Cite

Abdul-Baki A.A. & Anderson J.D. (1973): Vigor determination in soybean seed by multiple criteria. Crop Science, 13(6): 630-633. Search in Google Scholar

Akhtar S., Wahid A., Rasul E. (2003): Emergence, growth and nutrient composition of sugarcane sprouts under NaCl salinity. Biologia Plantarum, 46: 113-116. Search in Google Scholar

Akter L., Fakir O., Alam M., Islam M., Chakraborti P., Alam M., Rashid M., Begum M., Kader M. (2018): Amelioration of salinity stress in maize seed germination and seedling growth attributes through seed priming. Journal of Soil Science, 8(5): 137-146. Search in Google Scholar

Aydinoğlu B., Shabani A., Safavi S.M. (2019): Impact of priming on seed germination, seedling growth and gene expression in common vetch under salinity stress. Cellular and Molecular Biology, 65(3): 18–24. Search in Google Scholar

Chen K. & Arora R. (2011): Dynamics of the antioxidant system during seed osmopriming, post-priming germination, and seedling establishment in Spinach (Spinacia oleracea). Plant Science, 180(2): 212-220. Search in Google Scholar

Chen X., Zhang R., Xing Y., Jiang B., Li B., Xu X., Zhou Y. (2021): The efficacy of different seed priming agents for promoting sorghum germination under salt stress. PLoS ONE, 16(1): e0245505. Search in Google Scholar

Cokkizgin A. (2013): Effects of hydro and osmo-priming on seed vigor of pea (Pisum sativum L.). Agriculture, Forestry and Fisheries, 2(6): 225-228. Search in Google Scholar

Dai L.Y., Zhu H.D., Yin K.D., Du J.D., Zhang Y.X. (2017): Seed priming mitigates the effects of saline-alkali stress in soybean seedlings. Chilean Journal of Agricultural Research, 77(2): 118-125. Search in Google Scholar

Duzdemir O., Kurunc A., Unlukara A. (2009): Response of pea (Pisum sativum) to salinity and irrigation water regime. Bulgarian Journal of Agricultural Science, 15(5): 400-409. Search in Google Scholar

FAO Soils protal (2023a): Food and Agriculture Organization of the United Nations. Available at: https://www.fao.org/soils-portal/data-hub/soil-maps-and-databases/global-map-of-salt-affected-soils/en/ (accessed 09.06.2023.) Search in Google Scholar

FAO (2023b): Food and Agriculture Organization of the United Nations (FAO) (2023b). Food and agriculture data. Available at: http://www.fao.org/faostat/en/#data (accessed 09.06.2023.) Search in Google Scholar

Farooq M., Basra S.M.A., Afzal I., Khaliq A. (2006): Optimization of hydropriming techniques for rice invigoration. Seed Science and Technology, 34: 507-512. Search in Google Scholar

Farooq M., Basra S.M.A., Rehman H., Ahmad N., Saleem, B.A. (2007): Osmopriming improves the germination and early seedling growth of melons (Cucumis melo L.). Pakistan Journal of Agriculture Science, 44(3): 529-536. Search in Google Scholar

Farooq M., Basra S.M.A., Wahid A., Khaliq A, Kobayashi N. (2009): Rice seed invigoration: a review. In: Organic Farming, Pest control and remediation of soil pollutants (E. Lichtfouse, Ed.). Springer, the Netherlands, pp. 137-175. Search in Google Scholar

Farooq M., Wahid A., Basra S.M.A., Siddique K.H.M. (2010): Improving crop resistance to abiotic stresses through seed invigoration. In: M. Pessarakliv (Ed.). Handbook of Plant and Crop Stress, 3rd Edition., Taylor and Francis Group, Boca Raton, FL, USA, pp.1031-1050. Search in Google Scholar

Farooq M., Irfan M., Aziz T., Ahmad I., Cheema S.S. (2013): Seed priming with ascorbic acid improves drought resistance of wheat. Journal of Agronomy and Crop Science, 199: 12-22. Search in Google Scholar

Godfrey W.N., Onyango J.C., Beck E. (2004): Sorghum and salinity: II. Gas exchange and chlorophyll fluorescence of sorghum under salt stress. Crop Science, 44: 806-811. Search in Google Scholar

Ghezal N., Rinez I., Sbai H., Saad I., Farooq M., Rinez A., Zribi I., Haouala R. (2016): Improvement of Pisum sativum salt stress tolerance by bio-priming their seeds using Typha angustifolia leaves aqueous extract. South African Journal of Botany, 105: 240-250. Search in Google Scholar

Hussain M., Farooq M., Shehzad M., Khan M.B., Wahid A., Shabir G. (2012): Evaluating the performance of elite sunflower hybrids under saline conditions. International Journal of Agriculture and Biology, 14: 131-135. Search in Google Scholar

ISTA (2022): International Rules for Seed Testing. Seed Science and Technology. Zurich, Switzerland. Search in Google Scholar

Jafar M.Z., Farooq M., Cheema M.A., Afzal I., Basra S.M.A., Wahid M.A., Aziz T., Shahid M. (2012): Improving the performance of wheat by seed priming under saline conditions. Journal of Agronomy and Crop Science, 198: 38-45. Search in Google Scholar

