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Responses of alpine summit vegetation under climate change in the transition zone between subtropical and tropical humid environment

  • Chen, I. C., Hill, J. K., Ohlemuller, R., Roy, D. B. & Thomas, C. D. Rapid range shifts of species associated with high levels of climate warming. Science 333, 1024–1026. https://doi.org/10.1126/science.1206432 (2011).

    ADS 
    CAS 
    Article 
    PubMed 

    Google Scholar 

  • Gottfried, M. et al. Continent-wide response of mountain vegetation to climate change. Nat. Clim. Change 2, 111–115. https://doi.org/10.1038/nclimate1329 (2012).

    ADS 
    Article 

    Google Scholar 

  • Rumpf, S. B. et al. Range dynamics of mountain plants decrease with elevation. Proc. Natl. Acad. Sci. 115, 201713936. https://doi.org/10.1073/pnas.1713936115 (2018).

    CAS 
    Article 

    Google Scholar 

  • Gigauri, K., Akhalkatsi, M., Abdaladze, O. & Nakhutsrishvili, G. Alpine plant distribution and thermic vegetation indicator on GLORIA summits in the Central Greater Caucasus. Pak. J. Bot. 48, 1893–1902 (2016).

    Google Scholar 

  • Gritsch, A., Dirnböck, T. & Dullinger, S. Recent changes in alpine vegetation differ among plant communities. J. Veg. Sci. 27, 1177–1186. https://doi.org/10.1111/jvs.12447 (2016).

    Article 

    Google Scholar 

  • Speed, J. D. M., Austrheim, G., Hester, A. J. & Mysterud, A. Elevational advance of alpine plant communities is buffered by herbivory. J. Veg. Sci. 23, 617–625. https://doi.org/10.1111/j.1654-1103.2012.01391.x (2012).

    Article 

    Google Scholar 

  • Grytnes, J. A. et al. Identifying the driving factors behind observed elevational range shifts on European mountains. Global Ecol. Biogeogr. 23, 876–884. https://doi.org/10.1111/geb.12170 (2014).

    Article 

    Google Scholar 

  • Johnson, D. R., Ebert-May, D., Webber, P. J. & Tweedie, C. E. Forecasting alpine vegetation change using repeat sampling and a novel modeling approach. Ambio 40, 693. https://doi.org/10.1007/s13280-011-0175-z (2011).

    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • Amagai, Y., Kudo, G. & Sato, K. Changes in alpine plant communities under climate change: Dynamics of snow-meadow vegetation in northern Japan over the last 40 years. Appl. Veg. Sci. 21, 561–571. https://doi.org/10.1111/avsc.12387 (2018).

    Article 

    Google Scholar 

  • Crimmins, S. M., Dobrowski, S. Z., Greenberg, J. A., Abatzoglou, J. T. & Mynsberge, A. R. Changes in climatic water balance drive downhill shifts in plant species’ optimum elevations. Science 331, 324–327. https://doi.org/10.1126/science.1199040 (2011).

    ADS 
    CAS 
    Article 
    PubMed 

    Google Scholar 

  • Engler, R. et al. 21st century climate change threatens mountain flora unequally across Europe. Global Change Biol. 17, 2330–2341. https://doi.org/10.1111/j.1365-2486.2010.02393.x (2011).

    ADS 
    Article 

    Google Scholar 

  • Matteodo, M., Ammann, K., Verrecchia, E. P. & Vittoz, P. Snowbeds are more affected than other subalpine–alpine plant communities by climate change in the Swiss Alps. Ecol. Evol. 6, 6969–6982. https://doi.org/10.1002/ece3.2354 (2016).

    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • Tingley, M. W., Monahan, W. B., Beissinger, S. R. & Moritz, C. Birds track their Grinnellian niche through a century of climate change. Proc. Natl. Acad. Sci. 106, 19637–19643. https://doi.org/10.1073/pnas.0901562106 (2009).

    ADS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • Cuesta, F. et al. Thermal niche traits of high alpine plant species and communities across the tropical Andes and their vulnerability to global warming. J. Biogeogr. 47, 408–420. https://doi.org/10.1111/jbi.13759 (2020).

    Article 

    Google Scholar 

  • Hamid, M., Khuroo, A. A., Malik, A. H., Ahmad, R. & Singh, C. P. Assessment of alpine summit flora in Kashmir Himalaya and its implications for long-term monitoring of climate change impacts. J. Mt. Sci. 17, 1974–1988. https://doi.org/10.1007/s11629-019-5924-7 (2020).

