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Effect of Foliar Spray Using Different Concentrations of Salicylic Acid on Growth, Development and Yield of Tow Strawberry Cultivars under Water Stress Conditions

2023

Anoud soliman tena


书目信息
出版者
Damascus University . Faculty of agricultural engineering
其它主题
حمض الساليسيليك; إجهاد مائي; Strawberry; Enzymatic antioxidant; Salicylic acid; فريز
语言
阿拉伯
注释
References 1. Abbaspour, J.; Ehsanpour, A. (2016). The impact of salicylic acid on some physiological responses of Artemisia aucheri Boiss Under in vitro drought stress. Acta Agric. Slov, 107, 287–298. 2. Ahmad, P. C. A. Jaleel, M. A. Salem, G. Nabi and S. Sharma. (2010a). Roles of Enzymatic and non-enzymatic antioxidants in plants during abiotic stress. Critical Reviews Biotechnology, 30(3):161–175. 3. Ahmad, P., C. A. Jaleel and S. Sharma .(2010b). Antioxidative defence system, lipid peroxidation, proline metabolizing enzymes and Biochemical activity in two genotypes of Morus alba L. subjected to NaCl stress. Russian Journal of Plant Physiology, 57:509–517. 4. Ahmad, P., K. R. Hakeem, A. Kumar, M. Ashraf and N. A. Akram. (2012). Salt-induced changes in photosynthetic activity and oxidative defense system of three cultivars of mustard (Brassica juncea L.). African Journal of Biotechnol, 11:2694–2703. 5. Ahmad, P and M. N. V. Prasad.( 2012a). Abiotic stress responses in plants: metabolism, productivity and sustainability. Springer, New York. 6. Ahmad, P and M. N. V. Prasad .2012b. Environmental adaptations and stress tolerance in plants in the era of climate change. Springer Science + Business Media, New York> 7. Adak, N., Gubbuk, H., & Tetik, N. (2018). Yield, quality and biochemical properties of various strawberry cultivars under water stress. Journal of the Science of Food and Agriculture, 98(1), 304-311. 8. Adak, N. A. F. I. Y. E. (2019). Effect of glycine betaine concentration on the agronomic characteristics of strawberry grown under deficit irrigation conditions. Applied Ecology and Environmental Research, 17(2), 3753-3767. 9. Alam, A., Hariyanto, B., Ullah, H., Salin, K.R., Datta, A., (2020). Effects of silicon on growth, yield and fruit quality of cantaloupe under drought stress. Silicon. https:// doi.org/10.1007/s12633-020-00673-1 10. Al-Hamzawi, M.K.A. (2016). Abiotic stress in plants. First edition. National Library for Publishing and Distribution. 11. Al-Temimi HN, Al-Shahwany AW, Alsaadawi IS (2013) Screening of bread wheat cultivars (Triticum aestivum L.) to water deficit stress under field conditions Iraqi. Journal of Science 54(3): 577-584.12. Amin A, Rashad E-SM, Gharib F. (2008). Changes in morphological, physiological and reproductive characters of wheat plants as affected by foliar application with salicylic acid and ascorbic acid. Australian Journal Basic and Applied Science 2(2): 252-261. 13. Amini, F, A. and A. Ehsanpour. (2005). Soluble proteins, Proline, Carbohydrates and Na+/Cl- changes in two tomato (Lycopersicon esculentum Mill.) cultivars under in vitro salt stress. American Journal of Biochemistry and Biotechnology, 1(4): 212-216. 14. Apel, K. and H. Hirt. (2004). Reactive oxygen species: metabolism, oxidative stress and signal transduc-tion. Annual Reviews of Plant Biology, 55:373–399. 15. Arfan M, Athar HR, Ashraf M (2007) Does exogenous application of salicylic acid through the rooting medium modulate growth and photosynthetic capacity in two differently adapted spring wheat cultivars under salt stress? J Plant Physio., l164 (6): 685-694. 16. Ashraf, C. & Abu-Shakra, S. (1978). Wheat seed germination under low temperature and moisture stress. Agronomy Journal, 70, 135-139. 17. Ashraf, M. & Wu, L. 1994. Breeding for salinity tolerance in plants. Critical Reviews in Plant Sciences, 13, 17-42. 18. AOAC. (1988). Official methods of analysis of AOAC international. 17th ed. Gaithersburg, MD, USA. 19. Bakhsh, A., Hussain, T. (2015): Engineering crop plants against abiotic stress: Current achievements and prospects. – Emir. J. Food Agric. 27(1): 24-39. 20. Bates L.S., Walgreen R.P. and Teare I.D. (1973). Rapid determination of free proline for water stress studies. Plant and soil, 39(1): 205-207. 21. Bhatnagar-Mathur, P., V. Vadez and K. K. Sharma. (2008). Transgenic approaches for abiotic stress tolerance in plants: retrospect and prospects. Plant Cell Reports, 27(3):411–424. 22. Biareh, V., Shekari, F., Sayfzadeh, S., Zakerin, H., Hadidi, E., Beltrão, J. G. T., & Mastinu, A. (2022). Physiological and qualitative response of Cucurbita pepo L. to salicylic acid under 100led water stress conditions. Horticulturae, 8(1), 79. 23. Bijanzadeh, E., Naderi, R., Egan, T.P., (2019). Exogenous application of humic acid and salicylic acid to alleviate seedling drought stress in two corn (Zea mays L.) hybrids. J. Plant Nutr. 42, 1483–1495.24. Blanke. M.M. and D.T. Cooke.( 2004). Effect of flooding and droughton stomatal activity, transpiration, photosynthesis, water potential and water channel activity in strawberry stolons and leaves. Plant Gowth Regul. 42: 153-160. 25. Blum, A. (1996). Crop responses to drought and the interpretation of adaptation. Plant Growth Regulation, 20: 135-148. 26. Bohnert, H. J., Nelson, D. E., & Jensen, R. G. (1995). Adaptations to environmental stresses. The plant cell, 7(7), 1099. 