Metabolic engineering for stress tolerance: Installing osmoprotectant synthesis pathways

被引:173
作者
Rathinasabapathi, B [1 ]
机构
[1] Univ Florida, Dept Hort Sci, Gainesville, FL 32611 USA
[2] Univ Florida, Plant Mol & Cellular Biol Program, Gainesville, FL 32611 USA
关键词
review; abiotic stress; osmoprotectant; compatible solute; genetic engineering;
D O I
10.1006/anbo.2000.1254
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Abiotic environmental stresses such as drought, salinity and low temperature are major limitations for plant growth and crop productivity. Certain plants, marine algae and bacteria have evolved a number of adaptations to such abiotic stresses: some of these adaptations are metabolic and others structural. Accumulation of certain organic solutes (known as osmoprotectants) is a common metabolic adaptation found in diverse taxa. These solutes protect proteins and membranes against damage by high concentrations of inorganic ions. Some osmoprotectants also protect the metabolic machinery against oxidative damage. Many major crops lack the ability to synthesize the special osmoprotectants that are naturally accumulated by stress-tolerant organisms. Therefore, it was hypothesized that installing osmoprotectant synthesis pathways is a potential route to breed stress-tolerant crops. Proving this, recent engineering efforts in model species led to modest but significant improvements in stress tolerance of transgenic plants. Synthetic pathways to two kinds of osmoprotectants-polyols and quaternary ammonium compounds-are discussed here. Results from the metabolic engineering experiments emphasize the need for a greater understanding of primary metabolic pathways from which osmoprotectant synthesis pathways branch. Future research avenues include the identification and exploitation of diverse osmoprotectants in naturally stress-tolerant organisms, and the use of multiple genes and reiterative engineering to increase osmoprotectant flux in response to stress. High-throughput genomic technologies offer a number of tools to refine this by rapidly identifying genes, pathways, and regulatory controls. (C) 2000 Annals of Botany Company.
引用
收藏
页码:709 / 716
页数:8
相关论文
共 78 条
[31]   Improving plant drought, salt, and freezing tolerance by gene transfer of a single stress-inducible transcription factor [J].
Kasuga, M ;
Liu, Q ;
Miura, S ;
Yamaguchi-Shinozaki, K ;
Shinozaki, K .
NATURE BIOTECHNOLOGY, 1999, 17 (03) :287-291
[32]   OVEREXPRESSION OF DELTA-PYRROLINE-5-CARBOXYLATE SYNTHETASE INCREASES PROLINE PRODUCTION AND CONFERS OSMOTOLERANCE IN TRANSGENIC PLANTS [J].
KISHOR, PBK ;
HONG, ZL ;
MIAO, GH ;
HU, CAA ;
VERMA, DPS .
PLANT PHYSIOLOGY, 1995, 108 (04) :1387-1394
[33]   GENETIC ENHANCEMENT OF COLD TOLERANCE BY EXPRESSION OF A GENE FOR CHLOROPLAST OMEGA-3-FATTY-ACID DESATURASE IN TRANSGENIC TOBACCO [J].
KODAMA, H ;
HAMADA, T ;
HORIGUCHI, G ;
NISHIMURA, M ;
IBA, K .
PLANT PHYSIOLOGY, 1994, 105 (02) :601-605
[34]   Enhanced NaCl stress tolerance in transgenic tobacco expressing bacterial choline dehydrogenase [J].
Lilius, G ;
Holmberg, N ;
Bulow, L .
BIO-TECHNOLOGY, 1996, 14 (02) :177-180
[35]   The Arabidopsis thaliana SOS2 gene encodes a protein kinase that is required for salt tolerance [J].
Liu, JP ;
Ishitani, M ;
Halfter, U ;
Kim, CS ;
Zhu, JK .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2000, 97 (07) :3730-3734
[36]   myo-inositol metabolism in plants [J].
Loewus, FA ;
Murthy, PPN .
PLANT SCIENCE, 2000, 150 (01) :1-19
[37]   EFFECTS OF SOIL-SALINITY ON THE EXPRESSION OF BETAINE ALDEHYDE DEHYDROGENASE IN LEAVES - INVESTIGATION OF HYDRAULIC, IONIC AND BIOCHEMICAL SIGNALS [J].
MCCUE, KF ;
HANSON, AD .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1992, 19 (05) :555-564
[38]   Radiotracer and computer modeling evidence that phospho-base methylation is the main route of choline synthesis in tobacco [J].
McNeil, SD ;
Nuccio, ML ;
Rhodes, D ;
Shachar-Hill, Y ;
Hanson, AD .
PLANT PHYSIOLOGY, 2000, 123 (01) :371-380
[39]   GENETICALLY ENGINEERED ALTERATION IN THE CHILLING SENSITIVITY OF PLANTS [J].
MURATA, N ;
ISHIZAKINISHIZAWA, Q ;
HIGASHI, S ;
HAYASHI, H ;
TASAKA, Y ;
NISHIDA, I .
NATURE, 1992, 356 (6371) :710-713
[40]   Biological functions of proline in morphogenesis and osmotolerance revealed in antisense transgenic Arabidopsis thaliana [J].
Nanjo, T ;
Kobayashi, M ;
Yoshiba, Y ;
Sanada, Y ;
Wada, K ;
Tsukaya, H ;
Kakubari, Y ;
Yamaguchi-Shinozaki, K ;
Shinozaki, K .
PLANT JOURNAL, 1999, 18 (02) :185-193