Growth and antioxidant system under drought stress in chickpea (Cicer arietinum L.) as sustained by salicylic acid
Автор: Pradeep Kumar Patel, Hemantaranjan A., Sarma B.K., Singh Radha
Журнал: Журнал стресс-физиологии и биохимии @jspb
Статья в выпуске: 4 т.7, 2011 года.
Бесплатный доступ
Drought is one of the major factors limiting chickpea production in arid and semi arid regions. There is meagre information available regarding genotypic variation for drought tolerance in chickpea genotypes. Present investigation was carried out to find out the influence of salicylic acid (SA) on drought tolerance in four chickpea genotypes. Reduction in relative injury was observed in plants treated with SA @1.5 mM as compared to control seedlings. Relationship between relative water content (RWC), membrane permeability (MP), ascorbic acid (AsA), proline, lipid peroxidation (LPO), hydrogen peroxide (H2O2), catalase (CAT), peroxidase (POX), superoxide dismutase (SOD), ascorbate peroxidase (APX) was determined in order to find out whether these parameters can be used as selection criteria for drought tolerance in this crop. Results indicate wide variation in tolerance to drought stress amongst chickpea cultivars at both the critical stages i.e. pre- and post-anthesis. On the basis of growth and antioxidant activity better genotypes Tyson and ICC-4958 appear to be adapted to drought stress tolerance. Early drought stress (pre-anthesis drought) was found to be more damaging than the late drought stress (post- anthesis drought).
Antioxidant, pre- and post- anthesis, proline, relative injury, salicylic acid
Короткий адрес: https://sciup.org/14323545
IDR: 14323545
Список литературы Growth and antioxidant system under drought stress in chickpea (Cicer arietinum L.) as sustained by salicylic acid
- Aebi, H.E. (1983) Catalse In: Bergmeyer, H.U. (ed.), Methods of enzymatic analysis. Verlag Chemie, Weinhern. 273-286.
- Agarwal, S., Sairam R.K., Srivastava, G.C., and Meena, R.C. (2005) Changes in antioxidant enzymes activity and oxidative stress by abscisic acid and salicylic acid in wheat genotypes. Biologia Plantarum., 49 (4), 541-550.
- Anjum, S.A., Wang, L.C., Farooq, M., Hussain, M., Xue, L.L., and Zou, C.M. (2011) Brassinolide application improves the drought tolerance in maize through modulation of enzymatic antioxidants and leaf gas exchange. J. Agron. Crop Sci., DOI: 10.1111/j.1439-037X.2010.00459.x
- Azooz, M.M. and Youssef, M.M. (2010) Evaluation of heat shock and salicylic acid treatments as inducers of drought stress tolerance in Hassawi wheat. Am. J. Plant Physiol., 5, 56 -70.
- Basu, P.S., Masood, A., and Chaturvedi, S.K. (2007) Osmotic adjustment increases water uptake, remobilization of assimilates and maintains photosynthesis in chickpea under drought. Ind. J. Exp. Biol., 45, 261-267.
- Bates, L.S., Waldren, R.P. and Teare, I.D. (1973) Rapid Determination of Free Proline for Water-Stress Studies. Plant Soil., 39, 205-207.
- Cekic, C. and Paulsen, G.M. (2001) Evaluation of a Ninhydrin Procedure for Measuring Membrane Termostability of Wheat. Crop Sci., 41, 1351-1355.
- Davey, M.W., Stals, E., Panis, B., Keulemans, J. and Swennen, R.L. (2005) High-throughput determination of malondialdehyde in plant tissues. Analytical Biochemistry., 347, 201-207.
- Davies, S.L., Turner, N.C., Siddique, K.H.M., Plummer, J.A. and Leport, L. (1999) Seed growth of desi and Kabuli chickpea (Cicer arietinum L.) in a short-season Mediterranean-type environment. Aust. J. Exp. Agric., 39, 181-188.
- Dey, S.K., Dey, J., Patra, S. and Pothal, D. (2007) Changes in antioxidative enzyme activity and lipid peroxidation in wheat seedlings exposed to cadmium and lead stress. Braz. J. Plant Physiol., 19 (1), 53-60.
- Dhindsa, R.S., Plumb-Dhindsa, P. and Thorpe, T.A. (1981) Leaf senescence: correlated with increased levels of membrane permeability and lipid peroxidation, and decreased levels of superoxide dismutase and catalase. J. Exp. Bot., 32, 93-101.
- Durner, J. and Klessig, D.F. (1995) Inhibition of ascorbate peroxidase by salicylic acid and 2, 6-dichloroisonicotinic acid, 2 inducers of plant defense responses. Proc. Nat. Acad. Sci., USA 92, 11312-11316.
- Erdal, S. and Dumlupinar, R. (2010) Mammalian sex hormones stimulate antioxidant system and enhance growth of chickpea plants. Acta Physiologiae Plantarum., 33, 1011-1017.
- Esterbauer, H., Cheeseman, K.H. (1990) Determination of aldehydic lipid peroxidation products: malonaldehyde and 4-hydroxynonenal. Methods Enzymol., 186, 407-421.
- Farooq, M., A. Wahid, N. Kobayashi, D. Fujita, and Basra, S.M.A. (2009a) Plant drought stress: effects, mechanisms and management. Agron. Sust. Dev., 29, 185-212.
