel, SW, PD Cowan, MR Helmus, WK Cornwell, H Morlon, DD Ackerly, SP Blomberg, CO Webb. 2010. Picante: r tools for integrating phylogenies and ecology. Bioinformatics. 26(11):1463–1464. doi:10.1093/bioinformatics/btq166.
  • Kent, M, P Coker. 1994. Vegetation Description and Analysis: a Practical Approach. Chichester (UK): John Wiley and Sons.
  • Kluge, J, M Kessler. 2011. Phylogenetic diversity, trait diversity and niches: species assembly of ferns along a tropical elevational gradient. J Biogeogr. 38(2):394–405. doi:10.1111/j.1365-2699.2010.02433.x.
  • Kneitel, JM, JM Chase. 2004. Trade-offs in community ecology: linking spatial scales and species coexistence. Ecol Lett. 7(1):69–80. doi:10.1046/j.1461-0248.2003.00551.x.
  • Kraft, NJ, R Valencia, DD Ackerly. 2008. Functional traits and niche-based tree community assembly in an Amazonian forest. Science. 322(5901):580–582. doi:10.1126/science.1160662.
  • Laliberté, E, P Legendre, B Shipley, ME Laliberté. 2014. Package ‘FD’. Measuring functional diversity from multiple traits, and other tools for functional ecology. R package version. 1(1):0–12.
  • Le Bagousse-Pinguet, Y, N Gross, FT Maestre, V Maire, F de Bello, CR Fonseca, J Kattge, E Valencia, J Leps, P Liancourt, et al. 2017. Testing the environmental filtering concept in global drylands. J Ecol. 105(4):1058–1069. doi:10.1111/1365-2745.12735.
  • Lebrija-Trejos, E, EA Pérez-García, JA Meave, F Bongers, L Poorter. 2010. Functional traits and environmental filtering drive community assembly in a species-rich tropical system. Ecology. 91(2):386–398. doi:10.1890/08-1449.1.
  • Legendre, P, L Legendre. 1998. Numerical ecology. 2nd English. Amsterdam: Elsevier.
  • Lehtonen, S, MM Jones, G Zuquim, J Prado, H Tuomisto. 2015. Phylogenetic relatedness within Neotropical fern communities increases with soil fertility. Glob Ecol Biogeogr. 24(6):695–705. doi:10.1111/geb.12294.
  • Lins-E-Silva, ACB, PSM Ferreira, MJN Rodal. 2021. The north-eastern Atlantic Forest: biogeographical, historical, and current aspects in the sugarcane zoneThe Atlantic Forest: history, biodiversity, threats and opportunities of the megadiverse forest. M Marques C Grelle. editors. Cham: Springerpp. 45–61. 10.1007/978-3-030-55322-7_3.
  • Losos, JB. 2008. Phylogenetic niche conservatism phylogenetic signal and the relationship between phylogenetic relatedness and ecological similarity among species. Ecol Lett. 11(10):995–1003. doi:10.1111/j.1461-0248.2008.01229.x.
  • Magnusson, WE, CEV Grelle, MCM Marques, CFD Rocha, B Dias, CS Fontana, H Bergallo, GE Overbeck, MM Vale, WM Tomas, et al. 2018. Effects of Brazil’s political crisis on the science needed for biodiversity conservation. Front Ecol Evol. 6:163. doi:10.3389/fevo.2018.00163.
  • Májeková, M, T Paal, NS Plowman, M Bryndová, L Kasari, A Norberg, M Weiss, TR Bishop, SH Luke, K Sam, et al. 2016. Evaluating functional diversity: missing trait data and the importance of species abundance structure and data transformation. PloS One. 11(2):e0149270. doi:10.1371/journal.pone.0149270.
  • Marques, MCM, W Trindade, A Bohn, CEV Grelle. 2021. The Atlantic Forest: an introduction to the megadiverse forest of South AmericaThe Atlantic Forest: history, biodiversity, threats and opportunities of the megadiverse forest. M Marques C Grelle. editors. Cham: Springerpp. 3–23. 10.1007/978-3-030-55322-7_1.
  • Mason, NWH, F de Bello, D Mouillot, S Pavoine, S Dray, M Zobel. 2013. A guide for using functional diversity indices to reveal changes in assembly processes along ecological gradients. J Veg Sci. 24(5):794–806. doi:10.1111/jvs.12013.