    Article 

    Google Scholar 

  • Steinbauer, K., Lamprecht, A., Semenchuk, P., Winkler, M. & Pauli, H. Dieback and expansions: Species-specific responses during 20 years of amplified warming in the high Alps. Alpine Bot. 130, 1–11. https://doi.org/10.1007/s00035-019-00230-6 (2019).

    Article 

    Google Scholar 

  • Noroozi, J. et al. Hotspots within a global biodiversity hotspot-areas of endemism are associated with high mountain ranges. Sci. Rep. 8, 10345. https://doi.org/10.1038/s41598-018-28504-9 (2018).

    ADS 
    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • Testolin, R. et al. Global patterns and drivers of alpine plant species richness. Global Ecol. Biogeogr. 30, 12181–12231. https://doi.org/10.1111/geb.13297 (2021).

    Article 

    Google Scholar 

  • Körner, C. in Alpine Plant Life Ch. 1. Plant ecology at high elevations, 1–22 (Springer, 2021).

  • Smith, J. G., Sconiers, W., Spasojevic, M. J., Ashton, I. W. & Suding, K. N. Phenological changes in alpine plants in response to increased snowpack, temperature, and nitrogen. Arct. Antarct. Alp. Res. 44, 135–142. https://doi.org/10.1657/1938-4246-44.1.135 (2012).

    Article 

    Google Scholar 

  • Körner, C. Alpine Plant Life. (Springer, 2021).

  • Pauli, H. et al. The GLORIA field manual–standard Multi-Summit approach, supplementary methods and extra approaches. 5th edn, (GLORIA-Coordination, Austrian Academy of Sciences & University of Natural Resources and Life Sciences, 2015).

  • Kuo, C.-C., Su, Y., Liu, H.-Y. & Lin, C.-T. Assessment of climate change effects on alpine summit vegetation in the transition of tropical to subtropical humid climate. Plant Ecol. 222, 933–951. https://doi.org/10.1007/s11258-021-01152-2 (2021).

    Article 

    Google Scholar 

  • Suonan, J., Classen, A. T., Zhang, Z. & He, J. S. Asymmetric winter warming advanced plant phenology to a greater extent than symmetric warming in an alpine meadow. Funct. Ecol. 31, 2147–2156. https://doi.org/10.1111/1365-2435.12909 (2017).

    Article 

    Google Scholar 

  • Lamprecht, A. et al. Changes in plant diversity in a water-limited and isolated high-mountain range (Sierra Nevada, Spain). Alpine Bot. 131, 27–39. https://doi.org/10.1007/s00035-021-00246-x (2021).

    Article 

    Google Scholar 

  • Barthlott, W., Mutke, J., Rafiqpoor, D., Kier, G. & Kreft, H. Global centers of vascular plant diversity. Nova Acta Leopold. 92, 61–83 (2005).

    Google Scholar 

  • Kier, G. et al. A global assessment of endemism and species richness across island and mainland regions. Proc. Natl. Acad. Sci. 106, 9322–9327. https://doi.org/10.1073/pnas.0810306106 (2009).

    ADS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • Huang, S.-F. Historical biogeography of the flora of Taiwan. J. Natl. Taiwan Museum 64, 33–63. https://doi.org/10.1111/j.1756-1051.1995.tb02123.x (2011).

    Article 

    Google Scholar 

  • Beck, H. E. et al. Present and future Köppen-Geiger climate classification maps at 1-km resolution. Sci. Data 5, 180214. https://doi.org/10.1038/sdata.2018.214 (2018).

    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • TCCIP. The past and future of climate in Taiwan. 1–31 (National Science and Technology Center for Disaster Reduction & Research Center for Environmental Change, Academia Sinica, New Taipei City, 2018).

  • Central Weather Bureau. in The Typhoon Database (ed Central Weather Bureau;) (https://rdc28.cwb.gov.tw/TDB/, 2021).

  • Henny, L., Thorncroft, C. D., Hsu, H.-H. & Bosart, L. F. Extreme rainfall in Taiwan: Seasonal statistics and trends. J. Climate https://doi.org/10.1175/jcli-d-20-0999.1 (2021).

    Article 

    Google Scholar 

  • Tu, J.-Y. & Chou, C. Changes in precipitation frequency and intensity in the vicinity of Taiwan: Typhoon versus non-typhoon events. Environ. Res. Lett. 8, 014023. https://doi.org/10.1088/1748-9326/8/1/014023 (2013).

