Revising the global biogeography of annual and perennial plants

0
6


  • Friedman, J. The advancement of seasonal and yearly plant life histories: hereditary systems and environmental correlates. Annu. Rev. Ecol. Evol. Syst. 51, 461– 481 (2020 ).

    Article

    Google Scholar

  • Raunkiær, C. Über das Biologische Normalspektrum (Andr. Fred. Host & & Son, Kgl. Hof-Boghandel, 1918).

  • Glover, J. D. et al. Increased food and environment. Science 328, 1638– 1640 (2010 ).

    Article
    CAS
    PubMed

    Google Scholar

  • Vico, G., Manzoni, S., Nkurunziza, L., Murphy, K. & & Weih, M. Trade-offs in between seed output and life expectancy– a quantitative contrast of characteristics in between seasonal and yearly congeneric types. N. Phytol. 209, 104– 114 (2016 ).

    Article
    CAS

    Google Scholar

  • Whittaker, R. H. Ecosystems and neighborhoods (Macmillan, 1975).

  • Crawley, M. J. Plant Ecology (Blackwell Science, Oxford, 1997).

  • Begon, M., Townsend, C. R. & & Harper, J. L. Ecology: From Individuals to Ecosystems (John Wiley & & Sons, 2021).

  • Gurevitch, J., Scheiner, S. M. & & Fox, G. A. The Ecology of Plants (Oxford Univ. Press, 2021). (* )Salguero-Gómez, R. et al. Fast-slow continuum and reproductive methods structure plant life-history variation worldwide.

  • Proc. Natl Acad. Sci. U.S.A. 113 , 230– 235 (2016 ).

    Article
    ADS
    PubMed

    Google Scholar
    Garnier, E. & & Vancaeyzeele, S. Carbon and nitrogen material of congeneric yearly and seasonal turf types: relationships with development.

  • Plant. Cell Environ. 17 , 399– 407 (1994 ).

    Article

    Google Scholar
    Roumet, C., Urcelay, C. & & Díaz, S. Suites of root characteristics vary in between seasonal and yearly types growing in the field.

  • N. Phytol. 170 , 357– 368 (2006 ).

    Article

    Google Scholar
    Funk, J. L., Standish, R. J., Stock, W. D. & & Valladares, F. Plant practical characteristics of dominant native and intrusive types in mediterranean-climate environments.

  • Ecology. 97 , 75– 83 (2016 ).

    Article
    PubMed

    Google Scholar
    Murray, B. R., Thrall, P. H., Gill, A. M. & & Nicotra, A. B. How plant life-history and environmental characteristics connect to types rarity and commonness at differing spatial scales.

  • Austral Ecol. 27 , 291– 310 (2002 ).

    Article

    Google Scholar
    Rice, A. et al. The worldwide biogeography of polyploid plants.

  • Nat. Ecol. Evol. 3 , 265– 273 (2019 ).

    Article
    PubMed

    Google Scholar
    Grman, E., Lau, J. A., Schoolmaster, D. R. & & Gross, K. L. Mechanisms adding to stability in environment function depend upon the ecological context.

  • Ecol. Lett. 13 , 1400– 1410 (2010 ).

    Article
    PubMed

    Google Scholar
    Glover, J. D., Reganold, J. P. & & Cox, C. M. Plant perennials to conserve Africa’s soils.

  • Nature 489 , 359– 361 (2012 ).

    Article
    ADS
    CAS
    PubMed

    Google Scholar
    Kreitzman, M., Toensmeier, E., Chan, K. M. A., Smukler, S. & & Ramankutty, N. Perennial staple crops: yields, circulation, and nutrition in the worldwide food system.

  • Front. Sustain. Food Syst. 4 , 216 (2020 ).

    Article

    Google Scholar
    Ledo, A. et al. Modifications in soil natural carbon under seasonal crops.

  • Glob. Modification Biol. 26 , 4158– 4168 (2020 ).

    Article
    ADS

    Google Scholar
    Bar-On, Y. M., Phillips, R. & & Milo, R. The biomass circulation in the world.

  • Proc. Natl Acad. Sci. U.S.A. 115 , 6506– 6511 (2018 ).

    Article
    ADS
    CAS
    PubMed
    PubMed Central

    Google Scholar
    Foley, J. A. et al. International effects of land usage.

  • Science 309 , 570– 574 (2005 ).

    Article
    ADS
    CAS
    PubMed

    Google Scholar
    Erb, K. H. et al. All of a sudden big effect of forest management and grazing on worldwide plant life biomass.