27. Boyer, J. S. (1982). Plant productivity and environment. Science, 218(4571), 443-448. 28. Bradford, M.M. (1976). A rapid and sensitive method for quantification of microgram quantities of protein utilizing the principle of protein due binding. Annals of Biochemistry, 72: 248- 254. 29. Bray, E. A. 1993. Molecular responses to water deficit. Plant Physiology, 103, 1035-1040. 30. Bray, E. A.( 1997). Plant responses to water deficit. Trends in Plant Science, 2, 48-54. 31. Bray, E. A. (2004). Genes commonly regulated by water-deficit stress in (Arabidopsis thaliana). Journal of Experimental Botany, 55, 2331-2341. 32. Chaves, M. (1991). Effects of water deficits on carbon assimilation. Journal of Experimental Botany, 42, 1-16. 33. Chaves, M., Flexas, J. & Pinheiro, C. 2009. Photosynthesis under drought and salt stress: regulation mechanisms from whole plant to cell. Annals of Botany, 103, 551-560. 34. Chaves, M. M., Maroco, J. P. & Pereira, J. S. (2003). Understanding plant responses to drought from genes to the whole plant. Functional Plant Biology, 30, 239-264. 35. Chen, Z.; Zheng, Z.; Huang, J.; Lai, Z.; Fan, B. (2009). Biosynthesis of salicylic acid in plants. Plant Sign. Behav. 4 , 493–496. 36. Cheong, Y.H., H. S. Chang, R. Gupta, X. Wang, T. Zhu, and S. Luan. (2002). Transcriptional profiling reveals novel interactions between wounding, pathogen, abiotic stress, and hormonal responses in Arabidopsis. Plant Physiology, 129: 661–677. 37. Choudhary, V.K., Ramachandrappa, B K. and Nanjappa, H V., (2006). Influence of planting methods and drip irrigation levels on total water requirement, yield, water use efficiency and root characters in Baby corn (Zea mays L.). Mysore Journal of Agricultural Sciences 40(2): 189–93.38. Chowhan S, Hossain ميلي مول , Hoque MA, Rasul G and Roni MS. (2016). Yield performance of strawberry genotypes. Bangladesh Journal of Agricultural Research 41(3): 481-489 39. Colla, G., Rouphael, Y., Leonardic, C., and Bied, Z. (2010). Role of grafting in vegetable crops grown under saline conditions. Scientia Horticulturae, 127: 147–155. 40. Cramer, G. R., Ergül, A., Grimplet, J., Tillett, R. L., Tattersall, E. A., Bohlman, M. C.,Vincent, D., Sonderegger, J., Evans, J., Osborne, C., Quilici, D., Schlauch, K. A., Schooley, D. A., Cushman, J. C. (2007): Water and salinity stress in grapevines: early and late changes in transcript and metabolite profiles. Funct Integr Genomics 7: 111-134. 41. Dahiya, I., Dahiya, D., Kuhad, M. & Karwasra, S. (1988). Statistical equations for estimating field capacity, wilting point and available water capacity of soils from their saturation percentage. The Journal of Agricultural Science, 110, 515-520. 42. Dalila, B. (2004). Study of water potential and its components to explain water movement and cellular growth in plants. Department of Natural Sciences. 43. Debnath, S. C. (2006). Zeatin overcomes thidiazuron-induced inhibition of shoot elongation and promotes rooting in strawberry culture in virtue. Journal of Horticultural Science and Biotechnology, 81(3):349-354. 44. Demir, Y. and K. Kocaçalıflkan. (2002). Effect of NaCl and proline on bean seedlingscultured in vitro. Biology Plantarum, 45,4: 597-599. 45. Demiralay, M., Saglam, A. and Kadioglu, A. (2013). Salicylic Acid Delays Leaf Rolling by Inducing Antioxidant Enzymes and Modulating Osmoprotectant Content in Ctenanthe setosa under Osmotic Stress. Turk. J. Biol., 37: 1205-16. 46. Dempsey, D.M.A.; Klessig, D.F. (2017). How does the multifaceted plant hormone salicylic acid combat disease in plants and are similar mechanisms utilized in humans?. BMC Biol. 15, 23. 47. Dennis, F. G., J. Kipecki, and C. Kiang. 1970. Effects of photoperiod and other factors upon flowering and runner development of three strawberry cultivars. J. Amer. Soc. Hort. Sci. 95:750-754. 48. De Pinto, M. C., D. Francis and L. Gara.( 1999). The redox state of ascorbate dehydro ascorbate pairs a specific sensor of cell division in tobacco By‐Z cells. Protoplasma. 209: 90‐97.49. Ducharme, A., J. L. Rouleauand M. White. (2006). Use of sinpatients with congestive heart failure. Ianti oxidant: Antioxidants cardiovascular disease. Ed Bourass a. M. G and Tardif. J. C., 451- 476. 50. Elgamaal AA, Maswada HF (2013) Response of three yellow maize hybrids to exogenous salicylic acid under two irrigation intervals. Asian Journal of Crop Science 5(3): 264-274. 51. Eraslan F., Inal A., Gunes A., Alpaslan M. (2007) Impact of exogenous salicylic acid on the growth, antioxidant activity and physiology of carrot plants subjected to combined salinity and boron toxicity. Scientia Horticulturae 113: 120-128. 52. Ervin, E. H., Zhang, X. & Fike, J. H. 2004. Ultraviolet-B radiation damage on Kentucky Bluegrass II: Hormone supplement effects. Horticultural Science, 39, 1471-1474. 53. Fahad, S., Bajwa, A.A., Nazir, U., Anjum, S.A., Farooq, A., Zohaib, A., Sadia, S., Nasim, W., Adkins, S., Saud, S., Ihsan, M.Z., Alharby, H., Wu, C., Wang, D., Huang, J.,( 2017). Crop production under drought and heat stress: plant responses and management options. Front. Plant Sci. 8, 1147. 54. Faghih, S.; Zarei, A.; Ghobadi, C. 2019. Positive effects of plant growth regulators on physiology responses of Fragaria _ ananassa cv.‘Camarosa’ under salt stress. Int. J. Fruit Sci. 2019, 19, 104–114. 