Cite

Aliu S., Rusinovci I., Fetahu S., Gashi B., Simeonovska E., Rozman L. (2015): The effect of salt stress on the germination of maize (Zea mays L.) seeds and photosynthetic pigments. Acta agriculturae Slovenica 105: 85 – 94. doi: 10.14720/aas.2015.105.1.09.10.14720/aas.2015.105.1.09 Search in Google Scholar

Almansouri M., Kinet J., Lutts S. (2001): Effect of salt and osmotic stresses on germination in durum wheat (Triticum durum Desf.). Plant and Soil 231: 243 – 254. doi: 10.1023/A: 1010378409663. Search in Google Scholar

Amirjani M. R. (2010): Effect of Salinity Stress on Growth, Mineral Composition, Proline Content, Antioxidant Enzymes of Soybean. American Journal of Plant Physiology 5: 350 – 360. doi: 10.3923/ajpp.2010.350.360.10.3923/ajpp.2010.350.360 Search in Google Scholar

Askari H., Kazemitabar S. K., Zarrini H. N., Saberi M. H. (2016): Salt tolerance assessment of barley (Hordeum vulgare L.) genotypes at germination stage by tolerance indices. Open Agriculture 1: 37 – 44. doi: 10.1515/opag-2016-0005.10.1515/opag-2016-0005 Search in Google Scholar

Association of Official Seed Analysts (AOSA)(1983): Seed Vigor Hand Testing Book, Contribution No. 32 to the Handbook on Seed testing, Association of Official Seed Analysts, Springfield, USA, 122 – 128. Search in Google Scholar

Azza-Mazher A. M., Fatma El-Quesni E. M., Farahat M. M. (2007): Responses of ornamental plants and woody trees to salinity. World Journal of Agricultural Sciences 3: 386 – 395. Search in Google Scholar

Bidima I. M. (2012): Cowpea Bean: White Gold from the Sahel. The farmer’s voice, Monthly Rural Entrepreneur. [In French]. Search in Google Scholar

Bohnert H. J., Nelson D. E., Jensen R. G. (1995): Adaptations to environmental stresses. The Plant Cell 7: 1099 – 1111. doi: 10.1105/tpc.7.7.1099.10.1105/tpc.7.7.1099 Search in Google Scholar

Cokkizgin A. (2012): Salinity Stress in Common Bean (Phaseolus vulgaris L.) Seed Germination. Notulae Botanicae Horti Agrobotanic Cluj-Napoca 40: 177 – 182. doi: 10.15835/nbha4017493.10.15835/nbha4017493 Search in Google Scholar

Cokkizgin A., Cokkizgin H. (2010): Effects of lead (PbCl2) stress on germination of lentil (Lens culinaris Medic.) lines. African Journal of Biotechnology 9: 8608 – 8612. doi: 10.5897/AJB10.890. Search in Google Scholar

Dugje I. Y., Omoigui L. O., Ekeleme F., Kamara A. Y., Ajeigbe H. (2009): Cowpea production in West Africa: Farmer’s guide. Ibadan, Nigeria: IITA, p. 20. [In French]. Search in Google Scholar

Fageria N. K. (1985): Salt tolerance of rice cultivars. Plant and Soil 88: 237 – 243.10.1007/BF02182450 Search in Google Scholar

Fageria N. K., Gheyi H. R., Moreira A. (2011): Nutrient bioavailability in salt affected soils. Journal of Plant Nutrition 34: 945 – 962. doi: 10.1080/01904167.2011.555578.10.1080/01904167.2011.555578 Search in Google Scholar

Fatokun C., Girma G., Abberton M., Gedil M., Unachukwu N., Oyatomi O., Yusuf M., Rabbi I., Boukar O. (2018): Genetic diversity and population structure of a mini-core subset from the world cowpea (Vigna unguiculata (L.) Walp.) germplasm collection. Scientific Reports 8: Article ID 16035, 7 p. doi: 10.1038/s41598-018-34555-9.10.1038/s41598-018-34555-9 Search in Google Scholar

Fisher R. A., Turner N. C. (1978): Plant productivity, in arid and semi-arid zones. Annual Review of Plant Physiology 29: 897 – 912. Search in Google Scholar

Ghoulam C., Foursy A., Fares K. (2002): Effects of salt stress on growth, inorganic ions and proline accumulation in relation to osmotic adjustment in five sugar beet cultivars. Environmental and Experimental Botany 47: 39 – 50. doi: 10.1016/s0098-8472(01)00109-5.10.1016/S0098-8472(01)00109-5 Search in Google Scholar