  • Mason, NWH, C Lanoiselee, D Mouillot, P Irz, C Argillier. 2007. Functional characters combined with null models reveal inconsistency in mechanisms of species turnover in lacustrine fish communities. Oecologia. 153(2):451–452. doi:https://doi.org/10.1007/s00442-007-0727-x.
  • Messier, J, BJ McGill, BJ Enquist, MJ Lechowicz. 2017. Trait variation and integration across scales: is the leaf economic spectrum present at local scales? Ecography. 40(6):685–697. doi:10.1111/ecog.02006.
  • Mokany, K, J Ash, S Roxburgh. 2008. Functional identity is more important than diversity in influencing ecosystem processes in a temperate native grassland. J Ecol. 96(5):884–893. doi:10.1111/j.1365-2745.2008.01395.x.
  • Molina-Venegas, R, A Aparicio, S Lavergne, J Arroyo. 2018. Soil conditions drive changes in a key leaf functional trait through environmental filtering and facilitative interactions. Acta Oecol. 86:1–8. doi:10.1016/j.actao.2017.11.008.
  • Moraes, DA, PO Cavalin, RS Moro, RA Oliveira, MR Carmo, MC Marques, L Duarte. 2016. Edaphic filters and the functional structure of plant assemblages in grasslands in southern Brazil. J Veg Sci. 27(1):100–110. doi:10.1111/jvs.12331.
  • Mouchet, MA, S Villéger, NWH Mason, D Mouillot. 2010. Functional diversity measures: an overview of their redundancy and their ability to discriminate community assembly rules. Funct Ecol. 24(4):867–876. doi:10.1111/j.1365-2435.2010.01695.x.
  • Mudrák, O, Š Janeček, L Götzenberger, NW Mason, J Horník, I de Castro, J Doležal, K Jitka, F de Bello. 2016. Fine-scale coexistence patterns along a productivity gradient in wet meadows: shifts from trait convergence to divergence. Ecography. 39(3):338–348. doi:10.1111/ecog.01723.
  • Münkemüller, T, S Lavergne, B Bzeznik, S Dray, T Jombart, K Schiffers, W Thuiller. 2012. How to measure and test phylogenetic signal. Methods Ecol Evol. 3(4):743–756. doi:10.1111/j.2041-210X.2012.00196.x.
  • Niinemets, Ü, A Portsmuth, D Tena, M Tobias, S Matesanz, F Valladares. 2007. Do we underestimate the importance of leaf size in plant economics? Disproportional scaling of support costs within the spectrum of leaf physiognomy. Ann Bot. 100(2):283–303. doi:10.1093/aob/mcm107.
  • Oksanen, J, FG Blanchet, R Kindt, P Legendre, PR Minchin, RB O’hara, GL Simpson, P Solymos, MHH Stevens, H Wagner, et al. 2013. Package ‘vegan’. Community Ecology Package, Version. 2(9):1–295.
  • Ordoñez, JC, PM Van Bodegom, JPM Witte, IJ Wright, PB Reich, R Aerts. 2009. A global study of relationships between leaf traits, climate and soil measures of nutrient fertility. Glob Ecol Biogeogr. 18(2):137–149. doi:10.1111/j.1466-8238.2008.00441.x.
  • Page, CN. 2002. Ecological strategies in fern evolution: a neopteridological overview. Rev Palaeobot Palynol. 119(1–2):1–33. doi:10.1016/S0034-6667(01)00127-0.
  • Pavoine, S, M Baguette, MB Bonsall. 2010. Decomposition of trait diversity among the nodes of a phylogenetic tree. Ecol Monogr. 80(3):485–507. doi:10.1890/09-1290.1.
  • Perea, R, JW Schroeder, R Dirzo. 2022. The herbaceous understory plant community in the context of the overstory: an overlooked component of tropical diversity. Diversity. 14(10):800. doi:10.3390/d14100800.
  • Pérez-Harguindeguy, N, S Díaz, E Garnier, S Lavorel, H Poorter, P Jaureguiberry, MS Bret-Harte, WK Cornwell, JM Craine, DE Gurvich, et al. 2013. New handbook for standardised measurement of plant functional traits worldwide. Aust J Bot. 61(3):167–234. doi:10.1071/BT12225.
