Modifications of water status, growth rate and antioxidant system in two wheat cultivars as affected by salinity stress and salicylic acid

被引:0
作者
Naglaa Loutfy
Yoh Sakuma
Dharmendra K. Gupta
Masahiro Inouhe
机构
[1] South Valley University,Department of Botany, Faculty of Science
[2] Ehime University,Department of Biology, Faculty of Science
[3] Ministry of Environment,undefined
[4] Forest and Climate Change,undefined
来源
Journal of Plant Research | 2020年 / 133卷
关键词
Antioxidant enzymes; Glutathione; Organic and inorganic solutes; Salicylic acid; Salinity stress; Sodium chloride; Wheat;
D O I
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中图分类号
学科分类号
摘要
Salicylic acid (SA) has an important role in drought-tolerance in wheat (Triticum aestivum L.) but its relevance to the salinity-tolerance is not well understood. In the present study, possible roles of SA and salinity responses were examined using two wheat cultivars i.e., drought-tolerant Sakha-69 and drought-sensitive Gemaza-1, exposed to 150 mM NaCl. Parameters were determined for growth i.e. fresh or dry mass (FM, DM), osmotic concentration (OC) of organic/inorganic solute, leaf relative water content (LRWC), photosynthesis pigment content (PPC), and selective antioxidant system (AOS) enzyme/molecule that might be involved in the stress remediation. Sakha-69 exhibited salinity tolerance greater than Gemaza-1 and SA ameliorated their salinity stresses like drought stress, suggesting that a common tolerant mechanism might be involved in the stresses. Salinity decreased root growth by 44–52% more strongly than shoot (36–41%) in FM or those in DM (32–35%). SA ameliorated root growth (40–60%) more efficiently than shoot (6–24%) for DM/FM. These results suggested that salinity and SA might target sensitive roots and hence influencing shoot functions. In fact, salinity reduced PPC by 10–18%, LRWC by 16–28%, and more sensitively, OC of inorganic solutes (K+, Ca2+, Mg2+) in shoot (19–36%) and root (25–59%), except a conspicuous increase in Na+, and SA recovered all the reductions near to control levels. SA and salinity increased additively most parameters for OC of organic solutes (sugars and organic acids) and AOS (glutathione and related enzyme activities), like drought responses. However, SA decreased the Na+ and proline contents and catalase activity in a counteracting manner to salinity. It is concluded from this experiment that SA-mediated tolerance might involve two mechanisms, one specific for minerals in root and the other related to drought/dehydration tolerance governed in the whole module systems.
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页码:549 / 570
页数:21
相关论文
共 209 条
[51]  
Bagci EG(1986)Ascorbate and glutathione: keeping active oxygen under control Plant Physiol 47 177-undefined
[52]  
Cicek N(2008)MANOVA method for analyzing repeated measures designs: An extensive primer Environ Exp Bot 137 218-undefined
[53]  
Hafsi C(2009)Salicylic acid treatment via the rooting medium interferes with the stomatal response, CO Annu Rev Phytopathol 11 69-undefined
[54]  
Romero-Puerta MC(2017) fixation rate and carbohydrate metabolism in tomato and decreases the harmful effects of subsequent salt stress Ecotox Environ Saf 31 593-undefined
[55]  
Gupta DK(1999)Modulation of salt stress effects on the growth, physio chemical attributes and yields of R Bras Fisiol Veg 50 1096-undefined
[56]  
del Rio LA(2008) L. plants by the combined application of salicylic acid and J Plant Nutr undefined undefined-undefined
[57]  
Sandalio LM(2008) leaf extract J Integr Plant Biol undefined undefined-undefined
[58]  
Abdelly C(undefined)Improving thermo tolerance of wheat plant by foliar application of citric acid or oxalic acid undefined undefined undefined-undefined
[59]  
Hayat Q(undefined)Physiological and molecular biology of salinity stress tolerance in plants undefined undefined undefined-undefined
[60]  
Hayat S(undefined)Alteration in seedling growth and antioxidant enzyme activities in undefined undefined undefined-undefined