Indian Journal of Agricultural Research

  • Chief EditorT. Mohapatra

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Indian Journal of Agricultural Research, volume 53 issue 1 (february 2019) : 83-87

Evaluation of black gram genotypes for saline tolerance at seedling stage
 

B. Priyadharshini, M. Vignesh, M. Prakash, R. Anandan
1Department of Genetics and Plant Breeding, Faculty of Agriculture Annamalai University, Annamalai Nagar-600 802, Tamil Nadu, India.
Cite article:- Priyadharshini B., Vignesh M., Prakash M., Anandan R. (2019). Evaluation of black gram genotypes for saline tolerance at seedling stage. Indian Journal of Agricultural Research. 53(1): 83-87. doi: 10.18805/IJARe.A-5118.
Black gram [Vigna mungo (L.) Hepper] is the third most important pulse crop in India after chickpea and pigeon pea. Soil salinity is one of the major factor responsible for loss in agricultural production. Forty eight black gram genotypes were evaluated for salt tolerance with six different salinity levels viz., EC0, EC4, EC7, EC10, EC13, EC16 at early seedling stage. All the seedling parameters and salt tolerant index were investigated from four days old seedlings. From the results, it was found that there was a gradual decrease with increasing levels of salinity in all the genotypes studied. Seed germination and dry matter production showed more variations than other parameters studied for all the genotypes at different salinity levels. Based on the results, it may be concluded that the genotypes VNBG 017, AUB 3 AND AUB 20 were saline tolerant and VNBG 022, AUB 31 AND AUB 12 were susceptible to salinity. 
  1. Abdul-Baki, A., and Anderson, J.D.(1973). Vigour determination in soybean seed by multiple criteria. Crop Sci.,13: 630-633.
  2. Al-Mutawa, M.M. (2003). Effect of salinity on germination and seedling growth of chickpea (Cicer arientinum L.) genotypes. Inernational Journal of Agronomy and Biology, 5: 227-229.
  3. Ananthi, M., Selvaraju P. and Srimathi P. (2015). Effect of seed treatment on seed and seedling quality characters in Redgram cv. Co (Rg) 7. International Journal of Science and Nature, 6 : 205-208.
  4. Annual Report DPD 2016-17.. Directorate of Pulses Development, Ministry of Agriculture and Farmers Welfare, Government of India. DPD/Pub/TR/19/2016-17.
  5. Ayers, R.S. and Westcot, D.W. (1985). Water Quality for Agriculture, FAO Irrigation and Drainage Paper 29 rev 1. FAO, UN, Rome 174pp.
  6. Carpici, E.B., Celik N. and Bayram G. (2009). Effects of salt stress on germination of some maize (Zea mays L.) cultivars. Afr. J. Biotechnol.,8: 4918-4922.
  7. Cokkizgin A. (2012). Salinity stress in common bean (Phaseolus vulgaris L.) seed germination. Notulae. Botanicae Horti Agrobotanici Cluj-Napoca, 40(1): 177-182. 
  8. FAOSTAT. (2013). http://faostat.fao.org
  9. Farooq, M., Gogoi, N., Barathakur, S., Baroowa, B., Bharadwaj, N., Alghamdi, S.S. and Siddique, K.H.M.(2017). Drought stress in grain legumes during reproduction and grain filling. J. Agron. Crop Sci., 203: 81-102.
  10. Hadush, T. and Gebresilassie, B. (2012). The effect of salinity (NaCl) on germination of selected Grasspea (Lathyrus sativus L.) landraces of Tigray. Asian J. Agric. Sci.,4: 96-101.
  11. Kandil A.A., Sharief A.E., Abido W.A.E., and Ibrahim M.M. (2012).Effect of salinity on seed germination and seedling characters of some forage sorghum cultivars. International Journal of Agriculture Sciences,4(7): 306-311. 
  12. Khajeh-Hossaini, M., Powell, A.A. and Bingham, I.J. (2003). The interaction between salinity stress and seed vigor during germination of soybean seeds. Seed Sci Technol. 31:715-72.
  13. Kumawat, K.R., Gothwal, D.K.,Kumawat, S., Kumawat, R. and Choudhary, M. (2017). Effect of salinity stress on germination and seedling characters of lentil (Lens culinaris) genotypes. Res. J. Chem. Environ. Sci., 5: 34-39.
  14. Mensah, J. K. and Ihenyen, J. (2009). Effects of salinity on germination, seedling establishment and yield of three genotypes of mungbean in Edo State, Nigeria. Nigerian Ann. of Natural Sciences, 8: 17- 24
  15. Nasim,M.R.,Quresh,T.,Aziz.M.,Saqib,Nawaz.S.T.and Pervaiz.S. (2008).Growth and ionic composition of salt stressed Eucalyptus camaldulensis and Eucalyptus teretcomis.Pakistan J.Bot.,40:799-805.
  16. Panse, U.G. and Sukhatme, P.V. (1985). In: Statistical Methods for Agricultural Workers. ICAR, Publication, New Delhi, p. 327-340.
  17. Patade, V.Y., Maya, K. and Zakwan, A. (2011). Seed priming mediated germination improvement and tolerance to subsequent exposure to cold and salt stress in capsicum. Research Journal of Seed Science.4 (3):125 -136.
  18. Saha,P., Chatterjee, P., Biswas, A.K. (2010). NaCl pretreatment alleviates salt stress by enhancement of antioxidant defense and osmolyte accumulation in mungbean (Vigna radiate L.Wilczek). Indian J.Exp.Biol.48: 593-600.
  19. Shahi-Gharahlar, A., Farhoudi, R., Teixeira da Silva, J.A.(2010). Influence of snake melon (Cucumis melo var. flexuosus) seed priming on seedling emergence and seedling electrolyte leakage under salinity. Seed Sci. Biotech. 4 (1):15-18.
  20. Tsegay, B.A. and Gebreslassie, B.(2014). The effect of salinity (NaCl) on germination and early seedling growth of Lathyrus sativus and Pisum sativum var. abyssinicum. Afr. J. Plant Sci.,8: 225-231
  21. Wani, A.S., Ahmad, A., Hayat, S. and Fariduddin, Q. (2013). Salt-induced modulation in growth, photosynthesis and antioxidant system in two varieties of Brassica juncea. Saudi J. Biol. Sci., 20: 183-193. 
  22. Zeng, L., Shannon M.C. and Grieve, C.M. (2002). Evaluation of salt tolerance in rice genotypes by multiple agronomic parameters. Euphytica, 127: 235-245.

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