Leaf photosynthesis, chlorophyll fluorescence and ion content of barley (Hordeum vulgare) in response to salinity

被引:37
作者
Allel, Dorsaf [1 ,2 ]
Ben-Amar, Anis [1 ]
Abdelly, Chedly [2 ]
机构
[1] Ctr Biotechnol Borj Cedria, Lab Plant Mol Physiol, Hammam Lif, Tunisia
[2] Ctr Biotechnol Borj Cedria, Lab Extremophile Plants, Hammam Lif, Tunisia
关键词
chlorophyll fluorescence; growth performance; Hordeum vulgare; K+ retention; MDA content; photosynthesis; photosystem; salinity tolerance; stomatal conductance; SALT TOLERANCE; STRESS; PERFORMANCE; LEAVES;
D O I
10.1080/01904167.2017.1385811
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Eight barley genotypes contrasting in their salinity tolerance were assessed for their chlorophyll fluorescence, photosynthetic performance, lipid peroxidation level and ionic content. A pot experiment was conducted in Borj-Cedria (Tunisia), in a wire house with a glass roof to avoid rainfall. The assay consisted of three treatments (0, 100 and 200mM NaCl) with eight barley genotypes following a completely randomized design. Each pot was considered as one replicate and nine replicates were used for each genotype and treatment. The salt-tolerant genotypes Kerkna and Tichedrett recorded the highest tolerance for photosynthesis and potassium accumulation, whereas the susceptible genotypes were mostly affected at severe salinity. Contrasting behavior was noted for fluorescence attributes, while PSII yield was unchanged reflecting good protection against photodamage. Photosynthetic performance, enhanced water use efficiency, maintained leaf K+ and oxidative defense remain the key components for tolerance mechanisms. Salt-tolerant barley could be suitable for management of salt-affected soils.
引用
收藏
页码:497 / 508
页数:12
相关论文
共 35 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]  
Allel D., 2016, Australian Journal of Crop Science, V10, P438, DOI 10.21475/ajcs.2016.10.04.p6663x
[3]   Photosynthesis under stressful environments: An overview [J].
Ashraf, M. ;
Harris, P. J. C. .
PHOTOSYNTHETICA, 2013, 51 (02) :163-190
[4]   Effects of salinity on chlorophyll fluorescence and photosynthesis of barley (Hordeum vulgare L.) grown under a triple-line-source sprinkler system in the field [J].
Belkhodja, R ;
Morales, F ;
Abadía, A ;
Medrano, H ;
Abadía, J .
PHOTOSYNTHETICA, 1999, 36 (03) :375-387
[5]   Physiological and antioxidant responses of the perennial halophyte Crithmum maritimum to salinity [J].
Ben Amor, N ;
Ben Hamed, K ;
Debez, A ;
Grignon, C ;
Abdelly, C .
PLANT SCIENCE, 2005, 168 (04) :889-899
[6]   Photosynthesis under drought and salt stress: regulation mechanisms from whole plant to cell [J].
Chaves, M. M. ;
Flexas, J. ;
Pinheiro, C. .
ANNALS OF BOTANY, 2009, 103 (04) :551-560
[7]   Beech (Fagus sylvatica) response to ozone exposure assessed with a chlorophyll a fluorescence performance index [J].
Clark, AJ ;
Landolt, W ;
Bucher, JB ;
Strasser, RJ .
ENVIRONMENTAL POLLUTION, 2000, 109 (03) :501-507
[8]  
DRAPER HH, 1990, METHOD ENZYMOL, V186, P421
[9]   Light-dark changes in proline content of barley leaves under salt stress [J].
Fedina, IS ;
Georgieva, K ;
Grigorova, I .
BIOLOGIA PLANTARUM, 2002, 45 (01) :59-63
[10]   THE RELATIONSHIP BETWEEN THE QUANTUM YIELD OF PHOTOSYNTHETIC ELECTRON-TRANSPORT AND QUENCHING OF CHLOROPHYLL FLUORESCENCE [J].
GENTY, B ;
BRIANTAIS, JM ;
BAKER, NR .
BIOCHIMICA ET BIOPHYSICA ACTA, 1989, 990 (01) :87-92