  • Nature 553 , 73– 76 (2018 ).

    Article
    ADS
    CAS
    PubMed

    Google Scholar
    Pimentel, D. et al. Perennial vs. yearly grain production.

  • Agric. Ecosyst. Environ. 161 , 1– 9 (2012 ).

    Article

    Google Scholar
    Humphreys, A. M., Govaerts, R., Ficinski, S. Z., Nic Lughadha, E. & & Vorontsova, M. S. Global dataset reveals location and life kind anticipate modern-day plant termination and rediscovery.

  • Nat. Ecol. Evol. 3 , 1043– 1047 (2019 ).

    Article
    PubMed

    Google Scholar
    Friedman, J. & & Rubin, M. J. All in great time: comprehending seasonal and yearly methods in plants.

  • Am. J. Bot. 102 , 497– 499 (2015 ).

    Article
    PubMed

    Google Scholar
    Cole, L. C. The population effects of biography phenomena.

  • Q. Rev. Biol. 29 , 103– 137 (1954 ).

    Article
    CAS
    PubMed

    Google Scholar
    Charnov, E. L. & & Schaffer, W. M. Life-history effects of natural choice: Cole’s outcome reviewed.

  • Am. Nat. 107 , 791– 793 (1973 ).

    Article

    Google Scholar
    World Flora Online

  • (WFO, 2023); .http://www.worldfloraonline.org Díaz, S. et al. Prevalent human-driven decrease of life in the world indicate the requirement for transformative modification.

  • Science 366 , eaax3100 (2019 ). Grimm, N. B. et al. The effects of environment modification on environment structure and function.

  • Front. Ecol. Environ. 11 , 474– 482 (2013 ).

    Article

    Google Scholar
    Hooper, D. U. et al. Results of biodiversity on environment performance: an agreement of present understanding.

  • Ecol. Monogr. 75 , 3– 35 (2005 ).

    Article

    Google Scholar
    Chapin III, F. S. et al. Repercussions of altering biodiversity.

  • Nature 405 , 234– 242 (2000 ).

    Article

    Google Scholar
    Weiskopf, S. R. et al. Environment modification impacts on biodiversity, environments, environment services, and natural deposit management in the United States.

  • Sci. Overall Environ. 733 , 137782 (2020 ). Datson, P. M., Murray, B. G. & & Steiner, K. E. Climate and the advancement of annual/perennial life-histories in

  • Nemesia (Scrophulariaceae). Plant Syst. Evol. 270 , 39– 57 (2008 ).

    Article

    Google Scholar
    Evans, M. E. K., Hearn, D. J., Hahn, W. J., Spangle, J. M. & & Venable, D. L. Climate and life-history advancement in night primroses (Oenothera, Onagraceae): a phylogenetic relative analysis.

  • Evolution. 59 , 1914– 1927 (2005 ).

    CAS
    PubMed

    Google Scholar
    Zeineddine, M. & & Jansen, V. A. A. To age, to pass away: parity, evolutionary tracking and Cole’s paradox.

  • Evolution 63 , 1498– 1507 (2009 ).

    Article
    PubMed

    Google Scholar
    Cruz-Mazo, G., Buide, M. L., Samuel, R. & & Narbona, E. Molecular phylogeny of

  • Scorzoneroides (Asteraceae): advancement of heterocarpy and yearly practice in unforeseeable environments. Mol. Phylogenet. Evol. 53 , 835– 847 (2009 ).

    Article
    CAS
    PubMed

    Google Scholar
    Murphy, G. I. Pattern in biography and the environment.

  • Am. Nat. 102 , 391– 403 (1968 ).

    Article

    Google Scholar
    Díaz, S. et al. Plant characteristic reactions to grazing– a worldwide synthesis.

  • Glob. Modification Biol. 13 , 313– 341 (2007 ).

    Article
    ADS

    Google Scholar
    Herben, T., Klimešová, J. & & Chytrý, M. Effects of disruption frequency and seriousness on plant characteristics: an evaluation throughout a temperate plants.

  • Funct. Ecol. 32 , 799– 808 (2018 ).

    Article

    Google Scholar
    Pianka, E. R. On

  • r– and K– choice. Am. Nat. 104 , 592– 597 (1970 ).

    Article

    Google Scholar
    Whittaker, R. H.

  • Ecosystems and neighborhoods (Macmillan, 1970). Salinger, M. J. Climate irregularity and modification: past, future and present– an introduction.

  • Climatic Change 70 , 9– 29 (2005 ). Maitner, B. S. et al. The bien r plan: a tool to access the Botanical Information and Ecology Network (BIEN) database.

