Plant Responses to Salt Stress: Adaptive Mechanisms

被引:1109
作者
Ramon Acosta-Motos, Jose [1 ]
Fernanda Ortuno, Maria [2 ]
Bernal-Vicente, Agustina [1 ]
Diaz-Vivancos, Pedro [1 ]
Jesus Sanchez-Blanco, Maria [2 ]
Antonio Hernandez, Jose [1 ]
机构
[1] CEBAS CSIC, Dept Plant Breeding, Fruit Tree Biotechnol Grp, Campus Univ Espinardo,POB 164, E-30100 Murcia, Spain
[2] CEBAS CSIC, Irrigat Dept, Campus Univ Espinardo,POB 164, E-30100 Murcia, Spain
来源
AGRONOMY-BASEL | 2017年 / 7卷 / 01期
关键词
adaptive mechanisms; antioxidative metabolism; chloroplast; osmotic regulation; oxidative stress; photosynthesis; salinity; water relations; LEAF WATER RELATIONS; ARBUSCULAR MYCORRHIZAL FUNGI; INDUCED OXIDATIVE STRESS; TREATED WASTE-WATER; TERM NACL STRESS; SALINITY TOLERANCE; GAS-EXCHANGE; NITRIC-OXIDE; ANTIOXIDANT SYSTEMS; SALICYLIC-ACID;
D O I
10.3390/agronomy7010018
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
This review deals with the adaptive mechanisms that plants can implement to cope with the challenge of salt stress. Plants tolerant to NaCl implement a series of adaptations to acclimate to salinity, including morphological, physiological and biochemical changes. These changes include increases in the root/canopy ratio and in the chlorophyll content in addition to changes in the leaf anatomy that ultimately lead to preventing leaf ion toxicity, thus maintaining the water status in order to limit water loss and protect the photosynthesis process. Furthermore, we deal with the effect of salt stress on photosynthesis and chlorophyll fluorescence and some of the mechanisms thought to protect the photosynthetic machinery, including the xanthophyll cycle, photorespiration pathway, and water-water cycle. Finally, we also provide an updated discussion on salt-induced oxidative stress at the subcellular level and its effect on the antioxidant machinery in both salt-tolerant and salt-sensitive plants. The aim is to extend our understanding of how salinity may affect the physiological characteristics of plants.
引用
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页数:38
相关论文
共 228 条
[31]   Stress-inducible expression of At DREB1A in transgenic peanut (Arachis hypogaea L.) increases transpiration efficiency under water-limiting conditions [J].
Bhatnagar-Mathur, Pooja ;
Devi, M. Jyostna ;
Reddy, D. Srinivas ;
Lavanya, M. ;
Vadez, Vincent ;
Serraj, R. ;
Yamaguchi-Shinozaki, K. ;
Sharma, Kiran K. .
PLANT CELL REPORTS, 2007, 26 (12) :2071-2082
[32]   Towards a conceptual ABA ideotype in plant breeding for water limited environments [J].
Blum, Abraham .
FUNCTIONAL PLANT BIOLOGY, 2015, 42 (06) :502-513
[33]   Evidence for a role of salicylic acid in the oxidative damage generated by NaCl and osmotic stress in Arabidopsis seedlings [J].
Borsani, O ;
Valpuesta, V ;
Botella, MA .
PLANT PHYSIOLOGY, 2001, 126 (03) :1024-1030
[34]  
BOVERIS A, 1984, METHOD ENZYMOL, V105, P429
[35]   Manipulation of catalase levels produces altered photosynthesis in transgenic tobacco plants [J].
Brisson, LF ;
Zelitch, I ;
Havir, EA .
PLANT PHYSIOLOGY, 1998, 116 (01) :259-269
[36]   Xylem hydraulic physiology: The functional backbone of terrestrial plant productivity [J].
Brodribb, Timothy J. .
PLANT SCIENCE, 2009, 177 (04) :245-251
[37]   How do leaf hydraulics limit stomatal conductance at high water vapour pressure deficits? [J].
Bunce, James A. .
PLANT CELL AND ENVIRONMENT, 2006, 29 (08) :1644-1650
[38]   Regulated deficit irrigation - a means to control growth in woody ornamentals [J].
Cameron, RWF ;
Harrison-Murray, RS ;
Atkinson, CJ ;
Judd, HL .
JOURNAL OF HORTICULTURAL SCIENCE & BIOTECHNOLOGY, 2006, 81 (03) :435-443
[39]  
Cassaniti C., 2012, Irrigation - water management, pollution and alternative strategies, P131, DOI [DOI 10.5772/31787, 10.5772/31787]
[40]   The effects of sodium chloride on ornamental shrubs [J].
Cassaniti, Carla ;
Leonardi, Cherubino ;
Flowers, Timothy J. .
SCIENTIA HORTICULTURAE, 2009, 122 (04) :586-593