Screening of Visible and UV Radiation as a Photoprotective Mechanism in Plants

被引:146
|
作者
Solovchenko, A. E. [1 ]
Merzlyak, M. N. [1 ]
机构
[1] Moscow MV Lomonosov State Univ, Dept Physiol Microorganisms, Fac Biol, Moscow 119991, Russia
基金
俄罗斯基础研究基金会;
关键词
anthocyanins; betalains; carotenoids; photoadaptation; phenolic compounds; photoprotection; photodamage; screening;
D O I
10.1134/S1021443708060010
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Prolonged exposure of plants to high fluxes of solar radiation as well as to other environmental stressors disturbs the balance between absorbed light energy and capacity of its photochemical utilization resulting in photoinhibition of and eventually in damage to plants. Under such circumstances, the limiting of the light absorption by the photosynthetic apparatus efficiently augments the general photoprotective mechanisms of the plant cell, such as reparation of macromolecules, elimination of reactive oxygen species, and thermal dissipation of the excessive light energy absorbed. Under stressful conditions, plants accumulate, in different cell compartments and tissue structures, pigments capable of attenuation of the radiation in the UV and visible parts of the spectrum. To the date, four principle key groups of photoprotective pigments are known: mycosporine-like amino acids, phenolic compounds (including phenolic acids, flavonols, and anthocyanins), alkaloids (betalains), and carotenoids. The accumulation of UV-absorbing compounds (mycosporine-like amino acids and phenolics in lower and higher plants, respectively) is a ubiquitous mechanism of adaptation to and protection from the damage by high fluxes of solar radiation developed by photoautotrophic organisms at the early stages of their evolution. Extrathylakoid carotenoids, betalains, and anthocyanins play an important role in long-term adaptation to the illumination conditions and in protection of plants against photodamage. A prominent feature of certain plant taxa lacking some classes of photoprotective pigments (such as anthocyanins) is their substitution by other compounds (e.g. keto-carotenoids or betalains) disparate in terms of chemical structure and subcellular localization but possessing close spectral properties.
引用
收藏
页码:719 / 737
页数:19
相关论文
共 50 条
  • [21] INSTRUMENTATION AND MEASUREMENT OF UV, VISIBLE AND IR RADIATION
    SLINEY, DH
    BASON, FC
    FREASIER, BC
    FREASIER, BH
    AMERICAN INDUSTRIAL HYGIENE ASSOCIATION JOURNAL, 1970, 31 (02): : 45 - &
  • [22] The Multifaceted Responses of Plants to Visible and Ultraviolet Radiation
    Santin, Marco
    Castagna, Antonella
    PLANTS-BASEL, 2024, 13 (05):
  • [23] Protective strategies in plants exposed to high visible and UV-B (280-315 nm) radiation
    Bornman, JF
    PHOTOSYNTHESIS: MECHANISMS AND EFFECTS, VOLS I-V, 1998, : 3973 - 3978
  • [24] Sensing of UV-B radiation by plants
    Jiang, Lei
    Wang, Yan
    Bjorn, Lars Olof
    He, Jun-Xian
    Li, Shao-Shan
    PLANT SIGNALING & BEHAVIOR, 2012, 7 (08) : 999 - 1003
  • [25] Effect of Exclusion of Solar UV radiation on Plants
    Kataria, Sunita
    Baroniya, Sanjay S.
    Baghel, Lokesh
    Kanungo, Mansi
    PLANT SCIENCE TODAY, 2014, 1 (04): : 224 - 232
  • [26] Correlation of UV-radiation and visible light to health
    Morsky, Janne
    Renkonen, Risto
    Sahko, 1988, 61 (06): : 24 - 25
  • [27] BEHAVIOR OF BURST NOISE UNDER UV AND VISIBLE RADIATION
    RODRIGUEZ, T
    LUQUE, A
    SOLID-STATE ELECTRONICS, 1976, 19 (07) : 573 - 575
  • [28] UPCONVERSION OF IR RADIATION INTO THE VISIBLE AND UV RANGES.
    Popov, A.K.
    1600, (25): : 1 - 2
  • [29] Tolerance of North Sea algae to UV and visible radiation
    Yakovleva, IM
    Dring, M
    Titlyanov, EA
    RUSSIAN JOURNAL OF PLANT PHYSIOLOGY, 1998, 45 (01) : 45 - 54
  • [30] Spectral Radiation Dependent Photoprotective Mechanism in the Diatom Pseudo-nitzschia multistriata
    Brunet, Christophe
    Chandrasekaran, Raghu
    Barra, Lucia
    Giovagnetti, Vasco
    Corato, Federico
    Ruban, Alexander V.
    PLOS ONE, 2014, 9 (01):