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SA on wheat plants and the likelihood of implementation of ABA as a hormonal
intermediate in triggering the complex defensive reactions forming the basis for
the development of SA-induced resistance of plants to abiotic stress factors.
Acknowledgments This work was partially supported by the Russian Foundation for Basic
Research, project nos. 11-04-01642 and 11-04-97051-povoljie.
References
Ahsan, N., Renaut, J., & Komatsu, S. (2009). Recent developments in the application of
proteomics to the analysis of plant responses to heavy metals. Proteomics, 9, 2602-2621.
An, C., & Mou, Z. (2011). Salicylic acid and its function in plant immunity. Journal of
Integrative Plant Biology, 53, 412-428.
Arbona, V., Argamasilla, R., & Gomez-Cadenas, A. (2010). Common and divergent physiolog-
ical, hormonal and metabolic responses of Arabidopsis thaliana and Thellungiella halophila
to water and salt stress. Journal of Plant Physiology, 167, 1342-1350.
Bari, R., & Jones, J. D. (2009). Role of plant hormones in plant defence responses. Plant
Molecular Biology, 69, 473-488.
Bezrukova, M., Kildibekova, A., & Shakirova, F. (2008). WGA reduces the level of oxidative
stress in wheat seedlings under salinity. Plant Growth Regulation, 54, 195-201.
Bezrukova, M. V., Fatkhutdinova, R. A., Lubyanova, A. R., Mursabaev, A. R., Fedyaev, V. V., &
Shakirova, F. M. (2011). Lectin involvement in the development of wheat tolerance to
cadmium toxicity. Russian Journal of Plant Physiology, 58, 1048-1054.
Cambrolle, J., Redondo-Gomez, S., Mateos-Naranjo, E., Luque, T., & Figueroa, M. E. (2011).
Physiological responses to salinity in the yellow-horned poppy, Glaucium flavum. Plant
Physiology and Biochemistry, 49, 186-194.
Cammue, B. P. A., Broekaert, W. F., Kellens, J. T. C., Raikhel, N. V., & Peumans, W. J. (1989).
Stress-induced accumulation of wheat germ agglutinin and abscisic acid in roots of wheat
seedlings. Plant Physiology, 91, 1432-1435.
Chen, J.-Y., Wen, P.-F., Kong, W.-F., Pan, Q.-H., Zhan, J.-C., Li, J.-M., et al. (2006). Effect of
salicylic acid on phenylpropanoids and phenylalanine ammonia-lyase inharvested grape
berries. Postharvest Biology and Technology, 40, 64-72.
Choudhury, S., & Panda, S. K. (2004). Role of salicylic acid in regulating cadmium induced
oxidative stress in Oryza sativa L. roots. Bulgarian Journal of Plant Physiology, 30, 95-110.
Close, T. J. (1996). Dehydrins: emergence of a biochemical role of a family of plant dehydration
proteins. Physiologia Plantarum, 96, 795-803.
DalCorso, G., Farinati, S., Maistri, S., & Furini, A. (2008). How plants cope with cadmium:
staking all on metabolism and gene expression. Journal of Integrative Plant Biology, 50,
1268-1280.
Des Marais, D. L., & Juenger, T. E. (2010). Pleiotropy, plasticity, and the evolution of plant
abiotic stress tolerance. Annals of the New York Academy of Sciences, 1206, 56-79.
Fatkhutdinova, D. R., Sakhabutdinova, A. R., Maksimov, I. V., Yarullina, L. G., & Shakirova, F.
M.
(2004).
The
effect
of
salicylic
acid
on
antioxidant
enzymes
in
wheat
seedlings.
Agrochimiya (in Russ), 8, 27-31.
Fernandes, C. F., Moraes, V. C. P., Vasconcelos, I. M., Silveira, J. A. G., & Oliveira, J. T. A.
(2006). Induction of an anionic peroxidase in cowpea leaves by exogenous salicylic acid.
Journal of Plant Physiology, 163, 1040-1048.
Flowers, T. J. (2004). Improving crop salt tolerance. Journal of Experimental Botany, 55,
307-319.
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