Functional genomics of salt tolerance:: the yeast overexpression approach

被引:9
|
作者
Serrano, R [1 ]
Montesinos, C [1 ]
Gaxiola, R [1 ]
Ríos, G [1 ]
Forment, J [1 ]
Leube, M [1 ]
Mulet, JM [1 ]
Naranjo, MA [1 ]
Roldán, M [1 ]
Vicente, O [1 ]
Kanhonou, RA [1 ]
Rausell, A [1 ]
Ros, R [1 ]
机构
[1] Univ Politecn Valencia, CSIC, Inst Biol Mol & Celular Plantas, E-46071 Valencia, Spain
关键词
Saccharomyces cerevisiae; Arabidopsis; sugar beet; ion transport; sulfate; RNA processing; protein synthesis;
D O I
10.17660/ActaHortic.2003.609.2
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
The classical approach to salt tolerance consisted on the physiological and biochemical description of the responses of plants to this stress. This defined several crucial factors such as salt inclusion and exclusion from the aerial part, vacuolar compartmentation, osmolyte synthesis, stomatal regulation, abscisic acid, LEA proteins and antioxidant defences. In order to convert this knowledge into biotechnology, molecular biology is needed for the genetic modification of crop plants with halotolerance genes. These genes correspond to limiting steps susceptible of improvement and are identified by genetic screens based on gain-of-function. Random insertion of transcriptional enhancers in plant genomes ("activation tagging") is being pursued but still with low efficiency. Alternatively, we have developed a strategy based on random overexpression of genes in the yeast model system. By testing yeast and plant (Arabidopsis and sugar beet) gene libraries we have identified several halotolerance genes. They correspond to processes operating at the cellular level, related to antioxidant defences and Na+ homeostasis and conserved between yeast and plants. They include ascorbate peroxidase, serine acetyltransferase, Na+ extrusion and K+ uptake at the plasma membrane and several targets of Na+ toxicity such as sulfate and uracil metabolism, RNA processing and initiation of protein synthesis. As complex biological phenomena have several limiting factors, a significant increase in salt tolerance will require the simultaneous gain of function of many halotolerance genes, a plausible but not trivial task. It is ironic, however, that now that the tools for the generation of halotolerance crops start to be available., the radical ecologism recently imposed in Europe is preventing any further progress. This will have devastating consequences for the future of Mediterranean agriculture and environment.
引用
收藏
页码:31 / 38
页数:8
相关论文
共 50 条
  • [1] A genomics approach towards salt stress tolerance
    Bohnert, HJ
    Ayoubi, P
    Borchert, C
    Bressan, RA
    Burnap, RL
    Cushman, JC
    Cushman, MA
    Deyholos, M
    Fischer, R
    Galbraith, DW
    Hasegawa, PM
    Jenks, M
    Kawasaki, S
    Koiwa, H
    Kore-eda, S
    Lee, BH
    Michalowski, CB
    Misawa, E
    Nomura, M
    Ozturk, N
    Postier, B
    Prade, R
    Song, CP
    Tanaka, Y
    Wang, H
    Zhu, JK
    PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2001, 39 (3-4) : 295 - 311
  • [2] Functional genomics in yeast
    Dawes, Ian W.
    Kornfeld, Geoffrey D.
    Perrone, Gabriel G.
    MICROBIOLOGY AUSTRALIA, 2007, 28 (02) : 51 - 54
  • [3] The evolution of salinity tolerance in Daphnia: a functional genomics approach
    Latta, Leigh C.
    Weider, Lawrence J.
    Colbourne, John K.
    Pfrender, Michael E.
    ECOLOGY LETTERS, 2012, 15 (08) : 794 - 802
  • [4] Overexpression of ENA1 from yeast increases salt tolerance in Arabidopsis
    Kong, Xiangqiang
    Gao, Xiuhua
    Li, Weihuan
    Zhao, Jiqiang
    Zhao, Yanxiu
    Zhang, Hui
    JOURNAL OF PLANT BIOLOGY, 2008, 51 (02) : 159 - 165
  • [5] Overexpression ofENA1 from yeast increases salt tolerance inArabidopsis
    Xiangqiang Kong
    Xiuhua Gao
    Weihuan Li
    Jiqiang Zhao
    Yanxiu Zhao
    Hui Zhang
    Journal of Plant Biology, 2008, 51 : 159 - 165
  • [6] Salt Stress Proteins Identified by a Functional Approach in Yeast
    Ramón Serrano
    Roberto Gaxiola
    Gabino Ríos
    Javier Forment
    Oscar Vicente
    Roc Ros
    Monatshefte für Chemie / Chemical Monthly, 2003, 134 : 1445 - 1464
  • [7] Salt stress proteins identified by a functional approach in yeast
    Serrano, R
    Gaxiola, R
    Ríos, G
    Forment, J
    Vicente, O
    Ros, R
    MONATSHEFTE FUR CHEMIE, 2003, 134 (11): : 1445 - 1464
  • [8] A Functional Genomics Approach in Yeast: The Role of DNA Repair in Trichloroethylene Toxicity
    De La Rosa, V
    Asfaha, J.
    Vulpe, C.
    ENVIRONMENTAL AND MOLECULAR MUTAGENESIS, 2012, 53 : S49 - S49
  • [9] A functional genomics approach for identification of heat tolerance genes in tall fescue
    Zhang, Y
    Zwonitzer, J
    Chekhovskiy, K
    May, GD
    Mian, MAR
    MOLECULAR BREEDING OF FORAGE AND TURF, PROCEEDINGS, 2004, 11 : 87 - 96
  • [10] Functional Genomics of Salt and Drought Stress Tolerance in the Temperate Crop Apple (Malus domestica)
    Verma, Swati
    Dubey, Namo
    Mishra, Vishnu
    Kumar, Subhash
    Sharma, Rajnish
    Sharma, Sneh
    Sarkar, Ananda Kumar
    Thakur, Ajay Kumar
    JOURNAL OF PLANT GROWTH REGULATION, 2024, 43 (11) : 3941 - 3957