    ADS 
    Article 

    Google Scholar 

  • Liang, A., Oey, L., Huang, S. & Chou, S. Long-term trends of typhoon-induced rainfall over Taiwan: In situ evidence of poleward shift of typhoons in western North Pacific in recent decades. J. Geophys. Res. Atmos. 122, 2750–2765. https://doi.org/10.1002/2017jd026446 (2017).

    ADS 
    Article 

    Google Scholar 

  • Lee, Y.-C., Wang, C.-C., Weng, S.-P., Chen, C.-T. & Cheng, C.-T. Future projections of meteorological drought characteristics in Taiwan. Atmos. Sci. https://doi.org/10.3966/025400022019034701003 (2019).

    Article 

    Google Scholar 

  • Kudo, G., Kawai, Y., Amagai, Y. & Winkler, D. E. Degradation and recovery of an alpine plant community: Experimental removal of an encroaching dwarf bamboo. Alpine Bot. 127, 75–83. https://doi.org/10.1007/s00035-016-0178-2 (2017).

    Article 

    Google Scholar 

  • Richman, S. K., Levine, J. M., Stefan, L. & Johnson, C. A. Asynchronous range shifts drive alpine plant–pollinator interactions and reduce plant fitness. Global Change Biol. 26, 3052–3064. https://doi.org/10.1111/gcb.15041 (2020).

    ADS 
    Article 

    Google Scholar 

  • Spasojevic, M. J., Bowman, W. D., Humphries, H. C., Seastedt, T. R. & Suding, K. N. Changes in alpine vegetation over 21 years: Are patterns across a heterogeneous landscape consistent with predictions? Ecosphere 4, 1–18. https://doi.org/10.1890/es13-00133.1 (2013).

    Article 

    Google Scholar 

  • Rogora, M. et al. Assessment of climate change effects on mountain ecosystems through a cross-site analysis in the Alps and Apennines. Sci. Total Environ. 624, 1429–1442. https://doi.org/10.1016/j.scitotenv.2017.12.155 (2018).

    ADS 
    CAS 
    Article 
    PubMed 

    Google Scholar 

  • Malanson, G. P., Resler, L. M., Butler, D. R. & Fagre, D. B. Mountain plant communities: Uncertain sentinels? Prog. Phys. Geogr. Earth Environ. 43, 521–543. https://doi.org/10.1177/0309133319843873 (2019).

    Article 

    Google Scholar 

  • Berauer, B. J. et al. Low resistance of montane and alpine grasslands to abrupt changes in temperature and precipitation regimes. Arct Antarct. Alp. Res. 51, 215–231. https://doi.org/10.1080/15230430.2019.1618116 (2019).

    Article 

    Google Scholar 

  • Körner, C. in Alpine Plant Life Ch. 9. Water relations, 333–383 (Springer, 2021).

  • Cai, Y. et al. Photosynthetic response of an alpine plant, rhododendron delavayi Franch, to water stress and recovery: The role of Mesophyll conductance. Front. Plant Sci. 6, 1089. https://doi.org/10.3389/fpls.2015.01089 (2015).

    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • Farooq, M., Wahid, A., Kobayashi, N., Fujita, D. & Basra, S. M. A. in Sustainable Agriculture (eds E. Lichtfouse et al.) 153–188 (Springer, 2009).

  • Greenwood, S., Chen, J. C., Chen, C. T. & Jump, A. S. Temperature and sheltering determine patterns of seedling establishment in an advancing subtropical treeline. J. Veg. Sci. 26, 711–721. https://doi.org/10.1111/jvs.12269 (2015).

    Article 

    Google Scholar 

  • Morley, P. J., Donoghue, D. N. M., Chen, J. C. & Jump, A. S. Montane forest expansion at high elevations drives rapid reduction in non-forest area, despite no change in mean forest elevation. J. Biogeogr. 47, 2405–2416. https://doi.org/10.1111/jbi.13951 (2020).

    Article 

    Google Scholar 

  • Salick, J., Ghimire, S. K., Fang, Z., Dema, S. & Konchar, K. M. Himalayan alpine vegetation, climate change and mitigation. J. Ethnobiol. 34, 276–293. https://doi.org/10.2993/0278-0771-34.3.276 (2014).

    Article 

    Google Scholar 

  • Winkler, M. et al. The rich sides of mountain summits–a pan-European view on aspect preferences of alpine plants. J. Biogeogr. 43, 2261–2273. https://doi.org/10.1111/jbi.12835 (2016).

    Article 

    Google Scholar 

  • Verheyen, K. et al. Combining biodiversity resurveys across regions to advance global change research. Bioscience 67, 73–83. https://doi.org/10.1093/biosci/biw150 (2016).