- Farooq, M., Wahid, A., Ito, O., Lee, D.J. and Siddique, K.H.M. (2009b) Advances in drought resistance of rice. Crit. Rev. Plant Sci., 28,199-217.
- Gonzales, L. and Gonzales-Vilar, M. (2001) Determination of relative water content. In: Reigosa MJ (ed.) Handbook of plant eco-physiology techniques. Kluwer Academic Publishers, Dordrecht. 207-212.
- Gunes, A., Inal. A., Alpaslan, M., Eraslan, F., Bagci, E.G. and Cicek, N. (2007) Salicylic acid induced changes on some physiological parameters symptomatic for oxidative stress and mineral nutrition in maize (Zea mays L.) grown under salinity. J Plant Physiol., 164, 728-736.
- Hasegawa, P.M., Bressan, R.A., Zhu, J.K. and Bohnert, H.J. (2000) Plant cellular and molecular responses to high salinity. Annu. Rev. Plant Physiol. Plant Mol. Biol., 51, 463-499.
- Hayat, Q., Hayat, S., Irfan, M. and Ahmad, A. (2010): Effect of exogenous salicylic acid under changing environment: a review. Environ. Exp. Bot., 68(1), 14-25.
- Hayat, S., Hasan, S.A., Farriduddun, Q. and Ahmad, A. (2008) Growth of tomato (Lycopersicon esculentum) in response to salicylic acid under water stress. J. Plant Int., 3 (4), 297-304.
- Hodges, D.M., DeLong, J.M., Forney, C.F. and Prange, R.K. (1999) Improving the Thiobarbituric Acid-Reactive-Substances Assay for Estimating Lipid Peroxidation in Plant Tissues Containing Anthocyanin and Other Interfering Compounds. Planta., 207, 604-611.
- Huang, R., Xia, R., Lu, Y. and Xu, Y. (2008) Effect of Pre-harvest salicylic acid spray treatment on post-harvest antioxidant in the pulp and peel of 'Cara cara' navel orange (Citrus sinensis L. Osbeck). J. Sci. Food Agr., 88, 229-236.
- Kar, M. and Mishra, D. (1976): Catalase, Peroxidase and Polyphenoloxidase activities during rice leaf senescence. Plant Physiol., 57, 315-319.
- Kauss, H. and Jeblick, W. (1996) Influence of salicylic acid on the induction of competence for H2O2 elicitation. Plant Physiol., 111,753-763.
- Lin, K.H.R., Tsou, C.C., Hwang, S.Y., Chen, L.F. and Lo, H.F. (2006) Paclobutrazol pre-treatment enhanced flooding tolerance of sweet potato. J. Plant Physiol., 7, 750-760.
- Moussa, H.R. and El-Gamel, S.M. (2010) Effect of salicylic acid pre-treatment on cadmium toxicity in wheat. Biol Plant., 54, 315-320.
- Mukherjee, S.P. and Choudhuri, M.A. (1983) Implications of Water Stress-Induced Changes in the leaves of Indigenous Ascorbic Acid and Hydrogen Peroxide in Vigna Seedlings. Physiol. Plant., 58, 166-170.
- Munne-Bosch, S. and Penuelas, J. (2003) Photo and antioxidative protection, and a role for salicylic acid during drought and recovery in field-grown Phillyrea angustifolia plants. Planta., 217, 758-766.
- Nakano, Y. and Asada, K. (1980) Spinach chloroplast scavenging hydrogen peroxide on illumination. Plant Cell Physiol., 21, 1295-1307.
- Prochazkova, D., Sairam, R.K., Srivastava, C. and Singh, D.V. (2001) Oxidative stress and antioxidant activity as the basis of senescence in maize leaves. Plant Sci., 161, 765-771.
- Rao, M.V., Paliyath, G., Ormrod, P., Murr, D.P. and Watkins, C. B. (1997) Influence of salicylic acid on H2O2 production, oxidative stress, and H2O2 -metabolizing enzymes. Plant Physiol., 115, 137-149.
- Raskin, I. (1992) Role of salicylic acid in plants. Annu. Rev. Plant Physiol. Mol. Biol., 43, 439-463.
- Turner, N.C, Wright, G.C. and Siddique, K.H.M. (2001) Adaptation of grain legumes (pulses) to water-limited environments. Adv. Agron., 71,193-231.
- Umebese, C.E., Olatimilehin T.O. and Ogunsusi T.A. (2009) Salicyclic acid protects nitrate reductase activity, growth and proline in amaranth and tomato plants during water deficit. Am. J. Agri. Biol. Sci., 4, 224-229.
- Wang, L.J., Fan, L., Loescher, W., Duan, W., Liu, G.J. and Cheng, J.S. (2010) Salicylic acid alleviates decreases in photosynthesis under heat stress and accelerates recovery in grapevine leaves. BMC Plant Biol., 10, 34.
- Weatherley, P.E. (1950) Studies in the water relations of cotton plants. I. The field measurement of water deficit in leaves. New Phytol., 49, 81-87.
- Williams, M, Senaratna T, Dixon, K. and Sivasithamparam K. (2003) Benzoic acid induces tolerance to biotic stress caused by Phytophthora cinnamomi in Banksai attenuate. Plant Growth Regul., 41, 89-91.
- Zhou, S.Z., Guo, K., Elbaz, A.A. and Yang, Z.M. (2009) Salicylic acid alleviates mercury toxicity by preventing oxidative stress in roots of Medicago sativa. Environ. Exp. Bot., 65, 27-34.