Gill P. K., Sharma A. D., Singh P., Bhullar S. S. (2003): Changes in germination, growth and soluble sugar contents of Sorghum bicolor (L.) Moench seeds under various abiotic stresses. Plant Growth Regulation 40: 157 – 162.10.1023/A:1024252222376 Search in Google Scholar

Hakim M. A., Juraimi A. S., Begum M., Hanafi M. M., Ismail M. R., Selamat A. (2010): Effect of salt stress on germination and early seedling growth of rice (Oryza sativa L.). African Journal of Biotechnology 9: 1911 – 1918. doi: 10.5897/AJB09.1526.10.5897/AJB09.1526 Search in Google Scholar

Hamam K. A., Negim O. (2014): Evaluation of wheat genotypes and some soil properties under saline water irrigation. Annals of Agricultural Sciences59: 165 – 176. doi: 10.1016/j.aoas.2014.11.002.10.1016/j.aoas.2014.11.002 Search in Google Scholar

Hamid S., Muzaffar S., Wani I. A., Masoodi F. A., Bhat M. M. (2016): Physical and cooking characteristics of two cowpea cultivars grown in temperate Indian climate. Journal of the Saudi Society of Agricultural Sciences 15: 127 – 134. doi: 10.1016/j.jssas.2014.08.002.10.1016/j.jssas.2014.08.002 Search in Google Scholar

Hasanuzzaman M., Nahar K., Alam M., Roychowdhury R., Fujita M. (2013): Physiological, Biochemical, and Molecular Mechanisms of Heat Stress Tolerance in Plants. International Journal of Molecular Sciences 14: 9643 – 9684. doi: 10.3390/ijms14059643.10.3390/ijms14059643367680423644891 Search in Google Scholar

Hu J., Zhu Z. Y., Song W. J., Wang J. C., Hu W. M. (2005): Effects of sand priming on germination and field performance in direct-sown rice (Oryza sativa L.). Seed Science and Technology 33: 243 – 248. doi: 10.15258/sst.2005.33.1.25.10.15258/sst.2005.33.1.25 Search in Google Scholar

Isayenkov S. V., Maathuis F. J. M. (2019): Plant Salinity Stress: Many Unanswered Questions Remain. Frontiers in Plant Science 10, Article 80. doi: 10.3389/fpls.2019.00080.10.3389/fpls.2019.00080638427530828339 Search in Google Scholar

Islam M. M., Haque M. S., Sarwar A. G. (2019): Salt tolerance of cowpea genotypes during seed germination and seedling growth. Journal of the Bangladesh Agricultural University 17: 39 – 44. doi: 10.3329/jbau.v17i1.40661.10.3329/jbau.v17i1.40661 Search in Google Scholar

Kaydan D., Yagmur M. (2008): Germination, seedling growth and relative water content of shoot in different seed sizes of triticale under osmotic stress of water and NaCl. African Journal of Biotechnology 7: 2862 – 2868. Search in Google Scholar

Kebede E., Bekeko Z. (2020): Expounding the production and importance of cowpea (Vigna unguiculata (L.) Walp.) in Ethiopia. Cogent Food & Agriculture 6: 1769805. 21 p. doi: 10.1080/23311932.2020.1769805.10.1080/23311932.2020.1769805 Search in Google Scholar

Khalid H., Kumari M., Grover A., Nasim M. (2015): Salinity Stress Tolerance of Camelina Investigated In Vitro. Scientia Agriculturae Bohemica 46: 137 – 144. doi: 10.1515/sab-2015-0028.10.1515/sab-2015-0028 Search in Google Scholar

Kouam E. B., Tsague E. L. Mandou M. S. (2017a): Effects of Salinity Stress (NaCl) on Growth Attributes and Some Nutrient Accumulation in Cowpea (Vigna unguiculata). Current Botany 8: 164 – 170. doi: 10.19071/cb.2017.v8.3282.10.19071/cb.2017.v8.3282 Search in Google Scholar

Kouam E. B., Ndo S. M., Mandou M. S., Chotangui A. H., Tankou C. M. (2017b): Genotypic variation in tolerance to salinity of common beans cultivated in Western Cameroon as assessed at germination and during early seedling growth. Open Agriculture 2: 600 – 610. doi: 10.1515/opag-2017-0064.10.1515/opag-2017-0064 Search in Google Scholar

Maguire J. D. (1962): Speed of germination-aid in selection and evaluation for seedling emergence and vigor. Crop Science 2: 176 – 177. doi: 10.2135/cropsci1962.0011183X000200020033x.10.2135/cropsci1962.0011183X000200020033x Search in Google Scholar

