Physiological and Molecular Responses of Barley Genotypes to Salinity Stress

被引:18
作者
Jadidi, Omid [1 ]
Etminan, Alireza [2 ]
Azizi-Nezhad, Reza [1 ]
Ebrahimi, Asa [1 ]
Pour-Aboughadareh, Alireza [3 ]
机构
[1] Islamic Azad Univ, Dept Plant Breeding & Biotechnol, Sci & Res Branch, Tehran 1477893855, Iran
[2] Islamic Azad Univ, Dept Plant Breeding & Biotechnol, Kermanshah Branch, Kermanshah 6718773654, Iran
[3] Agr Res Educ & Extens Org AREEO, Seed & Plant Improvement Inst, Karaj 31585854, Iran
关键词
salt stress; barley; MGIDI discriminator; gene expression analysis; heatmap; NA+/H+ ANTIPORTER SOS1; SALT TOLERANCE; WHEAT; PLANTS; OVEREXPRESSION; EXCHANGERS; MECHANISMS; STABILITY; SHOOTS; TOMATO;
D O I
10.3390/genes13112040
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Among cereals, barley is tolerant to high levels of salinity stress; however, its performance and global production are still dramatically affected by salinity. In this study, we evaluated the behavior of a set of advanced genotypes of barley with aim of assessing the physiological and molecular mechanisms involved in salinity tolerance. The experiment was conducted using a hydroponic system at optimal growing temperature and photoperiod conditions. The results of the analysis of variance (ANOVA) showed significant effects for salinity treatments and genotypes in terms of all measured traits. Salinity stress significantly increased the root and shoot Na+ contents and root-to-shoot Na+ and K+ translocations. In contrast, other physiological features, gas exchange-related traits, as well as root and shoot biomasses were significantly decreased due to salinity stress. Based on the results of the multi-trait genotype ideotype distance index (MGIDI) as a multiple-traits method, G12 and G14 were identified as the superior salt-tolerant advanced genotypes. In the molecular analysis, salinity stress significantly increased the mean relative expression of HvSOS1, HvSOS3, HvHKT2, HvHKT3, HvNHX1, and HvNHX3 genes by 12.87-, 3.16-, 3.65-, 2.54-, 2.19-, and 3.18-fold more than the control conditions, respectively. The results of heatmap-based correlation and principal component analysis (PCA) revealed a clear association pattern among measured traits and expression data. Indeed, these associations confirmed relationships between tolerance pathways and physiological functions. In conclusion, the genotype G14 (D10*2/4/Productive/3/Roho//Alger/Ceres362-1-1) responded well to salinity stress and showed a better expression pattern of studied genes than other genotypes. Hence, this promising genotype can be a candidate for further assessments before commercial introduction.
引用
收藏
页数:16
相关论文
共 62 条
[1]   Evaluating contribution of ionic, osmotic and oxidative stress components towards salinity tolerance in barley [J].
Adem, Getnet Dino ;
Roy, Stuart J. ;
Zhou, Meixue ;
Bowman, John P. ;
Shabala, Sergey .
BMC PLANT BIOLOGY, 2014, 14
[2]   Salt tolerance mechanisms in quinoa (Chenopodium quinoa Willd.) [J].
Adolf, Verena Isabelle ;
Jacobsen, Sven-Erik ;
Shabala, Sergey .
ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2013, 92 :43-54
[3]   Unraveling salinity stress responses in ancestral and neglected wheat species at early growth stage: A baseline for utilization in future wheat improvement programs [J].
Ahmadi, Jafar ;
Pour-Aboughadareh, Alireza ;
Fabriki Ourang, Sedigheh ;
Khalili, Pezhman ;
Poczai, Peter .
PHYSIOLOGY AND MOLECULAR BIOLOGY OF PLANTS, 2020, 26 (03) :537-549
[4]   Screening wild progenitors of wheat for salinity stress at early stages of plant growth: insight into potential sources of variability for salinity adaptation in wheat [J].
Ahmadi, Jafar ;
Pour-Aboughadareh, Alireza ;
Fabriki-Ourang, Sedigheh ;
Mehrabi, Ali-Ashraf ;
Siddique, Kadambot H. M. .
CROP & PASTURE SCIENCE, 2018, 69 (07) :649-658
[5]  
Ahmed I, 2013, PLOS ONE, V8, DOI [10.1371/journal.pone.0058204, 10.1371/journal.pone.0077869]
[6]   Response of salt stressed barley seedlings to phenylurea [J].
Ali, RM ;
Abbas, HM .
PLANT SOIL AND ENVIRONMENT, 2003, 49 (04) :158-162
[7]   Salt tolerance conferred by overexpression of a vacuolar Na+/H+ antiport in Arabidopsis [J].
Apse, MP ;
Aharon, GS ;
Snedden, WA ;
Blumwald, E .
SCIENCE, 1999, 285 (5431) :1256-1258
[8]   The Role of Na+ and K+ Transporters in Salt Stress Adaptation in Glycophytes [J].
Assaha, Dekoum V. M. ;
Ueda, Akihiro ;
Saneoka, Hirofumi ;
Al-Yahyai, Rashid ;
Yaish, Mahmoud W. .
FRONTIERS IN PHYSIOLOGY, 2017, 8
[9]   Ion Exchangers NHX1 and NHX2 Mediate Active Potassium Uptake into Vacuoles to Regulate Cell Turgor and Stomatal Function in Arabidopsis [J].
Barragan, Veronica ;
Leidi, Eduardo O. ;
Andres, Zaida ;
Rubio, Lourdes ;
De Luca, Anna ;
Fernandez, Jose A. ;
Cubero, Beatriz ;
Pardo, Jose M. .
PLANT CELL, 2012, 24 (03) :1127-1142
[10]   Cation Specificity of Vacuolar NHX-Type Cation/H+ Antiporters [J].
Bassil, Elias ;
Zhang, Shiqi ;
Gong, Haijun ;
Tajima, Hiromi ;
Blumwald, Eduardo .
PLANT PHYSIOLOGY, 2019, 179 (02) :616-629