Linkages between stratospheric ozone, UV radiation and climate change and their implications for terrestrial ecosystems

被引:0
|
作者
Janet F. Bornman
Paul W. Barnes
T. Matthew Robson
Sharon A. Robinson
Marcel A. K. Jansen
Carlos L. Ballaré
Stephan D. Flint
机构
[1] Health,College of Science
[2] Engineering and Education,Department of Biological Sciences and Environment Program
[3] Murdoch University,Research Programme in Organismal and Evolutionary Biology
[4] Loyola University,Centre for Sustainable Ecosystem Solutions
[5] Viikki Plant Science Centre,Plant Ecophysiology Group, School of Biological
[6] School of Earth,University of Buenos Aires
[7] Atmosphere and Life Sciences and Global Challenges Program,Department of Forest, Rangeland and Fire Sciences
[8] University of Wollongong,undefined
[9] Earth and Environmental Sciences,undefined
[10] UCC,undefined
[11] Faculty of Agronomy and IFEVA-CONICET,undefined
[12] and IIB,undefined
[13] National University of San Martin,undefined
[14] University of Idaho,undefined
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Exposure of plants and animals to ultraviolet-B radiation (UV-B; 280–315 nm) is modified by stratospheric ozone dynamics and climate change. Even though stabilisation and projected recovery of stratospheric ozone is expected to curtail future increases in UV-B radiation at the Earth’s surface, on-going changes in climate are increasingly exposing plants and animals to novel combinations of UV-B radiation and other climate change factors (e.g., ultraviolet-A and visible radiation, water availability, temperature and elevated carbon dioxide). Climate change is also shifting vegetation cover, geographic ranges of species, and seasonal timing of development, which further modifies exposure to UV-B radiation. Since our last assessment, there has been increased understanding of the underlying mechanisms by which plants perceive UV-B radiation, eliciting changes in growth, development and tolerances of abiotic and biotic factors. However, major questions remain on how UV-B radiation is interacting with other climate change factors to modify the production and quality of crops, as well as important ecosystem processes such as plant and animal competition, pest-pathogen interactions, and the decomposition of dead plant matter (litter) In addition, stratospheric ozone depletion is directly contributing to climate change in the southern hemisphere, such that terrestrial ecosystems in this region are being exposed to altered patterns of precipitation, temperature and fire regimes as well as UV-B radiation. These ozone-driven changes in climate have been implicated in both increases and reductions in the growth, survival and reproduction of plants and animals in Antarctica, South America and New Zealand. In this assessment, we summarise advances in our knowledge of these and other linkages and effects, and identify uncertainties and knowledge gaps that limit our ability to fully evaluate the ecological consequences of these environmental changes on terrestrial ecosystems.
引用
收藏
页码:681 / 716
页数:35
相关论文
共 50 条
  • [1] Linkages between stratospheric ozone, UV radiation and climate change and their implications for terrestrial ecosystems
    Bornman, Janet F.
    Barnes, Paul W.
    Robson, T. Matthew
    Robinson, Sharon A.
    Jansen, Marcel A. K.
    Ballare, Carlos L.
    Flint, Stephan D.
    [J]. PHOTOCHEMICAL & PHOTOBIOLOGICAL SCIENCES, 2019, 18 (03) : 681 - 716
  • [2] The interactive effects of stratospheric ozone depletion, UV radiation, and climate change on aquatic ecosystems
    Williamson, Craig E.
    Neale, Patrick J.
    Hylander, Samuel
    Rose, Kevin C.
    Figueroa, Felix L.
    Robinson, Sharon A.
    Haeder, Donat-P.
    Wangberg, Sten-Ake
    Worrest, Robert C.
    [J]. PHOTOCHEMICAL & PHOTOBIOLOGICAL SCIENCES, 2019, 18 (03) : 717 - 746
  • [3] The interactive effects of stratospheric ozone depletion, UV radiation, and climate change on aquatic ecosystems
    Craig E. Williamson
    Patrick J. Neale
    Samuel Hylander
    Kevin C. Rose
    Félix L. Figueroa
    Sharon A. Robinson
    Donat-P. Häder
    Sten-Åke Wä
    Robert C. Worrest
    [J]. Photochemical & Photobiological Sciences, 2019, 18 : 717 - 746
  • [4] The response of aquatic ecosystems to the interactive effects of stratospheric ozone depletion, UV radiation, and climate change
    Neale, P. J.
    Williamson, C. E.
    Banaszak, A. T.
    Haeder, D. -p.
    Hylander, S.
    Ossola, R.
    Rose, K. C.
    Waengberg, S. -a.
    Zepp, R.
    [J]. PHOTOCHEMICAL & PHOTOBIOLOGICAL SCIENCES, 2023, 22 (05) : 1093 - 1127
  • [5] The response of aquatic ecosystems to the interactive effects of stratospheric ozone depletion, UV radiation, and climate change
    P. J. Neale
    C. E. Williamson
    A. T. Banaszak
    D.-P. Häder
    S. Hylander
    R. Ossola
    K. C. Rose
    S.-Å. Wängberg
    R. Zepp
    [J]. Photochemical & Photobiological Sciences, 2023, 22 : 1093 - 1127
  • [6] STRATOSPHERIC OZONE REDUCTION, SOLAR UV-B RADIATION AND TERRESTRIAL ECOSYSTEMS
    CALDWELL, MM
    FLINT, SD
    [J]. CLIMATIC CHANGE, 1994, 28 (04) : 375 - 394
  • [7] Stratospheric ozone, UV radiation, and climate interactions
    G. H. Bernhard
    A. F. Bais
    P. J. Aucamp
    A. R. Klekociuk
    J. B. Liley
    R. L. McKenzie
    [J]. Photochemical & Photobiological Sciences, 2023, 22 : 937 - 989
  • [8] Stratospheric ozone, UV radiation, and climate interactions
    Bernhard, G. H.
    Bais, A. F.
    Aucamp, P. J.
    Klekociuk, A. R.
    Liley, J. B.
    McKenzie, R. L.
    [J]. PHOTOCHEMICAL & PHOTOBIOLOGICAL SCIENCES, 2023, 22 (05) : 937 - 989
  • [9] Comparing the impacts of climate change on the responses and linkages between terrestrial and aquatic ecosystems
    Haeder, Donat-P.
    Barnes, Paul W.
    [J]. SCIENCE OF THE TOTAL ENVIRONMENT, 2019, 682 : 239 - 246
  • [10] Stratospheric ozone, ultraviolet radiation and climate change
    Boucher, Olivier
    [J]. WEATHER, 2010, 65 (04) : 105 - 110