Hydrogen Sulfide May Function Downstream of Nitric Oxide in Ethylene-Induced Stomatal Closure in Vicia faba L.

被引:0
|
作者
LIU Jing [1 ]
HOU Zhi-hui [1 ]
LIU Guo-hua [1 ]
HOU Li-xia [1 ]
LIU Xin [1 ]
机构
[1] Key Laboratory of Plant Biotechnology in Universities of Shandong Province/College of Life Science, Qingdao Agricultural University
基金
美国国家科学基金会; 中国国家自然科学基金;
关键词
hydrogen sulfide; nitric oxide; ethylene; stomatal closure; Vicia faba L;
D O I
暂无
中图分类号
S643.6 [蚕豆];
学科分类号
090202 ;
摘要
Pharmacological, laser scanning confocal microscopic (LSCM), and spectrophotographic approaches were used to study the roles of hydrogen sulfide (H2S) and nitric oxide (NO) in signaling transduction of stomatal movement in response to ethylene in Vicia faba L. Ethylene treatment resulted in the dose-dependent stomatal closure under light, and this effect was blocked by the inhibitors of H2S biosynthesis in V. faba L. Additionally, ethylene induces H2S generation and increases L-/D-cysteine desulfhydrase (pyridoxalphosphate-dependent enzyme) activity in leaves of V. faba L. Inhibitors of H2S biosynthesis have no effect on the ethylene-induced stomatal closure, NO accumulation, and nitrate reductase (NR) activity in guard cells or leaves of V. faba L. Moreover, the ethylene-induced increase of H2S levels and L-/D- cysteine desulfhydrase activity declined when NO generation was inhibited. Therefore, we conclude that H2S and NO probably are involved in the signal transduction pathway of ethylene-induced stomatal closure. H2S may represent a novel component downstream of NO in the ethylene-induced stomatal movement in V. faba L.
引用
收藏
页码:1644 / 1653
页数:10
相关论文
共 50 条
  • [41] Inhibitors of ethylene synthesis inhibit auxin-induced stomatal opening in epidermis detached from leaves of Vicia faba L.
    Merritt, F
    Kemper, A
    Tallman, G
    PLANT AND CELL PHYSIOLOGY, 2001, 42 (02) : 223 - 230
  • [42] Carbon Monoxide-induced Stomatal Closure Involves Generation of Hydrogen Peroxide in Vicia faba Guard Cells
    She, Xiao-Ping
    Song, Xi-Gui
    JOURNAL OF INTEGRATIVE PLANT BIOLOGY, 2008, 50 (12) : 1539 - 1548
  • [43] Nitric oxide is involved in ethylene-induced adventitious root development in cucumber (Cucumis sativus L.) explants
    Xu, Xiao-Ting
    Jin, Xin
    Liao, Wei-Biao
    Dawuda, Mohammed Mujitaba
    Li, Xue-Ping
    Wang, Meng
    Niu, Li-Juan
    Ren, Peng-Ju
    Zhu, Yong-Chao
    SCIENTIA HORTICULTURAE, 2017, 215 : 65 - 71
  • [44] Carbon Monoxide-induced Stomatal Closure Involves Generation of Hydrogen Peroxide in Vicia faba Guard Cells
    Xiao-Ping She and Xi-Gui Song(School of Life Sciences
    JournalofIntegrativePlantBiology, 2008, (12) : 1539 - 1548
  • [45] Nitric oxide signaling is involved in arsenic-induced guard cell death in Vicia faba L. (Fabaceae)
    Meizhao Xue
    Huilan Yi
    Brazilian Journal of Botany, 2017, 40 : 635 - 642
  • [46] Nitric oxide signaling is involved in arsenic-induced guard cell death in Vicia faba L. (Fabaceae)
    Xue, Meizhao
    Yi, Huilan
    BRAZILIAN JOURNAL OF BOTANY, 2017, 40 (03) : 635 - 642
  • [47] Hydrogen peroxide generated by copper amine oxidase is involved in abscisic acid-induced stomatal closure in Vicia faba
    An, Zhenfeng
    Jing, Wen
    Liu, Youliang
    Zhang, Wenhua
    JOURNAL OF EXPERIMENTAL BOTANY, 2008, 59 (04) : 815 - 825
  • [48] Inhibition of dark-induced stomatal closure by fusicoccin involves a removal of hydrogen peroxide in guard cells of Vicia faba
    She, Xiao-Ping
    Huang, Ai-Xia
    Li, Jin
    Han, Xi-Zhu
    PHYSIOLOGIA PLANTARUM, 2010, 140 (03) : 258 - 268
  • [49] Recent advancements in the mechanism of nitric oxide signaling associated with hydrogen sulfide and melatonin crosstalk during ethylene-induced fruit ripening in plants
    Mukherjee, Soumya
    NITRIC OXIDE-BIOLOGY AND CHEMISTRY, 2019, 82 : 25 - 34
  • [50] Hydrogen sulphide may be a novel downstream signal molecule in nitric oxide-induced heat tolerance of maize (Zea mays L.) seedlings
    Li, Zhong-Guang
    Yang, Shi-Zhong
    Long, Wei-Biao
    Yang, Guo-Xian
    Shen, Zhen-Zhen
    PLANT CELL AND ENVIRONMENT, 2013, 36 (08): : 1564 - 1572