BibTex RIS Kaynak Göster
Yıl 2015, Cilt: 36 Sayı: 3, 595 - 603, 13.05.2015

Öz

Kaynakça

  • Borzouei, a and khazaee. 2001. The role of antioxidant enzymes in the increase of oxidative stress tolerance of plants. Olive magazine (the journal of agriculture specialist), number 179.
  • Boyer, J.S. 1982. Plant productivity and environment. Science 218: 443–8
  • Cakmak, I, and W. Horst. 1991. Effect of aluminium on lipid peroxidation, superoxide dismutase, catalase and peroxidase activities in root tip of soybean (Glycin max). Plant Physiol. 83: 463-468.
  • Calzadilla, P.I., A. Gazquez, S.J. Maiale, O.S. Ruiz, and M.A. Bernardina. 2014. Polyamines as indicators and modulators in the abiotic stress in plants. CAB International. Plant Adaptation to Environmental Change (eds N.A. Anjum, S.S. Gill and R. Gill).
  • Carol, R.J and, L. Dolan. 2006. The role of reactive oxygen species in cell growth: Lessons from root hairs. J. Exp. Bot. 57: 1829–1834.
  • Davies, W.J, and Zhang, J. 1991. Root signals and the regulation of growth and development of plants in drying soil. Ann Rev Plant Biol. 42(1): 55-76.
  • Foyer, C.H., H. Lopez-Delgado, J.F. Dat, and I.M. Scott. 1997. Hydrogen peroxide– and glutathione-associated mechanisms of acclimatory stress tolerance and signalling. Physiol Plant. 100:241–254.
  • Hamdia, M., E.S, El-Samad, and M.A.K, Shaddad. 2014. The exogenous amelioration roles of growth regulators on crop plants grow under different osmotic potential. Journal of Stress Physiology & Biochemistry, 10: 203-213.
  • Huang, M., and Z Guo,. 2005. Responses of antioxidative system to chilling stress in two rice cultivars differing in sensitivity. Biologia Plantarum 49 (1): 81-84, 2005.
  • Janmohammadi, M., V. Enayati, and N. Sabaghnia. 2012. Impact of cold acclimation, de- acclimation and re-acclimation on carbohydrate content and antioxidant enzyme activities in spring and winter wheat. Icelandic Agricultural Sciences. 25: 3–11.
  • Jiang, Y, and B. Huang. 2001. Drought and heat stress injury to two cool-season turfgrasses in relation to antioxidant metabolism and lipid peroxidation. Crop Sci. 41: 436-442 (2001).
  • Levitt, J. 1980. Responses of plant to environmental stresses. Vol. I. Academic Press, New York Mittler R. 2002. Oxidative stress, antioxidants and stress tolerance trends. Plant Sci. 7: 405-410. [13] Mohammad Khani, N, and R. Heidari. 2008. Effects of drought stress on soluble proteins in two maize varieties. Turk. J. Biol. 32 (2008). 23-30.
  • Prasad T.K., M.D. Anderson, and C.R. Stewart. 1995. Localization and characterization of peroxidases in the mitochondria of chilling acclimated maize seedlings. Plant pHysiol. 108: 1597-1605.
  • Sakihama, Y., M.F. Choen, S.C. Grace, and H. Yamasaki. 2002. Plant phenolic antioxidant and prooxidant activities: Phenolics-induced oxidative damage mediated by metals in plants. Toxicology 177: 67-80.
  • Yang, J., X. loui, B. Kiu, J. Li, and D. He. 2004. Cytokinin concentration gradient in the winter wheat grown under reduced irrigation. J. Central European Agri. 10(3): 123–129.
  • Zare, m., a. mehrabioladi. V, sh. SharafZadeh. Effects of gibberellic acid 2006 (GA3) and kinetin on seed germination and seedling growth stages kinetin wheat under salinity stress. Agricultural sciences research journal. Number 4. Page 855-865.

Effect of gibberellic acid foliar and kinetin on the antioxidant catalase anzymes and peroxidase in maize under drought stress

Yıl 2015, Cilt: 36 Sayı: 3, 595 - 603, 13.05.2015

Öz

Abstract. To study relation between water scarcity and gibberllic acid hormone and kinetin in three hybrids tested corn in two years as a split plot factorial based on randomized complete block design with 3 replications and antioxidant catalase enzymes and peroxidase leaves, the resulted measuremens are that drought stress is a change in the hormonal balance of corn so that amount of catalase and peroxidase enzymes compared to control were increased by foliar of hormones.however most of the characteristics attributed to the use of these hormones had different reactions. But seed function as the main character towards their use indicated a positive effect. 