Kaya M.D., Okçub G., Ataka M., Çiklic Y., Kolsaricia O. (2006): Seed treatments to overcome salt and drought stress during germination in sunflower (Helianthus annuus L.). European Journal of Agronomy, 24: 291-295. Search in Google Scholar

Khajeh-Hosseini M., Powell A.A., Bingham I.J. (2003): The interaction between salinity stress and seed vigor during germination of soybean seeds. Seed Science and Technology, 31: 715-725. Search in Google Scholar

Liang W., Ma X., Wan P., Liu L. (2018): Plant salt-tolerance mechanism: A review. Biochemical and Biophysical Research Communications, 495: 286-291. Search in Google Scholar

Matias J.R., Torres S.B., Leal C.P., Leite M.S., Carvalho S.M.C. (2018): Hydropriming as inducer of salinity tolerance in sunflower seeds. Revista Brasileira de Engenharia Agrícola e Ambiental, 22(4): 255-260. Search in Google Scholar

McDonald M.B. (2000): Seed priming. In: Seed Technology and its Biological Basis (M. Black & J.D. Bewley, Eds.). Sheffield, Sheffield Academic Press, pp. 287-325. Search in Google Scholar

Mouradi M., Bouizgaren A., Farissi M., Makoudi B., Kabbadj A., Very A.A., Sentenac H., Qaddoury A., Ghoulam C. (2016): Osmopriming improves seeds germination, growth, antioxidant responses and membrane stability during early stage of Moroccan alfalfa population under water deficit. Chilean Journal of Agricultural Research, 76(3): 265-272. Search in Google Scholar

Murungu F.S. (2011): Effects of seed priming and water potential on seed germination and emergence of wheat (Triticum aestivum L.) varieties in laboratory assays and in the field. African Journal of Biotechnology, 10(21): 4365-4371. Search in Google Scholar

Naglreiter C., Reichenauer T.G., Goodman B.A., Bolhàr-Nordenkampf H.R. (2005): Free radical generation in Pinus sylvestris and Larix decidua seeds primed with polyethylene glycol or potassium salt solutions. Plant Physiology and Biochemistry, 43(2): 117–123. Search in Google Scholar

Nasri N., Kaddour R., Mahmoudi H., Baatour O., Bouraoui N., Lachaâl M. (2011): The effect of osmopriming on germination, seedling growth and phosphatase activities of lettuce under saline conditions. African Journal of Biotechnology, 10(65): 14366-14372. Search in Google Scholar

Nejatzadeh-Barandozi F. (2018): Data on seed priming and seedling growth of Barli 21 tobacco varieties under polyethyleneglycol and salinity stress conditions. Data in Brief, 20: 454–458. Search in Google Scholar

Nikolopoulou D., Grigorakis K., Stasini M., Alexis M.N., Iliadis K. (2007): Differences in chemical composition of field pea (Pisum sativum) cultivars: effects of cultivation area and year. Food Chemistry, 103: 847-852. Search in Google Scholar

Oliviera C.E.S., Steiner F., Zuffo A.M., Zoz T., Alves C.Z., Aguiar V.C.B. (2019): Seed priming improves the germination and growth rate of melon seedlings under saline stress. Ciência Rural, 49(7): 1-11. Search in Google Scholar

Pawar Y., Varma L.R., Verma P., Joshi H.N., More S.G., Dabhi J.S. (2017): Influences of integrated use of organic and inorganic sources of nutrients on growth, flowering and yield of garden pea (Pisum sativum L.) cv. Bonneville. Legume Research, 40(1): 117-124. Search in Google Scholar

Petrović G., Jovičić D., Nikolić Z., Tamindžić G., Ignjatov M., Milošević D., Milošević B. (2016): Comparative study of drought and salt stress effects on germination and seedling growth of pea. Genetika, 48(1): 373-381. Search in Google Scholar

Sarwar N., Yousaf S., Jamil F.F. (2006): Introduction of salt tolerance in chickpea by using simple and safe chemicals. Pakistan Journal of Botany, 38(2): 325-329. Search in Google Scholar

Sharma P., Jha A.B., Dubey R.S., Pessarakli M. (2012): Reactive oxygen species, oxidative damage, and antioxidative defense mechanism in plants under stressful conditions. Journal of Botany, Article ID 217037, 1-26. Search in Google Scholar

Srivastava L.M. (2002): Plant growth and development: Hormones and Environment. Oxford: Academic Press, London. Search in Google Scholar

Steiner F., Zuffo A.M., da Silva Oliveira C.E., Honda G.B., Machado J.S. (2018): Potassium nitrate priming mitigates salt stress on wheat seedlings. Revista de Ciências Agrárias, 41(4): 989-1000. Search in Google Scholar

Van Zelm E., Zhang Y., Testerink C. (2020): Salt Tolerance Mechanisms of Plants. Annual Review of Plant Biology, 71: 403-433. Search in Google Scholar

Wang W., Vinocur B., Altman A. (2003): Plant responses to drought, salinity and extreme temperatures: towards genetic engineering for stress tolerance. Planta, 218: 1-14. Search in Google Scholar

Zhang X., Guo Q., Shen X. (2009): Effects of seed priming on salt tolerance in Prunella vulgaris seed germination under saline conditions. China Journal of Chinese Materia Medica, 34(8): 944-947. Search in Google Scholar

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