Improving plant drought, salt, and freezing tolerance by gene transfer of a single stress-inducible transcription factor

被引:1500
作者
Kasuga, M
Liu, Q
Miura, S
Yamaguchi-Shinozaki, K
Shinozaki, K
机构
[1] Minist Agr Forestry & Fisheries, Japan Int Res Ctr Agr Sci, Biol Resources Div, Tsukuba, Ibaraki 3058686, Japan
[2] RIKEN, Inst Phys & Chem Res, Tsukuba Life Sci Ctr, Plant Mol Biol Lab, Tsukuba, Ibaraki 3050074, Japan
基金
日本科学技术振兴机构;
关键词
drought tolerance; freezing tolerance; transgenic plants; multigene expression; stress-inducible promoter;
D O I
10.1038/7036
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Plant productivity is greatly affected by environmental stresses such as drought, salt loading, and freezing. We reported previously that a cis-acting promoter element, the dehydration response element (DRE), plays an important role in regulating gene expression in response to these stresses, The transcription factor DREB1A specifically interacts with the DRE and induces expression of stress tolerance genes. We show here that overexpression of the cDNA encoding DREB1A in transgenic plants activated the expression of many of these stress tolerance genes under normal growing conditions and resulted in improved tolerance to drought, salt loading, and freezing. However, use of the strong constitutive 35S cauliflower mosaic virus (CaMV) promoter to drive expression of DREB1A also resulted in severe growth retardation under normal growing conditions. In contrast, expression of DREB1A from the stress inducible rd29A promoter gave rise to minimal effects on plant growth while providing an even greater tolerance to stress conditions than did expression of the gene from the CaMV promoter.
引用
收藏
页码:287 / 291
页数:5
相关论文
共 35 条
  • [1] Constitutive expression of the cold-regulated Arabidopsis thaliana COR15a gene affects both chloroplast and protoplast freezing tolerance
    Artus, NN
    Uemura, M
    Steponkus, PL
    Gilmour, SJ
    Lin, CT
    Thomashow, MF
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1996, 93 (23) : 13404 - 13409
  • [2] BECHTOLD N, 1993, CR ACAD SCI III-VIE, V316, P1194
  • [3] Plant responses to water deficit
    Bray, EA
    [J]. TRENDS IN PLANT SCIENCE, 1997, 2 (02) : 48 - 54
  • [4] COMMON AMINO-ACID SEQUENCE DOMAINS AMONG THE LEA PROTEINS OF HIGHER-PLANTS
    DURE, L
    CROUCH, M
    HARADA, J
    HO, THD
    MUNDY, J
    QUATRANO, R
    THOMAS, T
    SUNG, ZR
    [J]. PLANT MOLECULAR BIOLOGY, 1989, 12 (05) : 475 - 486
  • [5] CDNA SEQUENCE-ANALYSIS AND EXPRESSION OF 2 COLD-REGULATED GENES OF ARABIDOPSIS-THALIANA
    GILMOUR, SJ
    ARTUS, NN
    THOMASHOW, MF
    [J]. PLANT MOLECULAR BIOLOGY, 1992, 18 (01) : 13 - 21
  • [6] 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
    [J]. PLANT JOURNAL, 1997, 12 (01) : 133 - 142
  • [7] Improving stress tolerance in plants by gene transfer
    Holmberg, N
    Bulow, L
    [J]. TRENDS IN PLANT SCIENCE, 1998, 3 (02) : 61 - 66
  • [8] The molecular basis of dehydration tolerance in plants
    Ingram, J
    Bartels, D
    [J]. ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1996, 47 : 377 - 403
  • [9] Low-temperature resistance of higher plants is significantly enhanced by a nonspecific cyanobacterial desaturase
    IshizakiNishizawa, O
    Fujii, T
    Azuma, M
    Sekiguchi, K
    Murata, N
    Ohtani, T
    Toguri, T
    [J]. NATURE BIOTECHNOLOGY, 1996, 14 (08) : 1003 - 1006
  • [10] Iwasaki T., 1997, PLANT PHYSIOL, V115, P1287