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Research Articles

Cumulative effects of Lithovit-standard, monopotassium-phosphate and acetyl salicylic acid applied at different growth stage of tomato salt-stressed plants

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Pages 2710-2726 | Received 02 Jun 2021, Accepted 05 Oct 2021, Published online: 18 Apr 2022

References

  • Abdel Fattah, G. H., A. S. El-Fouly, and A. Abdel Monem. 2014. Effect of using mono potassium phosphate and gypsum in alleviating the deleterious effect of saline water irrigation on Polianthes tuberosa. L. Plant. Middle East Journal of Agriculture Research 3 (4):890–9.
  • Agamy, R. A., E. E. Hafez, and T. H. Taha. 2013. Acquired resistant motivated by salicylic acid applications on salt stressed tomato (Lycopersiconesculentum Mill.). American-Eurasian Journal of Agricultural & Environmental Sciences 13:50–7.
  • Akbar, H. J. K. Timothy, T. M. Jagadish, M. Golam, K. C. Apurbo, F. Muhammad, B. Rajan, S. Fahad, and M. Hasanuzzaman. 2020. Agricultural land degradation: processes and problems undermining future food security. In Environment, climate, plant and vegetation growth, ed. Fahad, S., Hasanuzzaman, M., Alam, M., Ullah, H., Saeed, M., Khan, A.K, and Adnan, M., 17–62.Switzerland: Springer Nature.
  • Al-Taisan, W. A., A. A. Al-Qarawi, and M. S. Alsubiee. 2010. Effect of water stress by polyethylene glycol 8000 and sodium chloride on germination of Ephedra alata Decne seeds. Saudi Journal of Biological Sciences 17 (3):253–7. doi: 10.1016/j.sjbs.2010.04.011.
  • Andersen, C. J., B. N. Jensen, and N. R. Keiding. 1962. Magnesium determination by flame photometry. Scandinavian Journal of Clinical and Laboratory Investigation 14 (5):560–2. doi: 10.3109/00365516209051280.
  • Arif, M. J. Talha, R. Muhammad, S. Fahad, A. Muhammad, A. Amanullah Kawsar, A. M. Ishaq, K. Bushra, and R. Fahd. 2020. Biochar; a remedy for climate change. In Environment, climate, plant and vegetation growth. ed. Fahad, S., Hasanuzzaman, M., Alam, M., Ullah, H., Saeed, M., Khan, A.K., Adnan, M. 151–72. Switzerland AG: Springer Nature.
  • Azarmi, R., R. D. Taleshmikail, and A. Gikloo. 2010. Effects of salinity on morphological and physiological changes and yield of tomato in hydroponics system. Journal of Food, Agriculture and Environment. 8 (2):573–6.
  • Bankmed-Market & Economic Research Division 2016. Analysis of Lebanon's Food Market.
  • Black, C. A. 1965. Methods of soil analysis. Madison, Wisconsin: Part2 American Society of Agronomy, INC.
  • Boamah, P. O., L. K. Sam-Amoah, and J. Onumah. 2011. Effect of salinity level of irrigation water on the yield of tomato. ARPN Journal of Agricultural and Biological Science 6 (8):49–53.
  • Brown, J. D., and L. Lilleland. 1946. Rapid determination of potassium and sodium in plant material and soil extracts by flame photometry. Proceedings of the American Society for Horticultural Science 48:341–6.
  • Chapagain, B. P., and Z. Wiesman. 2004. Effect of Nutri-Vant-PeaK foliar spray on plant development, yield, and fruit quality in greenhouse tomatoes. Scientia Horticulturae (Amsterdam) 102 (2):177–88. doi: 10.1016/j.scienta.2003.12.010.
  • Cuartero, J., and R. Fernández-Muñoz. 1998. Tomato and salinity. Scientia Horticulturae 78 (1–4):83–125. doi: 10.1016/S0304-4238(98)00191-5.
  • Darwish, T., T. Atallah, M. E. Moujabber, and N. Khatib. 2005. Salinity evolution and crop response to secondary soil salinity in two agro-climatic zones of Lebanon. Agricultural Water Management 78 (1-2):152–64. doi: 10.1016/j.agwat.2005.04.020.