55. Fariduddin Q, Hayat S, Ahmad A (2003) Salicylic acid influences net photosynthetic rate, carboxylation efficiency, nitrate reductase activity, and seed yield in Brassica juncea. Photosynthetica 41 (2): 281-284 56. Farooq M, Basra S, Wahid A, Ahmad N, Saleem B (2009a) Improving the drought tolerance in rice (Oryza sativa L.) by exogenous application of salicylic acid. Journal of Agronomy and Crop Science, 195(4): 237-246. 57. Farooq, M., Wahid, A., Kobayashi, N., Fujita, D. & Basra, S. (2009b). Plant drought stress effects, mechanisms and management. Sustainable Agriculture. Springer. 58. Fazackerley, S. & Lawrence, R. 2012. Automatic in situ determination of field capacity using soil moisture sensors. Irrigation and Drainage, 61, 416-424. 59. Fereres, E., Soriano, M. A. (2007): Deficit irrigation for reducing agricultural water use. Journal of Experimental Botany 58(2): 147-159. 60. Flexas, J., Bota, J., Galmes, J., Medrano, H. & Ribas‐Carbó, M. 2006. Keeping a positive carbon balance under adverse conditions: responses of photosynthesis and respiration to water stress. Physiologia Plantarum, 127, 343-352.61. Foyer, C. H., L. D. Gomez and P. D. R. (2005). Heerden. Glutathione. In: N. Smirnoff. ed. 2005. Antioxidants and Reactive Oxygen Species in Plants. Blackwell Publishing, 1-24. 62. Galli V, da Silva Messias R, Perin E C, et al. (2016) Mild salt stress improves strawberry fruit quality. LWT-Food Sci Technol 73: 693–699. https://doi.org/10.1016/j.lwt.2016.07.001. 63. Galmes, J., Flexas, J. and Robert, S. (2007). Water Relations and Stomatal Characteristics of Mediterranean Plants with Different Growth Forms and Leaf Habits: Responses to Water Stress and Recovery. Plant Soil, 290: 139-155. 64. Ghaderi, N., Talaie, A. R., Ebadi, A. and Lessani, H. (2011). The Physiological Response of Three Iranian Grape Cultivars to Progressive Drought Stress. J. Agr. Sci. Tech., 13: 601-610. 65. Ghaderi, N. and Siosemardeh, A. 2011. Response to Drought Stress of Two Strawberry Cultivars (cv. Kurdistan and Selva). Hortic. Environ. Biotech., 52(1): 6- 12. 66. Ghaderi, N., Normohammadi, S., & Javadi, T. (2015). Morpho-physiological responses of strawberry (Fragaria× ananassa) to exogenous salicylic acid application under drought stress. J. Agr. Sci. Tech., 17, 167-178. 67. Gholamin, R., Zaeifizadeh, M., Khayatnezhad, M., Jamaati-E-Somarin, S. & Zabihi-E-Mahmoodabad, R. 2010. Study of drought tolerance in durum wheat genotypes. American Eurasian Journal Agriculture Environment Science, 9, 465-469. 68. Giamperi F, Tulipani S, Alvarez-Suarez JM, et al. (2012) The strawberry: Composition, nutritional quality, and impact on human health. Nutrition 28: 9–19. https://doi.org/10.1016/j.nut.2011.08.009. 69. Gine Bordonaba, J. and Terry, L. A. (2010). Manipulating the Taste-related Composition of Strawberry Fruits (Fragaria ananassa) from Different Cultivars Using Deficit Irrigation. Food Chem., 122: 1020–1026. 70. Giunta, F., Motzo, R. & Deidda, M. 1993. Effect of drought on yield and yield components of durum wheat and triticale in a Mediterranean environment. Field Crops Research, 33, 399-409. 71. Gonzalez, F. G., Slafer, G. A. & Miralles, D. J. (2003). Floret development and spike growth as affected by photoperiod during stem elongation in wheat. Field Crops Research, 81, 29-38. 72. Grant, O. M., Johnson, A. W., Davies, M. J., James, C. M. and Simpson, D. W. (2010). Physiological and Morphological Diversity of Cultivated Strawberry (Fragaria×ananassa) in Response to Water Deficit. Environ. Exp. Bot., 68: 264–272.73. Grover, A., A. Pareek, S. L. Singla, D. Minhas, S. Katiyar, S. Ghawana, H. Dubey, M. Agarwal, G. U. Rao, J. Rathee and A. Grover. (1998). Engineering crops for tolerance against abiotic stresses through gene manipulation. Current Science, 75: 689-696. 74. Haghighat, F., Miri, S. M., & Hassani, D. (2020). Morpho-physiological performance of seven short-day and day-neutral strawberry cultivars in the soilless culture. Journal of Plant Physiology and Breeding, 10(1), 127-139. 75. Haghshenas, M., Nazarideljou, M. J., & Shokoohian, A. (2020). Phytochemical and quality attributes of strawberry fruit under osmotic stress of nutrient solution and foliar application of putrescine and salicylic acid. International Journal of Horticultural Science and Technology, 7(3), 263-278. 76. Hang bo, S., C. X. Yan, C. L. Ye, Z. X. Ning, W. Gang, Y. Y. Bing, Z. C. Xing and H. Z. Min. (2006). Investigation on the relationship of proline with wheat anti drought under soil water deficits. Colloida and surfaces B:Biointerfaces, 53. 113-119. 77. Hardenburg, R. E.; Watada, A. E. and Wang, C. Y. (2004). The coميلي مول ercial storage fruits, vegetables, and florist stocks. United State Department of Agriculture. Agriculture Handbook number 66. Strawberry. Pp 418-420. 78. Hara, M.; Furukawa, J.; Sato, A.; Mizoguchi, T.; Miura, K. (2012) Abiotic stress and role of salicylic acid in plants. In Abiotic Stress Responses Plants; Ahmad, P., Prasad, M., Eds.; Springer: New York, NY, USA; pp. 235–251. 79. Hasan, S.Z.U., Hassan, I., Khan, M.A., Jilani, G., & Asghar, S. (2022) Morphological and Biochemical responses of Strawberry to Salicylic Acid Application. Plant Cell Biotechnology and Molecular Biology, 23: 26- 33. 80. Hasegawa, P.M., Bressan, P.A., Zhu, J., and Bohnert, H.J. (2000). Plant cellular and molecular responses to high salinity. Annu. Rev. Plant Physiol. Plant Mol. Biol. 51: 463–499. 