  • Methods Ecol. Evol. 9 , 373– 379 (2018 ).

    Article

    Google Scholar
    Tavşanoğlu, Ç. & & Pausas, J. G. A practical characteristic database for Mediterranean basin plants.

  • Sci. Information. 5 , 180135 (2018 ). Parr, C. S. et al. The Encyclopedia of Life v2: offering worldwide access to understanding about life in the world.

  • Biodivers. Data J. 29 , e1079 (2014 ). Engemann, K. et al. A plant development kind dataset for the brand-new world.

  • Ecology 97 , 3243 (2016 ).

    Article
    CAS
    PubMed

    Google Scholar
    World Checklist of Selected Plant Families

  • (Royal Botanic Gardens, Kew, accessed 20 July 2021); .http://apps.kew.org/wcsp/ Kleyer, M. et al. The LEDA traitbase: a database of life-history characteristics of the northwest European plants.

  • J. Ecol. 96 , 1266– 1274 (2008 ).

    Article

    Google Scholar
    Taseski, G. M. et al. An international growth-form database for 143,616 vascular plant types.

  • Ecology 53 , 2614 (2019 ).


    Google Scholar
    Kattge, J. et al. Shot plant characteristic database– boosted protection and open gain access to.

  • Glob. Modification Biol. 26 , 119– 188 (2020 ).

    Article
    ADS

    Google Scholar
    Dauby, G. et al. RAINBIO: a mega-database of tropical African vascular plants circulations.

  • PhytoKeys. 74 , 1– 18 (2016 ).

    Article

    Google Scholar
    National Plant Data Team.

  • The PLANTS Database (USDA, NRCS, accessed 23 May 2021); .http://plants.usda.gov Kindt, R. WorldFlora: an R plan for fuzzy and precise matching of plant names versus the World Flora Online taxonomic foundation information.

  • Appl. Plant Sci. 8 , e11388 (2020 ).

    Article
    PubMed
    PubMed Central

    Google Scholar
    GBIF Occurrence Download

  • (GBIF, 2021); .https://doi.org/10.15468/dl.5d7wa2 Zizka, A. et al. CoordinateCleaner: standardized cleansing of incident records from biological collection databases.

  • Methods Ecol. Evol. 10 , 744– 751 (2019 ).

    Article

    Google Scholar
    Olson, D. M. et al. Terrestrial ecoregions of the world: a brand-new map of life in the world: a brand-new worldwide map of terrestrial ecoregions supplies an ingenious tool for saving biodiversity.

  • Bioscience. 51 , 933– 938 (2001 ).

    Article

    Google Scholar
    Hijmans, R. J. raster: geographical information analysis and modeling. R plan variation 3.4-13 (2021 );

  • .https://CRAN.R-project.org/package=raster Bivand, R., Keitt, T. & & Rowlingson, B. rgdal: bindings for the ‘geospatial’ information abstraction library. R plan variation 1.5-27 (2021 );

  • .https://CRAN.R-project.org/package=rgdal Fick, S. E. & & Hijmans, R. J. WorldClim 2: brand-new 1-km spatial resolution environment surface areas for worldwide acreage.

  • Int. J. Climatol. 37 , 4302– 4315 (2017 ).

    Article

    Google Scholar
    Venter, O. et al. Sixteen years of modification in the worldwide terrestrial human footprint and ramifications for biodiversity preservation.

  • Nat. Commun. 7 , 12558 (2016 ). Barton, K. Mu-MIn: multi-model reasoning. R plan variation 1.43.17 (2009 );

  • .http://R-Forge.R-project.org/projects/mumin/ Smith, S. A. & & Brown, J. W. Constructing a broadly inclusive seed plant phylogeny.

  • Am. J. Bot. 105 , 302– 314 (2018 ).

    Article
    PubMed

    Google Scholar
    Dray, S. et al. Neighborhood ecology in the age of multivariate multiscale spatial analysis.

  • Ecol. Monogr. 82 , 257– 275 (2012 ).

    Article

    Google Scholar
    Dray, S. et al. adespatial: multivariate multiscale spatial analysis. R plan variation 0.3-21 (2023 );

  • .https://CRAN.R-project.org/package=adespatial Sellar, A. A. et al. UKESM1: description and examination of the U.K. Earth system design.

  • J. Adv. Model. Earth Syst. 11 , 4513– 4558 (2019 ).

    Article
    ADS

    Google Scholar

  • LEAVE A REPLY

    Please enter your comment!
    Please enter your name here