  • El Chami, D., M. E. Moujabber, and A. Scardigno. 2009. Regional water management in Coastal Lebanon. Water Resources Management 20 (2):161–80.
  • EL Sabagh, A., Hossain, A., Barutçular, C., Iqbal, M.A., Islam, M.S., Fahad, S., Sytar, O., Çig, F., Meena, R.S, and Erman, M. 2020. Consequences of salinity stress on the quality of crops and its mitigation strategies for sustainable crop production: an outlook of arid and semi- arid regions. In Environment, climate, plant and vegetation growth. ed. Fahad, S., Hasanuzzaman, M., Alam, M., Ullah, H., Saeed, M., Khan, A.K., Adnan, M. 503–34. Switzerland AG: Springer Nature.
  • Fahad, S., and A. Bano. 2012. Effect of salicylic acid on physiological and biochemical characterization of maize grown in saline area. Pakistan Journal of Botany. 44:1433–8.
  • Fahad, S., Y. Chen, S. Saud, K. Wang, D. Xiong, C. Chen, C. Wu, F. Shah, L. Nie, and J. Huang. 2013. Ultraviolet radiation effect on photosynthetic pigments, biochemical attributes, antioxidant enzyme activity and hormonal contents of wheat. Journal of Food, Agriculture and Environment 11 (3&4):1635–41.
  • Fahad, S., S. Hussain, A. Bano, S. Saud, S. Hassan, D. Shan, F. A. Khan, F. Khan, Y. Chen, C. Wu, et al. 2014a. Potential role of phytohormones and plant growth-promoting rhizobacteria in abiotic stresses: consequences for changing environment. Environmental Science and Pollution Research International 22 (7):4907–21.
  • Fahad, S., S. Hussain, A. Matloob, F. A. Khan, A. Khaliq, S. Saud, S. Hassan, D. Shan, F. Khan, N. Ullah, et al. 2014b. Phytohormones and plant responses to salinity stress: A review. Plant Growth Regulation 75 (2):391–404. doi: 10.1007/s10725-014-0013-y.
  • Fahad, S., S. Hussain, S. Saud, S. Hassan, B. S. Chauhan, F. Khan, et al. 2016a. Responses of rapid viscoanalyzer profile and other rice grain qualities to exogenously applied plant growth regulators under high day and high night temperatures. PLoS One. 11 (7):e0159590. doi: 10.1371/journal.pone.0159590.
  • Fahad, S., S. Hussain, S. Saud, F. Khan, S. Hassan, Jr, A. Amanullah, W. Nasim, M. Arif, F. Wang, and J. Huang. 2016b. Exogenously applied plant growth regulators affect heat-stressed rice pollens. Journal of Agronomy and Crop Science 202:139–50. doi: 10.1111/jac.12148.
  • Fahad, S., S. Hussain, S. Saud, S. Hassan, Z. Ihsan, A. N. Shah, C. Wu, M. Yousaf, W. Nasim, H. Alharby, et al. 2016c. Exogenously applied plant growth regulators enhance the morphophysiological growth and yield of rice under high temperature. Front Plant Sci.7:1250.
  • Fahad, S., S. Hussain, S. Saud, S. Hassan, M. Tanveer, M. Z. Ihsan, A. N. Shah, A. Ullah, K. Nasrullah, F. Ullah, et al. 2016d. A combined application of biochar and phosphorus alleviates heat-induced adversities on physiological, agronomical and quality attributes of rice. Plant Physiology and Biochemistry. 103:191–8.
  • Fahad, S., S. Hussain, S. Saud, M. Tanveer, A. A. Bajwa, S. Hassan, A. N. Shah, A. Ullah, C. Wu, F. A. Khan, et al. 2015a. A biochar application protects rice pollen from high-temperature stress. Plant Physiology and Biochemistry : PPB 96:281–7. doi: 10.1016/j.plaphy.2015.08.009.
  • Fahad, S., L. Nie, Y. Chen, C. Wu, D. Xiong, S. Saud, L. Hongyan, K. Cui, and J. Huang. 2015b. Crop plant hormones and environmental stress. Sustainable Agriculture Reviews 15:371–400.