81. Hayat, S., Fariduddin, Q., Ali, B. and Ahmad, A. (2005). Effect of Salicylic Acid on Growth and Enzyme Activities of Wheat Seedlings. Acta Agronomica Hungarica, 53 (4), 433-437. DOI: 10.1556/ AAgr.53.2005.4.9 82. Hayat, S., Hasan, S.A., Fariduddin, Q. and Ahmad, A., (2008). Growth of Tomato (Lycopersicon esculentum) in Response to Salicylic Acid under Water Stress. J. Plant Interaction, 3(4): 297–304. 83. Hayat, Q., Hayat, S., Irfan, M. and Ahmad, A. (2010). Effect of Exogenous Salicylic Acid under Changing Environment: A review. Environ. Exp. Bot., 68: 14–25.84. Himelrick, D. C. and W. A. Dozier, Jr. (1991). Soil fumigation and soil solarization in strawberry production. Adv. Strawberry Production 10:12-29. 85. Hopf, A., Boote, K. J., Oh, J., Guan, Z., Agehara, S., Shelia, V., Whitaker, V. M., Asseng, S., Zhao, X., Hoogenboom, G. (2022). Development and improvement of the CROPGRO-Strawberry model. Scientia horticulturae, 291, 110538. doi: 10.1016/j.scienta.2021.110538. 86. 87. Hussein, M. M., Balbaa, L. K. and Gaballah, M. S. (2007). Salicylic Acid and Salinity Effects on Growth of Maize Plants. Res. J. Agric. and Biol. Sci., 3(4): 321–32. 88. Ibrahim, M.H., Nulit, R., &Sakimin, S, Z. (2022). Influence of drought stress on growth, biochemical changes and leaf gas exchange of strawberry (Fragaria×ananassa Dach.) in Indonesia. AIMS Agriculture and food, 7(1): 37-60. 89. Ilyas, N., Gull, R., Mazhar, R., Saeed, M., Kanwal, S., Shabir, S., Bibi, F., 2017. Influence of salicylic acid and jasmonic acid on wheat under drought stress. Commun. Soil Sci. Plant Anal. 48: 2715–2723. 90. Janda T, Szalai G, Tari I, Paldi E (1999). Hydroponic treatment with salicylic acid decreases the effects of chilling injury in maize (Zea mays L.) plants. Planta 208(2): 175-180. 91. Jamali, B., Eshghi, S. and Shahidi-Rad, K. (2015). Growth and fruit characteristics of strawberry cv. selva as affected by different application timing of salicylic acid under saline conditions. International Journal of Fruit Science, 15, 339-352. DOI: 10.1080/15538362.2015.1015761 92. Janda T, Horvath E, Szalai G, Paldi E (2007). Role of salicylic acid in the induction of abiotic stress tolerance. In: Hayat S, Ahmad A (Eds.), Salicylic acid: A plant hormone. Springer, Netherlands, pp. 91-150. 93. Johnson, Jr. H.; Hochmuth, G. J. and Maynard, D. N. (2010). Soilless Culture of Greenhouse Vegetables. Institute of Food and Agricultural Sciences. University of Florida, 218: 19-22. 94. Kalaki, G.S., Abdosi, V., Boojar, M.M.A. (2014) Change in chlorophylls composition and some morphological attributes of strawberry (Fragaria ×ananassa Duch cv. Camarosa) in response to salicylic acid spray. International Journal of Biosciences, 5 (12): 204-2011. DOI: 10.12692/ijb/5.12.204-211. 95. Karlidag, H., Yildirim, E. and Turan, M. (2009) Exogenous application of salicylic acid affects quality and yield of strawberry grown underantifrost heated greenhouse condition. J. Plant Nutr. Soil Sci., 172: 270-276. DOI: 10.1002/jpln.200800058. 96. Kaya, C., M. Ashraf, M. Dikilitaş and A. L. Tuna. (2013). Alleviation of salt stress-induced adverse effects on maize plants by exogenous application of indoleacetic acid (IAA) and inorganic nutrients– A field trial. Australian Journal of Crop Science,7: 249–254. 97. Kempler, C., E. van Zinderen Bakker, K. Shaw, and A. Newnham. (1991). An evaluation of the nutrient film technique for growing strawberries in greenhouse environment. The 21st Century Gardener 5(6):28-38. 98. Khan, W., Prithviraj, B. and Smith, D. L.( 2003). Photosynthetic Responses of Corn and Soybean to Foliar Application of Salicylates. J. Plant Physiol., 160: 485–492. 99. Khan, M.I.R., Fatma, M., Per, T.S., Anjum, N.A., Khan, N.A., 2015. Salicylic acid-induced abiotic stress tolerance and underlying mechanisms in plants. Front. Plant Sci. 6, 462. 100. Klamkowski, K. and W. Treder. (2006). Morphological and physiological responses of strawberry plants to water stress. Agric. Conspec. Sci. 71:159-165. 101. Klamkowski, K. and Treder, W. (2008). Response to Drought Stress of Three Strawberry Cultivars Grown under Greenhouse Conditions. J. Fruit Ornamental Plant Res., 16: 179–188. 102. Kranner, I., Minibayeva, F. V., Beckett, R. P. & Seal, C. E. (2010). What is stress? Concepts, definitions and applications in seed science. New Phytologist, 188, 655-673. 103. Krasensky, J. & Jonak, C. (2012). Drought, salt, and temperature stress-induced metabolic rearrangements and regulatory networks. Journal of Experimental Botany, 63, 1593-1608. 104. Kumar N, Singh HK and Mishra PK. (2015). Impact of organic manure and bio-fertilizers on growth and quality parameters of strawberry Cv. Chandler. Indian Journal of Science and Technology, 8(15): 1-6. 105. Kumar, P.S., Chaudary, V.K., & Bhagawati, R. (2012). Influence of mulching and irrigation level on water-use efficiency, plant growth and quality of strawberry (Fragaria ananassa). Indian.J.Agr.Sci, 82(2): 127- 133. 106. Lata, C., Muthamilarasan, M., & Prasad, M. (2015). Drought stress responses and signal transduction in plants. In Elucidation of abiotic stress signaling in plants. (pp. 195-225). Springer, New York, NY. 107. Latif, F., Ullah, F., Mehmood, S., Khattak, A., Khan, A.U., Khan, S., Husain, I., (2016). Efects of salicylic acid on growth and accumulation ofphenolics in Zea mays L. Under drought stress. Acta Agric. Scand. Sect. B Soil Plant Sci. 66, 325–332. 