  • Pierce, S, G Brusa, I Vagge, BEL Cerabolini, K Thompson. 2013. Allocating CSR plant functional types: the use of leaf economics and size traits to classify woody and herbaceous vascular plants. Funct Ecol. 27(4):1002–1010. doi:10.1111/1365-2435.12095.
  • Poorter, L, F Bongers. 2006. Leaf traits are good predictors of plant performance across 53 rain forest species. Ecology. 87(7):1733–1743. doi:10.1890/0012-9658(2006)87[1733:LTAGPO]2.0.CO;2.
  • Poulsen, AD, H Tuomisto, H Balslev. 2006. Edaphic and floristic variation within a 1-ha plot of Lowland Amazonian Rain Forest. Biotropica. 38(4):468–478. doi:10.1111/j.1744-7429.2006.00168.x.
  • Prado, J, LS Sylvestre, PH Labiak, PG Windisch, A Salino, ICL Barros, RY Hirai, TE Almeida, ACP Santiago, M Kieling-Rubio, et al. 2015. Diversity of ferns and lycophytes in Brazil. Rodriguésia. 66(4):1073–1083. doi:10.1590/2175-7860201566410.
  • Reich, PB, H Cornelissen. 2014. The world-wide ‘fast-slow’ plant economics spectrum: a traits manifesto. J Ecol. 102(2):275–301. doi:10.1111/1365-2745.12211.
  • Richard, M, T Bernard, G Bell. 2000. Environmental heterogeneity and the spatial structure of fern species diversity in one hectare of old-growth forest. Ecography. 23(2):231–245. doi:10.1111/j.1600-0587.2000.tb00279.x.
  • Ruokolainen, K, H Tuomisto, MJ Macia, MA Higgins, M Yli-Halla. 2007. Are floristic and edaphic patterns in Amazonian rain forests congruent for trees, pteridophytes and Melastomataceae? J Trop Ecol. 23(1):13–25. doi:10.1017/S0266467406003889.
  • Sartori, K, F Vasseur, C Violle, E Baron, M Gerard, N Rowe, O Ayala-Garay, A Christophe, L de Jalón, D Masclef, et al. 2019. Leaf economics and slow-fast adaptation across the geographic range of Arabidopsis thaliana. Sci Rep. 9(1):10758. doi:10.1038/s41598-019-46878-2.
  • Sfair, JC, BH Rosado, M Tabarelli, N Mason. 2016. The effects of environmental constraints on plant community organization depend on which traits are measured. J Veg Sci. 27(6):1264–1274. doi:10.1111/jvs.12453.
  • Sharpe, JM, K Mehltreter, LR Walker. 2010. Ecological importance of ferns. Fern ecology. K Mehltreter, L Walker J Sharpe. editors. Cambridge (UK): Cambridge University Presspp. 1–21. doi:10.1017/CBO9780511844898.002.
  • Silva, IAA, AFN Pereira, ICL Barros. 2014. Fragmentation and loss of habitat: consequences for the fern communities in Atlantic forest remnants in Alagoas, north-eastern Brazil. Plant Ecol Divers. 7(4):509–517. doi:10.1080/17550874.2013.862750.
  • Standish, RJ, AD Gove, AH Grigg, MI Daws, D Ward. 2021. Beyond species richness and community composition: using plant functional diversity to measure restoration success in jarrah forest. Appl Veg Sci. 24(3):e12607. doi:10.1111/avsc.12607.
  • Stark, J, R Lehman, L Crawford, BJ Enquist, B Blonder. 2017. Does environmental heterogeneity drive functional trait variation? A test in montane and alpine meadows. Oikos. 126(11):1650–1659. doi:10.1111/oik.04311.
  • Stein, A, K Gerstner, H Kreft, H Arita. 2014. Environmental heterogeneity as a universal driver of species richness across taxa, biomes and spatial scales. Ecol Lett. 17(7):866–880. doi:10.1111/ele.12277.
  • Stotz, GC, C Salgado-luarte, VM Escobe, F Valladares, E Gianoli. 2022. Phenotypic plasticity and the leaf economics spectrum: plasticity is positively associated with specific leaf area. Oikos. (11):e09342. doi:10.1111/oik.09342.
  • Teixeira, PC, GK Donagemma, A Fontana, WG Teixeira. 2017. Manual de Métodos de Análise de Solo. Embrapa - Empresa Brasileira de Pesquisa Agropecuária - Embrapa 1135 Solos.