  • Garner, D. C. H. Cristo, and P. Wiley. 2005. Measurement of pH and titratable acidity. In Quality evaluation methodology. USA: Kearney Agricultural Center.
  • Gerardeaux, E., L. Jordan-Meille, J. Constantin, S. Pellerin, and M. Dingkuhn. 2010. Changes in plant morphology and dry matter partitioning caused by potassium deficiency in Gossypium hirsutum (L.). Environmental and Experimental Botany 67 (3):451–9. doi: 10.1016/j.envexpbot.2009.09.008.
  • Issa, D. B., S. M. Alturki, T. K. Sajyan, and Y. N. Sassine. 2020. Sorbitol and lithovit-guano25 mitigates the adverse effects of salinity on eggplant grown in pot experiment. Agronomy Research 18 (1):113–26.
  • Jones, J. B. 1999. Tomato plant culture: In the field, greenhouse, and home garden. 11–53. Florida: CRC Press LLC.
  • Kanai, S., R. E. Moghaieb, H. A. El-Shemy, R. Panigrahi, P. K. Mohapatra, J. Ito, N. T. Nguyen, H. Saneoka, and K. Fujita. 2011. Potassium deficiency affects water status and photosynthetic rate of the vegetative sink in green house tomato prior to its effects on source activity. Plant Science: An International Journal of Experimental Plant Biology 180 (2):368–74. doi: 10.1016/j.plantsci.2010.10.011.
  • Kaya, C., D. Higgs, F. Ince, B. M. Amador, A. Cakir, and E. Sakar. 2003. Ameliorative effects of potassium phosphate on salt‐stressed pepper and cucumber. Journal of Plant Nutrition 26 (4):807–20. doi: 10.1081/PLN-120018566.
  • Kling, G. J., and J. M. M. Meyer. 1983. Effects of phenolic compounds and IAA on adventitious root initiation in cuttings of Phaseolus aureus, Acer saccharinum and Acer griseum. Horticultural Science 18:352–4.
  • Kumar, P. 2011. Nanotechnology in agriculture. Financing Agriculture 34:8–10.
  • Marschner, H. 1995. Functions of mineral nutrients: Macronutirents. In Mineral nutrition of higher plants, ed. Marschner H. 2nd ed. 299–312. New York: Academic Press.
  • Mengel, K, and E. Kirkby. 2001. Principals of plant nutrition. 5th ed. Bern, Switzerland: International Potash Institute.
  • MoA 2007. Project of agriculture census 2005. Ministry of Agriculture.
  • Mohammad, M. J. A. 1993. Wheat growth and P uptake responses to mycorrhizal inoculation and deep P placement., Ph.D. Dissertation., Washington State University, Pullman, WA.
  • Moraru, C. I, et al. 2003. Nanotechnology: A new frontier in food science. Food Technology 57 (12):24–9.
  • Najafian, S., M. Khoshkhui, and V. Tavallali. 2009. Effect of salicylic acid and salinity in rosemary (Rosmarinus officinalis L.): Investigation on changes in gas exchange, water relations, and membrane stabilization. Adv. Environ. Biol 3 (3):322–8.
  • Negrão, S., S. M. Schmöckel, and M. Tester. 2017. Evaluating physiological responses of plants to salinity stress. Annals of Botany 119 (1):1–11. doi: 10.1093/aob/mcw191.
  • Oztekin, G. B., and Y. Tuzel. 2011. Comparative salinity responses among tomato genotypes and rootstocks. Pakistan Journal of Botany 43 (6):2665–72.
  • Parvin, K., K. U. Ahamed, M. M. Islam, and M. N. Haque. 2015. Response of tomato plant under salt stress: role of exogenous calcium. Journal of Plant Sciences 10 (6):222–33. doi: 10.3923/jps.2015.222.233.
  • Perkins-Veazie, P, and W. Roberts. 2003. Can potassium application affect the mineral and antioxidant content of horticultural crops?. Paper presented at the Amer. Soc. Agron., Proc. Symposium on Fertilizing Crops for Functional Foods, 2/1–/6.
