Plant Soil Environ., 2006, 52(10):476-480 | DOI: 10.17221/3469-PSE
Ion accumulation in different organs of green bean genotypes grown under salt stress
- 1 Faculty of Agriculture, University of Yuzuncu Yil, Zeve Campus, Turkey
- 2 Faculty of Agriculture, University of Gazi Osman Pasa, Tokat, Turkey
Salt-tolerant Gevas Sirik 57 (GS57) genotypes and salt-sensitive 4F-89 French variety, previously determined in our preliminary study, were used in the study. The genotype and the variety exposed to 100mM NaCl application developed different mechanisms to be protected against toxic effects of Na+ ion. Salt-sensitive 4F-89 French variety let Na+ accumulate in all organs. On the contrary, salt-tolerant GS57 did not avoid salt and acted selectively among ions; the majority of toxic ion Na+ accumulated in old leaves and shoots and the plants did not transport them into young leaves. K+ accumulation was high in organs in which Na+ concentrations were low, and vice versa; Na+ content was low in young and high in old leaves of GS57, but K+ content was opposite. Ca2+ content in young leaves of GS57 and 4F-89 decreased; still its content was the highest of all examined ions found in young leaves. This indicated that beans can develop different mechanisms to accept and adapt high levels of salt. Storing toxic ion (Na+) in old leaves and having a limited transmission of salt into young leaves serves as a protection from detrimental effects of salt.
Keywords: Phaseolus vulgaris; green bean genotypes; salt stress; plant parts; ion accumulation
Published: October 31, 2006 Show citation
References
- Caro M., Cruz V., Cuartero J., Estan M.T., Bolarin M.C. (1991): Salinity tolerance of normal-fruited and cherry tomato cultivars. Plant Soil, 136: 249-255.
Go to original source...
- Cramer G.R., Lauchli A., Epstein E. (1986): Effects of NaCl and CaCl2 on ion activities in complex nutrient solutions and root growth of cotton. Plant Physiol., 81: 792-797.
Go to original source...
Go to PubMed...
- Cuartero J., Fernandez-Munoz R. (1999): Tomato and salinity. Sci. Hort., 78: 83-125.
Go to original source...
- Cuartero J., Yeo A.R., Flowers T.J. (1992): Selection of donors for salt-tolerance in tomato using physiological traits. New Phytol., 121: 63-69.
Go to original source...
- Daşgan H.Y., Aktaş H., Abak K., Cakmak I. (2002): Determination of screening techniques to salinity in tomatoes and investigation of genotype responses. Plant Sci., 163: 695-703.
Go to original source...
- Hung J., Redman R.E. (1995): Solute adjustment to salinity and calcium supply in cultivated and wild barley. J. Plant Nutr., 18: 1371-1389.
Go to original source...
- Lauchli A. (1986): Responses and adaptation of crops to salinity. Acta Hort., 190: 243-246.
Go to original source...
- Lauchli A. (1990): Calcium, salinity and plasma membrane. In: Leonard R.J., Hepler P.K. (eds.): Calcium in Plant Growth and Development. In: Proc. 10th An. Revers. Symp. Plant Physiology, Am. Soc. Plant Physiol., Rockville: 26-35.
- Levitt J. (1980): Responses of Plants to Environmental Stresses. Vol. II. 2 nd ed. Academic Press, New York.
- Perez-Alfocea F., Estan M.T., Caro M., Bolarin M.C. (1993): Response of tomato cultivars to salinity. Plant Soil, 150: 203-211.
Go to original source...
- Poljakoff-Mayber A., Symon D.E., Jones G.P., Naidu B.P., Paleg N.G. (1987): Nitrogenous compatible solutes in native sought Australina plants. Aust. J. Plant Physiol., 14: 341-350.
Go to original source...
- Rengel Z. (1992): The role of calcium in salt toxicity. Plant Soil, 149: 229-233.
Go to original source...
- Salim M., Pitman M.G. (1983): Effects of salinity on ion uptake and growth of mung bean plants (Vigna radiata L.). Aust. J. Plant Physiol, 10: 395-407.
Go to original source...
- Santa-Maria G.E., Epstein E. (2001): Potassium/sodium selectivity in wheat and the amphiploid cross wheat × Lophopyrum elongatum. Plant Sci., 160: 532-534.
Go to original source...
Go to PubMed...
- Soliman M.S., Dos M. (1992): Salinity and mineral nutrition effects of growth and accumulation of organic ions in two cultivated tomato varieties. J. Plant Nutr., 15: 2789-2799.
Go to original source...
- Tal M. (1983): Selection for stress tolerance. In: Evans D.E., Sharp W.R., Ammirato P.V., Yamada Y. (eds.): Handbook of Plant Cell Culture. Vol. 1. Collier Macmillan Publ., London: 461-487.
- Taleisnik E., Grunberg K. (1994): Ion balance in tomato cultivars differing in salt tolerance. I. Sodium and potassium accumulation and fluxes under moderate salinity. Physiol. Plant., 92: 528-534.
Go to original source...
- Tattini M., Coradeschi M.A., Ponzio C., Traversi L. (1994): Responses of olive plants to salt stress. In: Abstr. XXIVth Int. Hort. Congr. Kyoto-Japan ISHS.
- Wolf O., Munns R., Tonnet M., Jeschke W.D. (1991): The role of the stem in the partitioning of Na + and K + in salt-treated barley. J. Exp. Bot., 42: 278-282.
Go to original source...
- Yang Y.W., Newton R.J., Miller F.R. (1990): Salinity tolerance in sorghum. I. Whole plant response to sodium chloride in S. bicolor and S. halepense. Crop Sci., 30: 775-781.
Go to original source...
- Yasar F. (2006): Effects of salt stress on ion and lipid peroxidasion content in green beans genotypes. Asian J. Chem. (Submitted)
- Zhang H.X., Blumward E. (2001): Transgenic salt-tolerant tomato plants accumulate salt in foliage but not in fruit. Nat. Biotechnol., 9: 765-768.
Go to original source...
Go to PubMed...
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