108. Lamnai K., Anaya F., Fghire R., Zine H., Wahbi S., Loutfi K. (2021). Impact of Exogenous Application of Salicylic Acid on Growth, Water Status And Antioxidant Enzyme Activity of Strawberry Plants (Fragaria vesca L.) Under Salt Stress Conditions. Gesunde Pflanzen, 73(1): 465-478. DOI:10.1007/s10343-021-00567-1 109. Larcher, W. (1987). Stress in plants. Naturwissenschaften, 74, 158-167. 110. Lata, C. & Prasad, M. (2011). Role of DREBs in regulation of abiotic stress responses in plants. Journal of Experimental Botany, 62, 4731-4748. 111. Lawlor, D. (1995). The effects of water deficit on photosynthesis. Environment and Plant Metabolism. Flexibility and Acclimation, 129-160. 112. Li, Q.; Wang, G.; Wang, Y.; Yang, D.; Guan, C.; Ji, J. (2019). Foliar application of salicylic acid alleviate the cadmium toxicity by modulation the reactive oxygen species in potato. Ecotox. Environ. Saf. 2019, 172, 317–325. 113. Lichtenthaler, H. K. (1996). Vegetation stress: an introduction to the stress concept in plants. Journal of Plant Physiology, 148, 4-14. 114. Lichtenthaler, H. K. (1998). The stress concept in plants: an introduction. Annals of the New York Academy of Sciences, 851, 187-198. 115. Lichtenthaler H.K. and C. Buschmann. (2001). Chlorophylls and carotenoids: Measurement and characterization by UV‐VIS spectroscopy. Current protocols in food analytical chemistry. F4.3.1-F4.3. 116. Litchtenthaler, H.K. and A. R. Weiiburn. 1983. Determinations of total carotenoids and chlorpphylls a and b of leaf extracts in different solvens. Biochem. Soc. Transac., 603: 591- 592. 117. Liu, F., Savic, S., Jensen, C. R., Shahnazari, A., Jacobsen, S. E., Stikic, R. and Anderson, M. N. (2007). Water Relations and Yield of Lysimeter-grown Strawberries under Limited Irrigation. Sci. Hort., 111(2): 128–132. 118. Liu, F.Y., Li, K.T., and Yang, W.J. (2014). Differential Responses to Short-term Salinity Stress of Heat-tolerant Cherry Tomato Cultivars Grown at High Temperature. Hort. Envir. Biotechnol., 55(2): 79-90. 119. Lovelock, D.A.; Šola, I.; Marschollek, S.; Donald, C.E.; Rusak, G.; van Pée, K.H.; Ludwig-Müller, J.; Cahill, D.M. (2016). Analysis of salicylic acid-dependent pathways in Arabidopsis thaliana following infectionwith Plasmodiophora brassicae and the influence of salicylic acid on disease. Molecul. Plant Pathol. 17, 1237–1251. 120. Luo, J.; Xia, W.; Cao, P.; Xiao, Z.A.; Zhang, Y.; Liu, M.; Zhan, C.; Wang, N. (2019). Integrated transcriptome analysis reveals plant hormones jasmonic acid and salicylic acid coordinate growth and defense responses upon fungal infection in poplar. Biomolecules, 9- 12. 121. Majidi H., Minaei S., Almasi M., and Mostofi Y. (2011). Total Soluble Solids, Titratable Acidity and Repining Index of Tomato In Various Storage Conditions. Australian Journal of Basic and Applied Sciences, 5(12): 1723-1726. 122. Maghsoudi, K., Emam, Y., Ashraf, M., Arvin, M.J. (2019). Alleviation of field water stress in wheat cultivars using silicon and salicylic acid applied separately or in combination. Crop Pasture Sci. 70: 36–43. 123. Mahajan, S. & Tuteja, N. (2005). Cold, salinity and drought stresses: an overview. Archives of Biochemistry and Biophysics, 444, 139-158. 124. Mahpara, S., Hussain, S. & Farooq, J. (2014). Drought Tolerance Studies in Wheat (Triticum Aestivum L.). Cercetari Agronomice in Moldova, 47, 133-140. 125. Maria, J., Gil and V. Martinez-Merino. (2007). Determination of the salicylic acid concentration in Aspirin byformingFe+3complexes. www.iupac,org/publications/cd/medicinalchmistry/ Exercise 1:11, Version 19:1-8. 126. Maruri-López, I.; Aviles-Baltazar, N.Y.; Buchala, A.; Serrano, M. (2019). Intra and extracellular journey of the phytohormone salicylic acid. Front. Plant Sci. 2019, 10, 423. 127. Mendonca HFC, Calvete EO, Costa RCD and Nienow AA, (2017). Performance production of strawberry in environment cultivated with fig tree. Revista Brasileira de Fruticultura 39(4): e-615. doi: 10.1590/0100-29452017615. 128. Métraux, J.-P. ( 2002). Recent breakthroughs in the study of salicylic acid biosynthesis. Trends Plant Sci7, 332–334. 129. Metwally, A.A., Youssef,S.M., El-Miniawy, S.M. and Ragab, M.E. 2013. Effect of foliar spraying of salicylic acid on growth, yield and quality of cold stored strawberry plants. J. Biol. Chem. Environ. Sci., 8, 1-17. 130. Miao, Y., Luo, X., Gao, X., Wang, W., Li, B., Hou, L., 2020. Exogenous salicylic acid alleviates salt stress by improving leaf photosynthesis and root system architecture in cucumber seedlings. Sci. Hortic. 272, 109577. 131. Mishra, A. K. & Singh, V. P. 2010. A review of drought concepts. Journal of Hydrology, 391, 202-216.132. Mittler, R. 2002. Oxidative stress, antioxidants and stress tolerance. Trends in Plant Science, 7: 405-410. 133. Mittova, V., Tal, M., Volokita, M. and Guy, M. (2003). Up-regulation of the leaf mitochondrial and peroxisomal antioxidative systems in response to salt-induced oxidative stress in the wild salt-tolerant tomato species Lycopersicon pennellii. Plant Cell Environ., 26: 845–856. 134. Mohamed, S. J. 2013. The effect of environmental factors on the physiology, yield and oil composition of safflower (Carthamus tinctorius L.). PhD. Thesis, Plymouth University. 