  • Plaut, Z., M. Edelstein, and M. Ben-Hur. 2013. Overcoming salinity barriers to crop production using traditional methods. Critical Reviews in Plant Sciences 32 (4):250–91. doi: 10.1080/07352689.2012.752236.
  • Poorter, H., K. J. Niklas, P. B. Reich, J. Oleksyn, P. Poot, and L. Mommer. 2012. Biomass allocation to leaves, stems and roots: meta-analyses of interspecific variation and environmental control. The New Phytologist 193 (1):30–50. doi: 10.1111/j.1469-8137.2011.03952.x.
  • Qaryouti, M. M., W. Qawasmi, H. Hamdan, and M. Edwan. 2007. Influence of NaCl salinity stress on yield, plant water uptake and drainage water of tomato grown on soilless culture. Acta Horticulturae 747:539–44.
  • Raza, M. A., A. Saeed, H. Munir, K. Ziaf, A. Shakeel, N. Saeed, A. Munawar, and F. Rehman. 2017. Screening of tomato genotypes for salinity tolerance based on early growth attributes and leaf inoranicosmolytes. Archives of Agronomy and Soil Science 63 (4):501–10. doi: 10.1080/03650340.2016.1224856.
  • Rending, V. V, and H. M. Taylor. 1989. Principles of Soil-plant interrelationships. 186. New York: McGraw-Hill.
  • Rodriguez-Navarro, A. 2000. Potassium transport in fungi and plants. Acta Biochimica et Biophysica Sinica 1469:1–30.
  • Rubio, F., P. Flores, J. M. Navarro, and V. Martínez. 2003. Effects of Ca2+, K + and cGMP on Na + uptake in pepper plants. Plant Science 165 (5):1043–9. doi: 10.1016/S0168-9452(03)00297-8.
  • Sajid, H. H. Jie, H. Jing, A. Shakeel, N. Satyabrata, A. Sumera, S. Awais, Z. Chunquan, Z. Lianfeng, C. Xiaochuang, et al. 2020. Rice production under climate change: adaptations and mitigating strategies. In Environment, climate, plant and vegetation growth. ed. Fahad, S., Hasanuzzaman, M., Alam, M., Ullah, H., Saeed, M., Khan, A.K., Adnan, M. 659–86. Switzerland AG: Springer Nature.
  • Sajyan, T. K., W. Allaw, N. Shaban, and Y. N. Sassine. 2019a. Effect of exogenous application of glycine betaine on tomato plants subjected to salt stress. Acta Horticulturae 1253 (1253):41–8. doi: 10.17660/ActaHortic.2019.1253.6.
  • Sajyan, T. K., S. M. Alturki, and Y. N. Sassine. 2020. Nano-fertilizers and their impact on vegetables: contribution of Nano-chelate Super Plus ZFM and Lithovit®-standard to improve salt-tolerance of pepper. Annals of Agricultural Sciences. 65 (2):200–8. doi: 10.1016/j.aoas.2020.11.001.
  • Sajyan, T. K., M. Chokor, N. Shaban, and Y. N. Sassine. 2019b. Enhancing salt tolerance of tomato (Solanum lycopersicum) by foliar application of aspirin (acetyl salicylic acid). Acta Horticulturae 1253 (1253):49–54. [CrossRef][10.17660/ActaHortic.2019.1253.7]
  • Sajyan, T. K., L. Naim, Z. Sebaaly, J. Rizkallah, N. Shaban, and Y. N. Sassine. 2019e. Alleviating the adverse effects of salinity stress on tomato crop (Solanum lycopersicum) using nano-fertilizer as foliar application. Acta Horticulturae 1253 (1253):33–40. doi: 10.17660/ActaHortic.2019.1253.5.
  • Sajyan, T. K., J. Rizkallah, Z. Sebaaly, N. Shaban, and Y. N. Sassine. 2019c. Investigating the potential use of mono-potassium phosphate (MKP: 0-52-34) applied through fertigation as a method to improve salinity tolerance of tomato plants. Acta Horticulturae 1253 (1253):1–8. doi: 10.17660/ActaHortic.2019.1253.1.
