Enhancement of the tolerance of Arabidopsis to high temperatures by genetic engineering of the synthesis of glycinebetaine

被引:122
|
作者
Alia
Hayashi, H
Sakamoto, A
Murata, N [1 ]
机构
[1] Natl Inst Basic Biol, Dept Regulat Biol, Okazaki, Aichi 4448585, Japan
[2] Leiden Univ, Huygens Lab, Dept Biophys, NL-2300 RA Leiden, Netherlands
[3] Ehime Univ, Dept Chem, Matsuyama, Ehime 7908577, Japan
来源
PLANT JOURNAL | 1998年 / 16卷 / 02期
关键词
D O I
10.1046/j.1365-313x.1998.00284.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Arabidopsis thaliana was transformed with the codA gene for choline oxidase from Arthrobacter globiformis under control of the 35S RNA promoter of cauliflower mosaic virus. As a result, high levels of glycinebetaine accumulated in the seeds of transformed plants. Transformation with the codA gene significantly enhanced the tolerance to high temperatures during the imbibition and germination of seeds, as well as during growth of young seedlings. The extent of enhancement of the tolerance to high temperature was correlated with levers of choline oxidase expressed and of glycinebetine accumulated in the transformed plants. The induction of homologues of heat shock protein 70 at high temperature was less conspicuous in the transformed plants than in the wild-type plants, suggesting that the transformation alleviated the high-temperature stress.
引用
收藏
页码:155 / 161
页数:7
相关论文
共 50 条
  • [21] Plant responses to drought, salinity and extreme temperatures: towards genetic engineering for stress tolerance
    Wang, WX
    Vinocur, B
    Altman, A
    PLANTA, 2003, 218 (01) : 1 - 14
  • [22] Genetic engineering of the biosynthesis of glycinebetaine enhances thermotolerance of photosystem II in tobacco plants
    Yang, Xinghong
    Wen, Xiaogang
    Gong, Hongmei
    Lu, Qingtao
    Yang, Zhipan
    Tang, Yunlai
    Liang, Zheng
    Lu, Congming
    PLANTA, 2007, 225 (03) : 719 - 733
  • [23] Genetic engineering of the biosynthesis of glycinebetaine enhances thermotolerance of photosystem II in tobacco plants
    Xinghong Yang
    Xiaogang Wen
    Hongmei Gong
    Qingtao Lu
    Zhipan Yang
    Yunlai Tang
    Zheng Liang
    Congming Lu
    Planta, 2007, 225 : 719 - 733
  • [24] Natural genetic variation of freezing tolerance in arabidopsis
    Hannah, Matthew A.
    Wiese, Dana
    Freund, Susanne
    Fiehn, Oliver
    Heyer, Arnd G.
    Hincha, Dirk K.
    PLANT PHYSIOLOGY, 2006, 142 (01) : 98 - 112
  • [25] Engineering treralose biosynthesis improves stress tolerance in Arabidopsis
    Tamminen, K
    Puhakainen, T
    Mäkelä, P
    Hohnström, KO
    Müller, J
    Heino, P
    Palva, ET
    PLANT COLD HARDINESS: GENE REGULATION AND GENETIC ENGINEERING, 2002, : 249 - 257
  • [26] Transformation of Arabidopsis thaliana with the codA gene for choline oxidase; accumulation of glycinebetaine and enhanced tolerance to salt and cold stress
    Hayashi, H
    Alia
    Mustardy, L
    Deshnium, P
    Ida, M
    Murata, N
    PLANT JOURNAL, 1997, 12 (01): : 133 - 142
  • [27] Genetic Engineering In BioButanol Production And Tolerance
    Rao, Ashok
    Sathiavelu, A.
    Mythili, S.
    BRAZILIAN ARCHIVES OF BIOLOGY AND TECHNOLOGY, 2016, 59
  • [28] Genetic engineering for heat tolerance in plants
    Singh A.
    Grover A.
    Physiology and Molecular Biology of Plants, 2008, 14 (1-2) : 155 - 166
  • [29] Enhancement of Thiamin Content in Arabidopsis thaliana by Metabolic Engineering
    Dong, Wei
    Stockwell, Virginia O.
    Goyer, Aymeric
    PLANT AND CELL PHYSIOLOGY, 2015, 56 (12) : 2285 - 2296
  • [30] Genetic tolerance to low temperatures in irrigated rice
    Streck, Eduardo Anibele
    Aguiar, Gabriel Almeida
    da Silva, Pedro Ujacov
    Lang Fronza, Rafael Tobias
    de Magalhaes Junior, Ariano Martins
    REVISTA CIENCIA AGRONOMICA, 2020, 51 (03):