MICROBIAL MODELS AND SALT STRESS TOLERANCE IN PLANTS

被引:189
作者
SERRANO, R [1 ]
GAXIOLA, R [1 ]
机构
[1] PURDUE UNIV, DEPT HORT, W LAFAYETTE, IN 47907 USA
关键词
SALINITY; PLANTS; SACCHAROMYCES CEREVISIAE; ESCHERICHIA COLI; ION TRANSPORT; OSMOLYTES; HALOTOLERANCE GENES;
D O I
10.1080/713608057
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Improving salt tolerance in crop plants remains an urgent issue in plant molecular biology. The adaptation of plants to NaCl involves metabolic reactions (synthesis of organic solutes) and transport phenomena (ion extrusion at the plasma membrane and vacuolar compartmentation). In addition, a plethora of salt-induced genes with a bewildering variety of suggested functions have been described. The uncertainties about the physiological roles and/or molecular bases of many of these phenomena make it difficult to select genes that could improve salt tolerance (halotolerance) in transgenic plants. We suggest that the field of salt tolerance can benefit by complementing the present phenomenological or descriptive approaches with a functional strategy directed toward isolating genes that, by overexpression of the corresponding protein, could improve salt tolerance. These halotolerance genes not only could illuminate the critical steps for salt tolerance, but also could provide the tools for improvement. Microbial genetics facilitates the implementation of this genetic approach. Studies using the prokaryotic organism Escherichia coli suggest that the synthesis of organic solutes may be the crucial step for salt tolerance because the first described bacterial halotolerance gene (proB-74) determines the overaccumulation of proline. In the eukaryotic microorganism Saccharomyces cerevisiae, however, potassium homeostasis seems to be the most critical response to salt stress. The first halotolerance gene isolated from this organism (HAL1) seems to modulate potassium transport, increasing the intracellular level of this cation in NaCl-containing media. The existence of plant homologues to HAL1 indicates that yeast may be a useful model for the genetics of salt tolerance in plants.
引用
收藏
页码:121 / 138
页数:18
相关论文
共 173 条
[31]   COMPARATIVE-ANALYSIS OF PHYSICAL STRESS RESPONSES IN SOYBEAN SEEDLINGS USING CLONED HEAT-SHOCK CDNAS [J].
CZARNECKA, E ;
EDELMAN, L ;
SCHOFFL, F ;
KEY, JL .
PLANT MOLECULAR BIOLOGY, 1984, 3 (01) :45-58
[32]   MULTIPLE MECHANISMS CONTRIBUTE TO OSMOTIC INDUCIBILITY OF PROU OPERON EXPRESSION IN ESCHERICHIA-COLI - DEMONSTRATION OF 2 OSMORESPONSIVE PROMOTERS AND OF A NEGATIVE REGULATORY ELEMENT WITHIN THE 1ST STRUCTURAL GENE [J].
DATTANANDA, CS ;
RAJKUMARI, K ;
GOWRISHANKAR, J .
JOURNAL OF BACTERIOLOGY, 1991, 173 (23) :7481-7490
[33]   RELATION BETWEEN SODIUM ION CONTENT AND EFFLUX OF LABELLED SODIUM IONS FROM YEAST [J].
DEE, E ;
CONWAY, EJ .
BIOCHEMICAL JOURNAL, 1968, 107 (02) :265-&
[34]   A SOYBEAN GENE ENCODING DELTA-1-PYRROLINE-5-CARBOXYLATE REDUCTASE WAS ISOLATED BY FUNCTIONAL COMPLEMENTATION IN ESCHERICHIA-COLI AND IS FOUND TO BE OSMOREGULATED [J].
DELAUNEY, AJ ;
VERMA, DPS .
MOLECULAR & GENERAL GENETICS, 1990, 221 (03) :299-305
[35]   SALT TOLERANCE OF FOOD CROPS - PROSPECTIVES FOR IMPROVEMENTS [J].
DOWNTON, WJS .
CRC CRITICAL REVIEWS IN PLANT SCIENCES, 1984, 1 (03) :183-201
[36]   OXYGEN-DEPENDENT EXCLUSION OF SODIUM-IONS FROM SHOOTS BY ROOTS OF ZEA-MAYS (CV PIONEER 3906) IN RELATION TO SALINITY DAMAGE [J].
DREW, MC ;
LAUCHLI, A .
PLANT PHYSIOLOGY, 1985, 79 (01) :171-176
[37]  
DUPONT FM, 1992, TRANSPORT AND RECEPTOR PROTEINS OF PLANT MEMBRANES, P91
[38]   COMMON AMINO-ACID SEQUENCE DOMAINS AMONG THE LEA PROTEINS OF HIGHER-PLANTS [J].
DURE, L ;
CROUCH, M ;
HARADA, J ;
HO, THD ;
MUNDY, J ;
QUATRANO, R ;
THOMAS, T ;
SUNG, ZR .
PLANT MOLECULAR BIOLOGY, 1989, 12 (05) :475-486
[39]   ON THE EVOLUTION OF THE ADAPTATION OF LOPHOPYRUM-ELONGATUM TO GROWTH IN SALINE ENVIRONMENTS [J].
DVORAK, J ;
EDGE, M ;
ROSS, K .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1988, 85 (11) :3805-3809
[40]  
EDGLEY M, 1983, J GEN MICROBIOL, V129, P3453