Kaynakça

  • Borzouei, a and khazaee. 2001. The role of antioxidant enzymes in the increase of oxidative stress tolerance of plants. Olive magazine (the journal of agriculture specialist), number 179.
  • Boyer, J.S. 1982. Plant productivity and environment. Science 218: 443–8
  • Cakmak, I, and W. Horst. 1991. Effect of aluminium on lipid peroxidation, superoxide dismutase, catalase and peroxidase activities in root tip of soybean (Glycin max). Plant Physiol. 83: 463-468.
  • Calzadilla, P.I., A. Gazquez, S.J. Maiale, O.S. Ruiz, and M.A. Bernardina. 2014. Polyamines as indicators and modulators in the abiotic stress in plants. CAB International. Plant Adaptation to Environmental Change (eds N.A. Anjum, S.S. Gill and R. Gill).
  • Carol, R.J and, L. Dolan. 2006. The role of reactive oxygen species in cell growth: Lessons from root hairs. J. Exp. Bot. 57: 1829–1834.
  • Davies, W.J, and Zhang, J. 1991. Root signals and the regulation of growth and development of plants in drying soil. Ann Rev Plant Biol. 42(1): 55-76.
  • Foyer, C.H., H. Lopez-Delgado, J.F. Dat, and I.M. Scott. 1997. Hydrogen peroxide– and glutathione-associated mechanisms of acclimatory stress tolerance and signalling. Physiol Plant. 100:241–254.
  • Hamdia, M., E.S, El-Samad, and M.A.K, Shaddad. 2014. The exogenous amelioration roles of growth regulators on crop plants grow under different osmotic potential. Journal of Stress Physiology & Biochemistry, 10: 203-213.
  • Huang, M., and Z Guo,. 2005. Responses of antioxidative system to chilling stress in two rice cultivars differing in sensitivity. Biologia Plantarum 49 (1): 81-84, 2005.
  • Janmohammadi, M., V. Enayati, and N. Sabaghnia. 2012. Impact of cold acclimation, de- acclimation and re-acclimation on carbohydrate content and antioxidant enzyme activities in spring and winter wheat. Icelandic Agricultural Sciences. 25: 3–11.
  • Jiang, Y, and B. Huang. 2001. Drought and heat stress injury to two cool-season turfgrasses in relation to antioxidant metabolism and lipid peroxidation. Crop Sci. 41: 436-442 (2001).
  • Levitt, J. 1980. Responses of plant to environmental stresses. Vol. I. Academic Press, New York Mittler R. 2002. Oxidative stress, antioxidants and stress tolerance trends. Plant Sci. 7: 405-410. [13] Mohammad Khani, N, and R. Heidari. 2008. Effects of drought stress on soluble proteins in two maize varieties. Turk. J. Biol. 32 (2008). 23-30.
  • Prasad T.K., M.D. Anderson, and C.R. Stewart. 1995. Localization and characterization of peroxidases in the mitochondria of chilling acclimated maize seedlings. Plant pHysiol. 108: 1597-1605.
  • Sakihama, Y., M.F. Choen, S.C. Grace, and H. Yamasaki. 2002. Plant phenolic antioxidant and prooxidant activities: Phenolics-induced oxidative damage mediated by metals in plants. Toxicology 177: 67-80.
  • Yang, J., X. loui, B. Kiu, J. Li, and D. He. 2004. Cytokinin concentration gradient in the winter wheat grown under reduced irrigation. J. Central European Agri. 10(3): 123–129.
  • Zare, m., a. mehrabioladi. V, sh. SharafZadeh. Effects of gibberellic acid 2006 (GA3) and kinetin on seed germination and seedling growth stages kinetin wheat under salinity stress. Agricultural sciences research journal. Number 4. Page 855-865.
Toplam 16 adet kaynakça vardır.

Ayrıntılar

Bölüm Derleme
Yazarlar

Shahram Mehri

Yayımlanma Tarihi 13 Mayıs 2015
Yayımlandığı Sayı Yıl 2015 Cilt: 36 Sayı: 3

Kaynak Göster

APA Mehri, S. (2015). Effect of gibberellic acid foliar and kinetin on the antioxidant catalase anzymes and peroxidase in maize under drought stress. Cumhuriyet Üniversitesi Fen Edebiyat Fakültesi Fen Bilimleri Dergisi, 36(3), 595-603.
AMA Mehri S. Effect of gibberellic acid foliar and kinetin on the antioxidant catalase anzymes and peroxidase in maize under drought stress. Cumhuriyet Üniversitesi Fen Edebiyat Fakültesi Fen Bilimleri Dergisi. Mayıs 2015;36(3):595-603.
Chicago Mehri, Shahram. “Effect of Gibberellic Acid Foliar and Kinetin on the Antioxidant Catalase Anzymes and Peroxidase in Maize under Drought Stress”. Cumhuriyet Üniversitesi Fen Edebiyat Fakültesi Fen Bilimleri Dergisi 36, sy. 3 (Mayıs 2015): 595-603.
EndNote Mehri S (01 Mayıs 2015) Effect of gibberellic acid foliar and kinetin on the antioxidant catalase anzymes and peroxidase in maize under drought stress. Cumhuriyet Üniversitesi Fen Edebiyat Fakültesi Fen Bilimleri Dergisi 36 3 595–603.
IEEE S. Mehri, “Effect of gibberellic acid foliar and kinetin on the antioxidant catalase anzymes and peroxidase in maize under drought stress”, Cumhuriyet Üniversitesi Fen Edebiyat Fakültesi Fen Bilimleri Dergisi, c. 36, sy. 3, ss. 595–603, 2015.
ISNAD Mehri, Shahram. “Effect of Gibberellic Acid Foliar and Kinetin on the Antioxidant Catalase Anzymes and Peroxidase in Maize under Drought Stress”. Cumhuriyet Üniversitesi Fen Edebiyat Fakültesi Fen Bilimleri Dergisi 36/3 (Mayıs 2015), 595-603.
JAMA Mehri S. Effect of gibberellic acid foliar and kinetin on the antioxidant catalase anzymes and peroxidase in maize under drought stress. Cumhuriyet Üniversitesi Fen Edebiyat Fakültesi Fen Bilimleri Dergisi. 2015;36:595–603.
MLA Mehri, Shahram. “Effect of Gibberellic Acid Foliar and Kinetin on the Antioxidant Catalase Anzymes and Peroxidase in Maize under Drought Stress”. Cumhuriyet Üniversitesi Fen Edebiyat Fakültesi Fen Bilimleri Dergisi, c. 36, sy. 3, 2015, ss. 595-03.
Vancouver Mehri S. Effect of gibberellic acid foliar and kinetin on the antioxidant catalase anzymes and peroxidase in maize under drought stress. Cumhuriyet Üniversitesi Fen Edebiyat Fakültesi Fen Bilimleri Dergisi. 2015;36(3):595-603.