Citrulline and DRIP-1 protein (ArgE homologue) in drought tolerance of wild watermelon

被引:113
|
作者
Yokota, A [1 ]
Kawasaki, S [1 ]
Iwano, M [1 ]
Nakamura, C [1 ]
Miyake, C [1 ]
Akashi, K [1 ]
机构
[1] Nara Inst Sci & Technol, Grad Sch Biol Sci, Dept Mol Biol, Nara 6300101, Japan
基金
日本学术振兴会;
关键词
wild watermelon (Citrullus lanatus L.); drought; photosynthesis; electron sink; active oxygen; ascorbate peroxidase; citrulline; arginine; gamma-aminobutyrate; ArgE;
D O I
10.1093/aob/mcf074
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Drought-affected plants experience more than just desiccation of their organs due to water deficit. Plants transpire 1000 times more molecules of water than of CO2 fixed by photosynthesis in full Sunlight. One effect of transpiration is to cool the leaves. Accordingly, drought brings about such multi-stresses as high temperatures, excess photoradiation and other factors that affect plant viability. Wild watermelon serves as a Suitable model system to study drought responses Of C-3 plants, since this plant survives drought by maintaining its water content without any wilting of leaves or desiccation even under severe drought conditions. Under drought conditions in the presence of strong light, wild watermelon accumulates high concentrations of citrulline, glutamate and arginine in its leaves. The accumulation of citrulline and arginine may be related to the induction of DRIP-1, a homologue of ArgE in Escherichia coli, where it functions to incorporate the carbon skeleton of glutamate into the urea cycle. Immunogold electron microscopy reveals the enzyme to be confined exclusively to the cytosol. DRIP-1 is also induced by treating wild watermelon with 150 mM NaCl, but is not induced following treatment with 100 mum abscisic acid. The salt treatment causes the accumulation of gamma-aminobutyrate, glutamine and alanine, in addition to a smaller amount of citrulline. citrulline may function as a potent hydroxyl radical scavenger. (C) 2002 Annals of Botany Company.
引用
收藏
页码:825 / 832
页数:8
相关论文
共 30 条
  • [1] Responses of wild watermelon to drought stress: Accumulation of an ArgE homologue and citrulline in leaves during water deficits
    Kawasaki, S
    Miyake, C
    Kohchi, T
    Fujii, S
    Uchida, M
    Yokota, A
    PLANT AND CELL PHYSIOLOGY, 2000, 41 (07) : 864 - 873
  • [2] Citrulline can be used as a biochemical marker in watermelon screening studies for tolerance to drought and salinity
    Kusvuran, S.
    Dasgan, H. Y.
    Sari, N.
    Solmaz, I.
    CUCURBITACEAE 2012: PROCEEDINGS OF THE XTH EUCARPIA MEETING ON GENETICS AND BREEDING OF CUCURBITACEAE, 2012, : 379 - 384
  • [3] Citrulline, a novel compatible solute in drought-tolerant wild watermelon leaves, is an efficient hydroxyl radical scavenger
    Akashi, K
    Miyake, C
    Yokota, A
    FEBS LETTERS, 2001, 508 (03) : 438 - 442
  • [4] Drought stress tolerance mechanisms and their potential common indicators to salinity, insights from the wild watermelon (Citrullus lanatus): A review
    Malambane, Goitseone
    Madumane, Kelebogile
    Sewelo, Lesego T.
    Batlang, Utlwang
    FRONTIERS IN PLANT SCIENCE, 2023, 13
  • [5] Programmed proteome response for drought avoidance/tolerance in the root of a C3 xerophyte (wild watermelon) under water deficits
    Yoshimura, Kazuya
    Masuda, Akiko
    Kuwano, Masayoshi
    Yokota, Akiho
    Akashi, Kinya
    PLANT AND CELL PHYSIOLOGY, 2008, 49 (02) : 226 - 241
  • [6] The α-subunit of the rice heterotrimeric G protein, RGA1, regulates drought tolerance during the vegetative phase in the dwarf rice mutant d1
    Ferrero-Serrano, Angel
    Assmann, Sarah M.
    JOURNAL OF EXPERIMENTAL BOTANY, 2016, 67 (11) : 3433 - 3443
  • [7] Overexpression of expansin EaEXPA1, a cell wall loosening protein enhances drought tolerance in sugarcane
    Narayan, J. Ashwin
    Chakravarthi, M.
    Nerkar, Gauri
    Manoj, V. M.
    Dharshini, S.
    Subramonian, N.
    Premachandran, M. N.
    Kumar, R. Arun
    Surendar, K. Krishna
    Hemaprabha, G.
    Ram, Bakshi
    Appunu, C.
    INDUSTRIAL CROPS AND PRODUCTS, 2021, 159
  • [8] The Pepper Late Embryogenesis Abundant Protein, CaDIL1, Positively Regulates Drought Tolerance and ABA Signaling
    Lim, Junsub
    Lim, Chae Woo
    Lee, Sung Chul
    FRONTIERS IN PLANT SCIENCE, 2018, 9
  • [9] Overexpression of OsEm1 encoding a group I LEA protein confers enhanced drought tolerance in rice
    Yu, Jing
    Lai, Yongmin
    Wu, Xi
    Wu, Gang
    Guo, Changkui
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2016, 478 (02) : 703 - 709
  • [10] Overexpression of the RNA binding protein MhYTP1 in transgenic apple enhances drought tolerance and WUE by improving ABA level under drought condition
    Guo, Tianli
    Wang, Na
    Xue, Yangchun
    Guan, Qingmei
    van Nocker, Steven
    Liu, Changhai
    Ma, Fengwang
    PLANT SCIENCE, 2019, 280 : 397 - 407