135. Munns, R. and Tester. D. (2008). Mechanisms of Salinity Tolerance. Ann. Rev. Plant Biol.,59: 651-681. 136. Murshed, R., F. Lopez-Lauriand and H. Sallanon. 2008. Microplate quantification of enzymes of the plant ascorbate–glutathione cycle, Anal ytical Biochemistry, 383: 320–322. 137. Nemeth, M., Janda, T., Horvath, E., Paldi, E. & Szalai, G. (2002). Exogenous salicylic acid increases polyamine content but may decrease drought tolerance in maize. Plant Science, 162, 569-574. 138. Neocleous, D.Z.V. (2012). Antioxidant responses of strawberry plants under stress conditions. Acta horticulturae, (926): 339. 139. Okcu, G., M. D. Kaya and M. Atak. (2005). Effects of salt and drought stresses on germination and seedling growth of pea (Pisum sativum L.). Turkish journal of agriculture and forestry, 29(4): 237-242. 140. Osakabe, Y., Osakabe, K., Shinozaki, K., Tran, L. S. (2014): Response of plants to water stress. Front. Plant Sci. 5: 1-8. 141. Osmond, C., Austin, M., Berry, J., Billings, W., Boyer, J., Dacey, J., Nobel, P., Smith, S. & Winner, W. (1987). Stress physiology and the distribution of plants. BioScience, 37, 38-48. 142. Osmond, B., Badger, M., Maxwell, K., Björkman, O. & Leegood, R. (1997). Too many photons: photorespiration, photoinhibition and photooxidation. Trends in Plant Science, 2, 119-121. 143. Otterbacher, A. G. and Skirvin, R. M. (1978). Derivation of the binomial Fragaria x ananassa for cultivated strawberry. Hort Science.13(6): 637-639. 144. Parida, A.K. and Das, A.B. 2005 Salt Tolerance and Salinity Effects on Plants: A Review. Ecotoxicology and Environmental Safety, 60, 324-349. https://doi.org/10.1016/j.ecoenv.2004.06.010. 145. Pasternak, T.; Groot, E.P.; Kazantsev, F.V.; Teale, W.; Omelyanchuk, N.; Kovrizhnykh, V.; Palme, K.; Mironova, V.V. (2019Salicylic acid affects root meristem patterning via auxin distribution in a concentration-dependent manner. Plant Physiol, 180, 1725–1739. 146. Patel M, Golakiya B (1988). Effect of water stress on yield attributes and yield of groundnut (Arachis hypogaea) vol 58. Indian Counc Agricultural Res Icar Bhawan Pusa, New Delhi 110 012, India. 147. Popova L, Pancheva T, Uzunova A. (1997). Salicylic acid: properties, biosynthesis and physiological role. Bulgarian Journal Plant Physiology 23: 85-93. 148. Prasad, P., Staggenborg, S. & Ristic, Z. (2008)a. Impacts of drought and/or heat stress on physiological, developmental, growth, and yield processes of crop plants. Response of Crops to Limited Water: Understanding and Modeling Water Stress Effects on Plant Growth Processes, 301-355. 149. Prasad, P., Staggenborg, S. & Ristic, Z. 2008b. Impacts of drought and/or heat stress on physiological, developmental, growth, and yield processes of crop plants. Plant Science and Entomology Research Unit, 301-355. 150. Raab, T.; Lopez-Raez, J. A.; Klein, D.; Caballero, J. L.; Moyano, E.; Schwab, W. and Munoz-Blanco, J. (2006). FaQR, required for the biosynthesis of strawberry flavor compound 4-hydroxy-2, 5-dimethyl-3(2H)-Furanone, encodes an enone oxidoreductase .The Plant Cell. 18:1023-1037. 151. Radhi, I. M., & abudl-hasan, M. M. (2020). Effect of spraying with proline acid and potassium on chemical traits and yield of strawberry under water stress. Plant archives, 20(1), 75-83. 152. Raskin, I.; Skubatz, H.; Tang, W.; Meeuse, B.J.(1990). Salicylic acid levels in thermogenic and non-thermogenic plants. Ann. Bot. 66, 369–373. 153. Raskin I. 1992. Role of Salicylic acid in plants. Annual Review of Plant Biology, 43: 439-463. 154. Reddy A.R., Chaitanya K.V., Vivekanandan M. (2004). Drought-induced responses of photosynthesis and antioxidant metabolism in higher plants. Journal of Plant Physiology, 161(11): 1189-1202. 155. Roshdy, A.E.-D.; Alebidi, A.; Almutairi, K.; Al-Obeed, R.; Elsabagh, A. The Effect of Salicylic Acid on the Performances of Salt Stressed Strawberry Plants, Enzymes Activity, and Salt Tolerance Index. Agronomy 2021, 11, 775. 156. Rubio, F., P. Flores, J. M. Navarroand V. Martinez. (2003). Effects of Ca+2 K+ and cGMP on Na+ uptake in pepper plants. Plant Science, 165:1043- 1049.157. Saad A.G., Jaiswal P. and Jha, S.N. (2014). Non destructive quality evaluation of intact tomato using VIS NIR spectroscopy. International Journal of Advanced Research, 2 (12): 632-639. 158. Sabirjanova, I.B., B. E. Sabirjanova, A. V. Chemeris, D. S. Veselovand Kudoyarova, G. R. 2005. Fast changes in expression of expansin gene and leaf extensibility in osmotically stressed maize plants. Plant Physiology and Biochemistry, 43(4): 419-422. 159. Saied A.S., Keutgen A.J. and Noga G. (2005). The influence of NaCl salinity on growth, yield and fruit quality of strawberry cvs. Elsanta and Korona. Sci Hortic., 103: 289–303. 160. Sairam, R. K., G. C. Srivastava, S. Agarwal and R. C. Meena . (2005). Differences in antioxidant activity in response to salinity stress in tolerantand susceptible wheat genotypes. Biologia Plantarum, 49, 85-89. 161. Samec D, Maretic M, Lugaric I, Mesic A, Salopek Sondi B and Duralija B. (2016). Assesment of the differences in the physical, chemical and phytochemical properties of four strawberry cultivars using principal component analysis. Food Chem., 194: 828–834. 