  • Testo, W, M Sundue. 2016. A 4000-species dataset provides new insight into the evolution of ferns. Mol Phylogenetics Evol. 105:200–211. doi:10.1016/j.ympev.2016.09.003.
  • Tosens, T, K Nishida, J Gago, RE Coopman, HM Cabrera, M Carriquí, J Flexas, L Morales, M Nadal, R Rojas, et al. 2016. The photosynthetic capacity in 35 ferns and fern allies: mesophyll CO 2 diffusion as a key trait. New Phytol. 209(4):1576–1590. doi:10.1111/nph.13719.
  • Tuomisto, H. 2010. A diversity of beta diversities: straightening up a concept gone awry. Part 2. Quantifying beta diversity and related phenomena. Ecography. 33(1):23–45. doi:10.1111/j.1600-0587.2009.06148.x.
  • Tuomisto, H, A Poulsen. 1996. Influence of edaphic specialization on the distribution of pteridophytes in neotropical forests. J Biogeogr. 23(3):283–293. doi:10.1046/j.1365-2699.1996.00044.x.
  • Viana, JL, JW Dalling. 2022. Soil fertility and water availability effects on trait dispersion and phylogenetic relatedness of tropical terrestrial ferns. Oecologia. 198(3):733–748. doi:10.1007/s00442-022-05131-w.
  • Viana, JL, BL Turner, JW Dalling, D Zeleny. 2021. Compositional variation in understorey fern and palm communities along a soil fertility and rainfall gradient in a lower montane tropical forest. J Veg Sci. 32(1):e12947. doi:10.1111/jvs.12947.
  • Viani, RA, RR Rodrigues, TE Dawson, H Lambers, RS Oliveira. 2014. Soil pH accounts for differences in species distribution and leaf nutrient concentrations of Brazilian woodland savannah and seasonally dry forest species. Perspect Plant Ecol Evol Syst. 16(2):64–74. doi:10.1016/j.ppees.2014.02.001.
  • Vitória, AP, LF Alves, LS Santiago. 2019. Atlantic forest and leaf traits: an overview. Trees. 33(6):1535–1547. doi:https://doi.org/10.1007/s00468-019-01864-z.
  • Webb, CO, DD Ackerly, MA Mcpeek, MJ Donoghue. 2002. Phylogenies and community ecology. Annu Rev Ecol Syst. 33(1):475–505. doi:10.1146/annurev.ecolsys.33.010802.150448.
  • Westoby, M. 1998. A leaf–height–seed (LHS) plant ecology strategy scheme. Plant Soil. 199(2):213–227. doi:10.1023/A:1004327224729.
  • Wright, IJ, PB Reich, M Westoby, DD Ackerly, Z Baruch, F Bongers, J Cavender-Bares, T Chapin, JHC Cornelissen, M Diemer, et al. 2004. The worldwide leaf economics spectrum. Nature. 428(6985):821–827. doi:https://doi.org/10.1038/nature02403.
  • Yachi, S, M Loreau. 2007. Does complementary resource use enhance ecosystem functioning? A model of light competition in plant communities. Ecol Lett. 10(1):54–62. doi:10.1111/j.1461-0248.2006.00994.x.
  • Zhang, H, S Zhu, R John, R Li, H Liu, Q Ye. 2017. Habitat filtering and exclusion of weak competitors jointly explain fern species assemblage along a light and water gradient. Sci Rep. 7(1):298. doi:10.1038/s41598-017-00429-9.
  • Zuquim, G, H Tuomisto, FR Costa, J Prado, WE Magnusson, T Pimentel, R Braga-Neto, FO Figueiredo. 2012. Broad scale distribution of ferns and lycophytes along environmental gradients in Central and Northern Amazonia, Brazil. Biotropica. 44(6):752–762. doi:10.1111/j.1744-7429.2012.00880.x.
  • Zuquim, G, H Tuomisto, M Jones, J Prado, FOG Figueiredo, GM Moulatlet, T Emilio, CA Quesada, T Emilio. 2014. Predicting environmental gradients with fern species composition in Brazilian Amazonia. J Veg Sci. 25(5):1195–1207. doi:10.1111/jvs.12174.
  • Zuur, AF, EN Ieno, CS Elphick. 2010. A protocol for data exploration to avoid common statistical problems. Methods Ecol Evol. 1(1):3–14. doi:10.1111/j.2041-210X.2009.00001.x.

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