Mehrun N., Khan M. A., Weber D. J. (2007): Dormancy, germination and viability of Salsola imbricata seeds in relation to light, temperature and salinity. Seed Science and Technology 35: 595 – 606. doi: 10.15258/sst.2007.35.3.07.10.15258/sst.2007.35.3.07 Search in Google Scholar

Murillo-Amador B., Troyo-Diéguez E., Jones H. G., Ayala-Chairez F., Tinoco-Ojanguren C. L., López-Cortés A. (2000): Screening and classification of cowpea genotypes for salt tolerance during germination. Phyton 67: 71 – 84. Search in Google Scholar

National Research Counci l(1993): Soil and Water Quality: An Agenda for Agriculture. Washington, DC: The National Academies Press. 519 p. doi: 10.17226/2132.10.17226/2132 Search in Google Scholar

Negrão S., Schmöckel S. M., Tester M. (2016): Evaluating physiological responses of plants to salinity stress. Annals of Botany119: 1 – 11. doi: 10.1093/aob/mcw191.10.1093/aob/mcw191521837227707746 Search in Google Scholar

Pessarakli M. (1991): Dry matter yield, nitrogen-15 absorption, and water uptake by green bean under sodium chloride stress. Crop Science 31: 1633 – 1640. doi: 10.2135/cropsci1991.0011183X003100060051x.10.2135/cropsci1991.0011183X003100060051x Search in Google Scholar

Rengasamy P. (2010): Soil processes affecting crop production in salt-affected soils. Functional Plant Biology 37: 613 – 620. doi: 10.1071/FP09249.10.1071/FP09249 Search in Google Scholar

Ruprecht J., Dogramaci S. (2005): Salinization. Encyclopedia of Hydrological Sciences, 19 p. doi: 10.1002/0470848944.hsa102.10.1002/0470848944.hsa102 Search in Google Scholar

Sánchez-Blanco M. J., Bolarín M., Alarcón J. J., Torrecilas A. (1991): Salinity effect on water relations in Lycopersicon esculentum and its wild salt-tolerant relative species L. pennelli. Physiologia Plantarum 83: 269 – 274. doi: 10.1111/j.1399-3054.1991.tb02152.x.10.1111/j.1399-3054.1991.tb02152.x Search in Google Scholar

Sayar R., Bchini H., Mosbahi M., Khemira H. (2010): Response of durum wheat (Triticum durum Desf.) growth to salt and drought stresses. Czech Journal of Genetics and Plant Breeding 46: 54 – 63. doi: 10.17221/85/2009-CJGPB.10.17221/85/2009-CJGPB Search in Google Scholar

Shanon M. C. (1986): New insights in plant breeding efforts for improved salt tolerance. Hort Technology 6: 96 – 99.doi: 10.21273/HORTTECH.6.2.96A.10.21273/HORTTECH.6.2.96A Search in Google Scholar

Shrivastava P., Kumar R. (2015): Soil salinity: A serious environmental issue and plant growth promoting bacteria as one of the tools for its alleviation. Saudi Journal of Biological Sciences 22: 123 – 131. doi: 10.1016/j.sjbs.2014.12.00110.1016/j.sjbs.2014.12.001433643725737642 Search in Google Scholar

Singh J., Sastry E. V. D., Singh V. (2012): Effect of salinity on tomato (Lycopersicon esculentum Mill.) during seed germination stage. Physiology and Molecular Biology of Plants 18: 45 – 50. doi: 10.1007/s12298-011-0097-z.10.1007/s12298-011-0097-z355052923573039 Search in Google Scholar

Tavakkoli E., Rengasamy P., McDonald G. K. (2010): High concentrations of Na+ and Cl– ions in soil solution have simultaneous detrimental effects on growth of faba bean under salinity stress. Journal of Experimental Botany 61: 4449 – 4459. doi: 10.1093/jxb/erq251.10.1093/jxb/erq251295575420713463 Search in Google Scholar

Thiam M., Champion A., Diouf D., Sy M. O. (2013): NaCl effects on in vitro germination and growth of some senegalese cowpea (Vigna unguiculata (L.) Walp.) cultivars. ISRN Biotechnology 2013, Article ID 382417, 11 p. doi: 10.5402/2013/382417.10.5402/2013/382417439303525937976 Search in Google Scholar

Torche Y., Blair M., Saida C. (2018): Biochemical, physiological and phenological genetic analysis in common bean (Phaseolus vulgaris L.) under salt stress. Annals of Agricultural Sciences 63: 153 – 161. doi: 10.1016/j.aoas.2018.10.002.10.1016/j.aoas.2018.10.002 Search in Google Scholar

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