The role of superoxide dismutase in inducing of wheat seedlings tolerance to osmotic shock

Автор: Oboznyi A.I., Kolupaev Yu.E., Vayner A.A., Yastreb T.O.

Журнал: Журнал стресс-физиологии и биохимии @jspb

Статья в выпуске: 3 т.9, 2013 года.

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Influence of short-term hardening osmotic exposure (immersion in 1 M sucrose solution with subsequent transferring to distilled water for 20 min) on the hydrogen peroxide generation and superoxide dismutase activity in wheat ( Triticum aestivum L., cv. Elegiya) seedlings and their tolerance to osmotic shock were investigated. During the initial 30 min after osmotic exposure, the increasing of hydrogen peroxide amount in roots and shoots (to a lesser extent) was observed, but the resistance of the seedlings and superoxide dismutase (SOD) activity decreased. Sometime later the decrease in hydrogen peroxide amount and the increase of seedlings tolerance to osmotic shock took place. SOD activity increased in 10 min after hardening osmotic exposure. Transient accumulation of hydrogen peroxide induced in this way was suppressed by the treatment of seedlings with sodium diethyldithiocarbamate (DDC), SOD inhibitor. DDC and hydrogen peroxide scavenger dimethylthiourea decreased positive hardening effect of osmotic exposure on the development of seedlings tolerance. It was concluded that SOD providing the generation of signal hydrogen peroxide pool took part in the induction of seedlings tolerance to osmotic shock development caused by preliminary hardening effect.

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Reactive oxygen species, hydrogen peroxide, superoxide dismutase, hardening, osmotic shock

Короткий адрес: https://sciup.org/14323771

IDR: 14323771

Список литературы The role of superoxide dismutase in inducing of wheat seedlings tolerance to osmotic shock

  • Alexandrov, V.Ya. (1985) Cell reactivity and proteins. Leningrad: Nauka, 318. (In Russ.).
  • Bradford, M.M., (1976) A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal. Biochem., 72, 248-254.
  • Hofmann, R.W., Campbell, B.D., Bloor, S.J. Swinny, E.E., Markham, K.R., Ryan, K.G., and Fountain D.W. (2003) Responses to UV-B radiation in Trifolium repens L. -physiological links to plant productivity and water availability. Plant Cell Environ., 26, 603-612.
  • Kolupaev, Yu.E., Akinina, G.E., and Mokrousov, A.V. (2005) Induction of heat tolerance in wheat coleoptiles by calcium ions and its relation to oxidative stress. Russ. J. Plant Physiol., 52(2), 199-204.
  • Kolupaev, Yu.E., and Karpets, Yu.V. (2010). Formation of plants adaptive reactions to abiotic stressors influence. Kyiv: Osnova, 352. (In Russ.).
  • Kolupaev, Yu.E., Oboznyi, A.I., and Shvidenko, N.V. (2013) Role of hydrogen peroxide in generation of a signal inducing heat tolerance of wheat seedlings. Russ. J. Plant Physiol., 60(2), 227-234.
  • Korsukova, A.V., Grabelnych, O.I., Pobezhimova, T.P., Koroleva, N.A., Fedoseeva, I.V., Pavlovskaya, N.S., Lyubushkina, I.V., Borovik, O.A., Fedyaeva, A.V., Voznenko, S.A., Ilyushneva, E.M., and Voinikov, V.K. (2013) Cold hardening prevents H2O2-induced programmed cell death in maize coleoptiles. J. Stress Physiol. Biochemis., 9(1), 246-257. (In Russ.).
  • Mika, A., Minibayeva, F., Beckett, R., Luthje, S. (2004) Possible functions of extracellular peroxidases in stress-induced generation and detoxification of active oxygen species. Phytochem. Rev. 3(1-2), 173-193.
  • Miller, R., Suzuki, N., Ciftci-Yilmaz, S., and Mittler, R. (2010) Reactive oxygen species homeostasis and signaling during drought and salinity stresses. Plant Cell Environ., 33, 453-467.
  • Morita, S., Kaminaka, H., Masumura, T., and Tanaka, K. (1999) Induction of rice cytosolic ascorbate peroxidase mRNA by oxidative stress: The involvement of hydrogen peroxide in oxidative stress signalling. Plant Cell Physiol., 40, 417-422.
  • Munir, N., and Aftab, F. (2009) The role of polyethylene glycol (PEG) pretreatment in improving sugarcane’s salt (NaCl) tolerance. Turk. J. Bot., 33, 407-415.
  • Oboznyi, A.I., Kolupaev, Yu.E. (2012) Participation of the enzymatic systems generating reactive oxygen species, in formation cross-tolerances of plantlets of wheat to the hyperthermia and osmotic shock. Fiziol. Biokh. Kul’t. Rast., 44(4), 347-354. (In Russ.).
  • Oboznyi, A.I., Yastreb T.O., Kolupaev, Yu.E. (2013) Participating of proline and sugars in the antioxidant system of wheat seedlings under the formation of cross-tolerance to injurious heating and osmotic shock. Int. conf. «Plant cell biology and biotechnology», Minsk, February 13-15, 2013 -Minsk, 2013, 107. (In Russ.).
  • Ogawa, K., Kanematsu, S., and Asada, K. (1997) Generation of superoxide anion and localization of Cu/Zn Superoxide dismutase in vascular tissue of spinach hypocotyls: their association with lignification. Plant Cell Physiol., 38, 1118-1126.
  • Ridge, I. and Osborne, D.J. (1970). Hydroxyproline and peroxidases in cell walls of Pisum sativum: regulation by ethylene. J. Exp. Bot., 21, 843-856.
  • Sagi, M. and Fluhr, R. (2006). Production of reactive oxygen species by plant NADPH oxidases. Plant Physiol., 141, 336-340.
  • Sagisaka, S. (1976) The occurrence of peroxide in a perennial plant, Populus gelrica. Plant Physiol., 57, 308-309.
  • Sung, M., Hsu, Yi., and Hsu, Yu. (2009) Hypersalinity and hydrogen peroxide upregulation of gene expression of antioxidant enzymes in Ulva fasciata against oxidative stress. Mar. Biotechnol., 11, 199-209.
  • Szabados, L. and Savoure, A. (2009) Proline: a multifunctional amino acid. Trends Plant Sci. 15(2), 89-97.
  • Talanova, V.V. (2009) Phytohormones as regulators of plant resistance to difficult environments: Thesis for Doctor Scienses Degree in Biology, degree of biological science. Petrozavodsk, 44 (In Russ.).
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