162. Samykanno K., Pang E. and Marriott P.J. (2013). Genotypic and environmental effects on flavor attributes of ‘Albion’ and ‘Juliette’ strawberry fruits. Sci Hortic 164:633–642 163. Sandoval Yepiz MdR (2004). Reguladores de crecimiento XXIII: Efecto del ácido salicílico en la biomasa del Cempazuchitl (Tagetes erecta L.). 164. Sawyer, D.B. and W. S. Colucci. 2006.Oxidative stress in heart failure.In : Antioxidants cardiovascular disease. ed. Bourassa. M.G and Tardif.J.C. 437-450. 165. Selye, H. (1936). A syndrome produced by diverse nocuous agents. Nature, 138(3479), 32-32. 166. Senaratna, T., Touchell, D., Bunn, E. and Dixon, K., 2000. Acetyl Salicylic Acid (Aspirin) and Salicylic Acid Induce Multiple Stress Tolerance in Bean and Tomato Plants. Plant Growth Regul. 30:157–161. 167. Sgherri, C., F. Navari-Izzo, A. Pardossi, G. P. Soressi and R. Izzo. (2007). The Influence of Diluted Seawater and Ripening Stage on the Content of Antioxidants in Fruits of Different Tomato Genotypes. Journal of Agricultural and Food Chemistry, 55: 2452-2458. 168. Shakirova FM, Sakhabutdinova AR, Bezrukova MV, Fatkhutdinova RA, Fatkhutdinova DR. (2003). Changes in the hormonal status of wheat seedlings induced by salicylic acid and salinity. Plant Science 164: 317- 322.169. Shakirova F 2007 Role of hormonal system in the manifestation of growth promoting and anti stress action of salicylic acid. In: Hayat S, Ahmad A (Eds.), Salicylic acid: a plant hormone. Springer, Netherlands, pp. 69-89. 170. Sharma, A., Sidhu, G. P. S., Araniti, F., Bali, A. S., Shahzad, B., Tripathi, D. K., ... & Landi, M. (2020). The role of salicylic acid in plants exposed to heavy metals. Molecules, 25(3), 540. 171. Shaw, B.,T. M. Thomas and D. Cooked. 2002. Resoponse of sugar beet (Beta vulgaris L.) to drought and nutrient deficiency stress. Plant growth regulation, 37: 77-83. 172. Simpson, D. (2018). The economic importance of strawberry crops. In The Genomes of Rosaceous Berries and Their Wild Relatives; Springer: Cham, Switzerland, pp. 1–7. 173. Singh G, Kachwaya DS, Kumar R, Vikas G and Singh L, 2018. Genetic variability and association analysis in strawberry (Fragaria × ananassa Duch). Electronic Journal of Plant Breeding 9(1): 169-182. 174. Singhal, P., Jan, A.T., Azam, M., Haq, Q.M.R., (2016). Plant abiotic stress: a prospective strategy of exploiting promoters as alternative to overcome the escalating burden. Front. Life Sci. 9, 52–63. 175. Sircelj, H., M. Tausz, D. Grill, and F. Batic . 2005. Biochemical responses in leaves of two apple tree cultivars subjected to progressing drought. Journal of Plant Physiology, 162: 1308- 1318. 176. Sirisuntornlak, N., Ghafoori, S., Datta, A., Arirob, W., (2019). Seed priming and soil incorporation with silicon influence growth and yield of maize under water-deficit stress. Arch. Agron. Soil Sci. 65: 197–207. 177. Sjulin,T.M.,&Dale,A.1987.Genetic diversity of North Amirican stwawberry cultivars .Journal of the American Socity for Horticultur Science, 112(2),375-385. 178. Smirnoff, N. (1995) Antioxidant Systems and Plant Response to the Environment. In: Smirnoff, V., Ed., Environment and Plant Metabolism: Flexibility and Acclimation, BIOS Scientific Publishers, Oxford, 217-243. 179. Sofo, A., A.C. Tuzio, B. Dichio, and C. Xiloyannis. 2005.' Influence of water deficitand rewatering on the components of the ascorbate‐glutathione cycle in four interspecific Prunus hybrids'. Plant Science,169, 403‐412. 180. Souza, R. P., Machado, E. C., Silva, J. A. B., Lagoa, A. M. M. A., Silveira, J. A. G. (2004). Photosynthetic gas exchange, chlorophyll fluorescence and some associated metabolic changes in cowpea (Vigna unguiculata) during water stress and recovery. Environ. Exp. Bot. 51: 45-56181. Stintzing, F. C., Stintzing, A. S., Carle, R., Frei, B., & Wrolstad, R. E. (2002). Color and antioxidant properties of cyanidin-based anthocyanin pigments. Journal of agricultural and food chemistry 50(21): 6172-6181. 182. Szalai, G (2013). Influence of salicylic acid on phytochelatin synthesis in maize during Cd stress. Turk. J. Bot. 183. Tardieu, F. 2005. Plant tolerance to water deficit: physical limits and possibilities for progress. Comptes Rendus Geoscience, 337, 57-67. 184. Tardieu, F., C. Granier and B. Muller. (2011). Water deficit and growth. Co-ordinating processes without an orchestrator?. Current Opinion in Plant Biology, 14: 283-289. 185. Teare, I., Sionit, N. & Kramer, P. J. (1982). Changes in water status during water stress at different stages of development in wheat. Physiologia Plantarum, 55, 296-300. 186. Thokchom A., Hazarika B.N., Singh S., Chandrakumar S.M., Alice A. K., Begane N. and Mathukmi K. (2019). Morpho-physiological analysis in strawberry (Fragaria x ananassa L.) under PEG (Polyethylene glycol) induced drought stress. J Pharmacogn Phytochem. 8(5): 87-92. 187. Todaka, D., H. Matsushima, and Y. Morohashi. (2000). Water stress enhances ß-amylase activity in cucumber cotyledons. Journal of Experimental Botany, 51, (345): 739-745. 188. Tohma, O.; Esitken, A. (2011). Response of salt stressed strawberry plants to foliar salicylic acid pre-treatments. J. Plant Nutr. 2011, 34, 590–599. 189. Tunc, T., Sahin, U., Evren, S., Dasci, E., Guney, E., Aslantas, R. 2019. The deficit irrigation productivity and economy in strawberry in the different drip irrigation practices in a high plain with semi-arid climate. Sci. Hort. 245: 47-56. 