    Article 
    PubMed 

    Google Scholar 

  • Ganjurjav, H. et al. Complex responses of spring vegetation growth to climate in a moisture-limited alpine meadow. Sci. Rep. 6, 1–10. https://doi.org/10.1038/srep23356 (2016).

    CAS 
    Article 

    Google Scholar 

  • Nagy, L., Kreyling, J., Gellesch, E., Beierkuhnlein, C. & Jentsch, A. Recurring weather extremes alter the flowering phenology of two common temperate shrubs. Int. J. Biometeorol. 57, 579–588. https://doi.org/10.1007/s00484-012-0585-z (2013).

    ADS 
    CAS 
    Article 
    PubMed 

    Google Scholar 

  • Jump, A. S., Huang, T.-J. & Chou, C.-H. Rapid altitudinal migration of mountain plants in Taiwan and its implications for high altitude biodiversity. Ecography 35, 204–210. https://doi.org/10.1111/j.1600-0587.2011.06984.x (2012).

    Article 

    Google Scholar 

  • Cowles, J., Boldgiv, B., Liancourt, P., Petraitis, P. S. & Casper, B. B. Effects of increased temperature on plant communities depend on landscape location and precipitation. Ecol. Evol. 8, 5267–5278. https://doi.org/10.1002/ece3.3995 (2018).

    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • Oldfather, M. F. & Ackerly, D. D. Increases in thermophilus plants in an arid alpine community in response to experimental warming. Arct. Antarct. Alp. Res. 51, 201–214. https://doi.org/10.1080/15230430.2019.1618148 (2019).

    Article 

    Google Scholar 

  • Shao, K.-T. Taiwan’s biodiversity research achievements over the past 10 years (2001–2011). Biodivers. Sci. https://doi.org/10.3724/sp.j.1003.2012.06123 (2012).

    Article 

    Google Scholar 

  • Chen, J.-M., Lu, F.-C., Kuo, S.-L. & Shih, C.-F. Summer climate variability in Taiwan and associated large-scale processes. J. Meteorol. Soc. Japan 83, 499–516. https://doi.org/10.2151/jmsj.83.499 (2005).

    ADS 
    Article 

    Google Scholar 

  • Chen, T.-C., Wang, S.-Y., Huang, W.-R. & Yen, M.-C. Variation of the East Asian summer monsoon rainfall. J. Climate 17, 744–762. https://doi.org/10.1175/1520-0442(2004)017%3c0744:voteas%3e2.0.co;2 (2004).

    ADS 
    Article 

    Google Scholar 

  • Thornthwaite, C. W. An approach toward a rational classification of climate. Geogr. Rev. 38, 55. https://doi.org/10.2307/210739 (1948).

    Article 

    Google Scholar 

  • Kambach, S. et al. Of niches and distributions: Range size increases with niche breadth both globally and regionally but regional estimates poorly relate to global estimates. Ecography 42, 467–477. https://doi.org/10.1111/ecog.03495 (2019).

    Article 

    Google Scholar 

  • Luna, B. & Moreno, J. M. Range-size, local abundance and germination niche-breadth in Mediterranean plants of two life-forms. Plant Ecol. 210, 85–95. https://doi.org/10.1007/s11258-010-9740-y (2010).

    Article 

    Google Scholar 

  • Newbold, T. Applications and limitations of museum data for conservation and ecology, with particular attention to species distribution models. Prog. Phys. Geog. 34, 3–22. https://doi.org/10.1177/0309133309355630 (2010).

    Article 

    Google Scholar 

  • Karger, D. N., Wilson, A. M., Mahony, C., Zimmermann, N. E. & Jetz, W. Global daily 1 km land surface precipitation based on cloud cover-informed downscaling. Sci. Data 8, 307. https://doi.org/10.1038/s41597-021-01084-6 (2021).

    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • Welham, S. J., Gezan, S. A., Clark, S. J. & Mead, A. Statistical Methods in Biology: Design and Analysis of Experiments and Regression. (Chapman and Hall/CRC, 2014).

  • R: A Language and Environment for Statistical Computing v. 4.0.3 (2021).

  • Beguería, S., Vicente-Serrano, S. M., Reig, F. & Latorre, B. Standardized precipitation evapotranspiration index (SPEI) revisited: Parameter fitting, evapotranspiration models, tools, datasets and drought monitoring. Int. J. Climatol. 34, 3001–3023. https://doi.org/10.1002/joc.3887 (2014).

    Article 

    Google Scholar 

  • rgbif: Interface to the Global Biodiversity Information Facility API v. 3.7.1 (2022).


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