  • Sajyan, T. K., N. Shaban, J. Rizakallah, and N. Sassine. 2018. Effects of monopotassium-phosphate, nano-calcium fertilizer, acetyl salicylic acid and glycinebetaine application on growth and production of tomato (Solanum lycopersicum) crop under salt-stress. Agronomy Research 16 (3):872–83.
  • Sajyan, T. K., N. Shaban, J. Rizakallah, and Y. N. Sassine. 2019d. Performance of salt-stressed tomato crop as affected by nano-CaCO3, glycine betaine, MKP fertilizer and aspirin application. Agriculture and Forestry 65 (1):19–27.
  • Salehi, S., A. Khajehzadeh, and F. Khorsandi. 2011. Growth of tomato as affected by foliar application of salicylic acid and salinity. American-Eurasian Journal of Agricultural & Environmental Sciences 11 (4):564–7.
  • Samuel, l. Tisdale, l. W. Nelson, Beaton, and J. Havlin. 1993. Soil fertility and fertilizers. 5th ed. New York, NY: Macmillan Publishing Company.
  • Sassine, Y. N., S. M. Alturki, M. Germanos, N. Shaban, M. N. Sattar, and T. K. Sajyan. 2020. Mitigation of salt stress on tomato crop by using foliar spraying or fertigation of various products. Journal of Plant Nutrition 43 (16):2493–507. doi: 10.1080/01904167.2020.1771587.
  • Senaratna, T., D. Touchell, E. Bunn, and K. Dixon. 2000. Acetyl salicylic acid (aspirin) and salicylic acid induce multiple stress tolerance in bean and tomato plants. Plant Growth Regulation 30 (2):157–61. doi: 10.1023/A:1006386800974.
  • Shaaban, M. M., M. M. Hussein, and M. M. El Sady. 2008. Nutritional status in shoots of barley genotypes as affected by salinity of irrigation water. American Journal of Plant Physiology 3:89–95.
  • Siddiqi, E. H., M. Ashraf, F. Al-Qurainy, and N. A. Akram. 2011. Salt-induced modulation in inorganic nutrients, antioxidant enzymes, proline content and seed oil composition in safflower (Carthamus tinctorius L.). Journal of the Science of Food and Agriculture 91 (15):2785–93. doi: 10.1002/jsfa.4522.
  • Szepesi, A., J. Csiszár, K. Gémes, E. Horváth, F. Horváth, M. L. Simon, and I. Tari. 2009. Salicylic acid improves acclimation to salt stress by stimulating abscisic aldehyde oxidase activity and abscisic acid accumulation, and increases Na + content in leaves without toxicity symptoms in Solanum lycopersicum L. Journal of Plant Physiology 166 (9):914–25. doi: 10.1016/j.jplph.2008.11.012.
  • Taffouo, V. D., A. H. Nouck, S. D. Dibong, and A. Amougou. 2010. Effects of salinity stress on seedling growth, numeral nutrients, and total chlorophyll of some tomato (Lycopersicum esculentum, L.) cultivars. African Journal of Biotechnology 9 (33):5366–72.
  • Tantawy, A. S., Y. A. M. Salama, M. R. Abdel-Mawgoud, and A. A. Ghoname. 2014. Comparison of chelated calcium with nano calcium on alleviation of salinity negative effects on tomato plants. Middle East Journal of Agriculture Research 3 (4):912–6.
  • Tantawy, A. S., Y. A. M. Salama, A. M. R. Abdel-Mawgoud, and M. F. Zaki. 2013. Interaction of Fe and salinity on growth and production of tomato plants. World Applied Sciences Journal 27 (5):597–609.
  • Zhang, P. F., M. T. Senge, K. H. Yoshiyama, K. G. Ito, Y. Y. Dai, and F. P. Zhang. 2016. Effects of low salinity stress on growth, yield and water use efficiency of tomato under soilless cultivation. Journal of Irrigation, Drainage and Rural Engineering. doi: 10.11408/jsidre.85.I_15.
  • Zhu, J. K. 2002. Salt and drought stress signal transduction in plants. Annual Review of Plant Biology 14:267–73.

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