190. Ullah, H., Santiago-Arenas, R., Ferdous, Z., Attia, A., Datta, A., (2019). Improving water use efficiency, nitrogen use efficiency, and radiation use efficiency in field crops under drought stress: a review. Adv. Agron. 156: 109–157. 191. Wani, A.B.; Chadar, H.; Wani, A.H.; Singh, S.; Upadhyay, N. (2017). Salicylic acid to decrease plant stress. Environ. Chem. Lett. 15, 101–123. 192. Waseem M, Athar H, Ashraf M. (2006). Effect of salicylic acid applied through rooting medium on drought tolerance of wheat. Pakistan Journal of Botany.193. Wei, Y.; Liu, G.; Chang, Y.; He, C.; Shi, H. (2018). Heat shock transcription factor 3 regulates plant iميلي مول une response through modulation of salicylic acid accumulation and signalling in cassava. Mol. Plant Pathol. 19,2209–2220. 194. Wery, J., Silim, S., Knights, E., Malhotra, R. & Cousin, R. (1993). Screening techniques and sources of tolerance to extremes of moisture and air temperature in cool season food legumes. Euphytica, 73, 73-83. 195. Whalley, W., A. Bengough, and A. Dexter. 1998. Water stress induced by PEG decreases the maximum growth pressure of the roots of pea seedlings. Journal of Experimental Botany, 49, 1689-1694. 196. White R . (1979). Acetylsalicylic acid (aspirin) induces resistance to tobacco mosaic virus in tobacco. Virology 99(2): 410-412. 197. Wilhite, D. A. (1994). Preparing for drought: A guidebook for developing countries, Diane Publishing. 198. Wu, S., Hu, C., Tan, Q., Nie, Z. & Sun, X. (2014). Effects of molybdenum on water utilization, antioxidative defense system and osmotic-adjustment ability in winter wheat (Triticum aestivum) under drought stress. Plant Physiology and Biochemistry, 83, 365-374. 199. Xu, L.; Zhao, H.; Ruan,W.; Deng, M.;Wang, F.; Peng, J.; Luo, J.; Chen, Z.; Yi, K. (2017). Abnormal inflorescence meristem1 functions in Salicylic Acid Biosynthesis to Maintain Proper Reactive Oxygen Species Levels for Root Meristem Activity in Rice. Plant Cell . 29, 560–574. 200. Yan, P., J. W. Li and L. Y. Zeng . 2006. Effect of salt and drought stress on antioxidant enzymes activities and SOD isoenzymes of liquorice (Glycyrr hizauralensis Fisch). Plant Growth Regulation, 49(2-3), 157-165. 201. Yildirim, E., Turan, M. and Guvenc, I. (2008). Effect of foliar salicylic acid applications on growth, chlorophyll and mineral content of cucumber (Cucumis sativus L.) grown under salt stress. J. Plant Nutr., 31, 593-612. DOI: 10.1080/01904160801895118. 202. Youssef,S.M.S.,Abu El-Azm,N.A.L.,& Abd Elhady, S.A.E. (2017). Frequent foliar sprayings of salicylic acid with elevanted concentrations enhance growth, yield and fruit quality of strawberry (Fragaria× ananassa Duch. Cv. Festival) plants. Egyptian Journal of Horticulture, 44(1), 61-74. 203. Zegbe-Domınguez, J.A., Behboudian, M.H., Lang, A., Clothier, B.E., 2003. Deficit irrigation and partial rootzone drying maintain fruit dry mass and enhance fruit quality in ‘Petopride’ processing tomato (Lycopersicon esculentum, Mill.). Sci. Hortic. 98, 505–510.204. Zhang, F., Y. L. Yang, W. L. He, X. Zhao and L. X. Zhang . (2004). Effects of salinity on growth and compatible solutes of callus induced from Populus euphratica. In Vitro Cellular & Developmental Biology, 40(5):491-494. 205. Zhang, P., Senge, M., and Dai, Y. (2017). Effects of salinity stress at different growth stages on tomato growth, yield and water use efficiency. Commun. Soil Sci. Plant Anal., 48: 624–634. 206. Zhu, J. K. (2016): Abiotic stress signaling and responses in plants. – Cell 167: 313-324. 207. Zlatev, Z., Lidon, F. C. (2012): An overview on drought induced changes in plant growth, water relations and photosynthesis. – Emir. J. Food Agric. 24(1): 57-72.204. Zhang, F., Y. L. Yang, W. L. He, X. Zhao and L. X. Zhang . (2004). Effects of salinity on growth and compatible solutes of callus induced from Populus euphratica. In Vitro Cellular & Developmental Biology, 40(5):491-494. 205. Zhang, P., Senge, M., and Dai, Y. (2017). Effects of salinity stress at different growth stages on tomato growth, yield and water use efficiency. Commun. Soil Sci. Plant Anal., 48: 624–634. 206. Zhu, J. K. (2016): Abiotic stress signaling and responses in plants. – Cell 167: 313-324. 207. Zlatev, Z., Lidon, F. C. (2012): An overview on drought induced changes in plant growth, water relations and photosynthesis. – Emir. J. Food Agric. 24(1): 57-72.204. Zhang, F., Y. L. Yang, W. L. He, X. Zhao and L. X. Zhang . (2004). Effects of salinity on growth and compatible solutes of callus induced from Populus euphratica. In Vitro Cellular & Developmental Biology, 40(5):491-494. 205. Zhang, P., Senge, M., and Dai, Y. (2017). Effects of salinity stress at different growth stages on tomato growth, yield and water use efficiency. Commun. Soil Sci. Plant Anal., 48: 624–634. 206. Zhu, J. K. (2016): Abiotic stress signaling and responses in plants. – Cell 167: 313-324. 207. Zlatev, Z., Lidon, F. C. (2012): An overview on drought induced changes in plant growth, water relations and photosynthesis. – Emir. J. Food Agric. 24(1): 57-72.FAOSTAT, F. 2010. Disponível em:< http://faostat. fao. org/ site / 567. Defaultt. A spx # ancor >. Acessado em Setembro. - FAOSTAT: Food and Agriculture Organization of The United Nations. 2020. http://faostat.fao.org/ - The R Project for Statistical Computing https://www.r-project.org
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