Research Article
BibTex RIS Cite

INFLUENCE OF THE TIMING OF THE APPLICATION OF SALICYLIC ACID ON THE QUANTITATIVE YIELD AND SOME BIOCHEMICAL CHARACTERISTICS OF BARLEY (Hordeum vulgare L.) UNDER DEFICIT IRRIGATION

Year 2024, Volume: 29 Issue: 2, 260 - 273, 24.12.2024
https://doi.org/10.17557/tjfc.1502359

Abstract

Using salicylic acid (SA) to feed drought-stressed plants plays a vital role in reducing the adverse effects of water stress and improving plant performance. This study explores the role of salicylic acid and different barley cultivars in mitigating the effects of drought stress on barley.The study examined three irrigation levels—one-time irrigation (severe stress), two-time irrigation (moderate stress), and four-time irrigation (control)—along with foliar and non-foliar applications of salicylic acid (SA) at three key stages of the Zadoks Growth Scale (ZGS): ZGS 29 (end of tillering), ZGS 34 (50% stem elongation), and ZGS 39 (completion of flag leaf emergence). These treatments were applied to three barley cultivars—Khatam, Reyhan, and Nosrat— which are considered semi-tolerant to drought stress. The findings showed that the interaction of reduced irrigation and SA increased chlora (8.8%) and b (7.12%) in the ZGS34 treatment under control conditions compared to the treatment without SA. The proline content increased with increasing drought stress, with the highest proline content obtained at the end of the tillering stage in the control condition. Compared to the control, which had no foliar spraying, the specific leaf area increased by 3.8, 1.8, and 0.4%, respectively. Relative water content in Khatam (35.6%), Reyhan (33.3%) and Nosrat (30.5%) decreased with increasing stress in the control treatment compared to the minimum stress. The most sensitive cultivar to lack of irrigation was Khatam. The rate of yield increase by SA compared to the control was (10.33%) among the barley cultivars cultivated, the cultivar Reyhan had a comparative advantage in more measures, mainly when applied at ZGS29. In conclusion, SA improved the drought tolerance of the barley and increased the yield by improving the biochemical characteristics.

Ethical Statement

The authors declare that they have no conflict of interest or personal relationships

Supporting Institution

This research did not receive any specific grant from funding agencies in the public, commercial, or not-for-profit sectors.

References

  • Abdelaal, K.A., K.A. Attia, S.F. Alamery, M.M. El-Afry, A.I. Ghazy, D.S. Tantawy, A.A. Al-Doss, E.S.E. El- M. Shawy, A. Abu-Elsaoud and Y.M. Hafez. 2020. Exogenous application of proline and salicylic acid can mitigate the injurious impacts of drought stress on barley plants associated with physiological and histological characters. Sustainability 12(5): 1736.
  • Arfan, M., H.R. Athar and M. Ashraf. 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?. Journal of plant physiology 164(6): 685-694.
  • Ashraf, M.F.M.R and M.R. Foolad. 2007. Roles of glycine betaine and proline in improving plant abiotic stress resistance. Environmental and experimental botany 59(2): 206-216.
  • Badr, A., R. Sch, H.E. Rabey, S. Effgen, H.H. Ibrahim, C. Pozzi, W. Rohde and F. Salamini. 2000. On the origin and domestication history of barley (Hordeum vulgare). Molecular biology and evolution, 17(4): 499-510.
  • Barati, M., M.M. Majidi, M. Safari, F. Mostafavi, A. Mirlohi and Z. Karami. 2020. Comparative physiological attributes of cultivated and wild relatives of barley in response to different water environments. Agronomy Journal 112(1): 36- 43.
  • Bates, L.S., R.P.A. Waldren and I.D. Teare. 1973. Rapid determination of free proline for water-stress studies. Plant and soil 39: 205-207.
  • Beadle, C.L. 1993. Growth analysis. In Photosynthesis and production in a changing environment: a field and laboratory manual Dordrecht: Springer Netherlands. Pp: 36-46.
  • Cakmak, I. and W.J. Horst. 1991. Effect of aluminium on lipid peroxidation, superoxide dismutase, catalase, and peroxidase activities in root tips of soybean (Glycine max). Physiologia plantarum 83(3): 463-468.
  • Cattivelli, L., F. Rizza, F.W. Badeck, E. Mazzucotelli, A.M. Mastrangelo, E. Francia, C. Marè, A. Tondelli and A.M. Stanca. 2008. Drought tolerance improvement in crop plants: an integrated view from breeding to genomics. Field crops research 105(1-2): 1-14.
  • Cheng, B., X. Gao, Y. Luo, Y. Ding, T. Chen, N. Cao, J. Xu, Z. Xin and L. Zhang. 2023. Utilization of wheat 55K SNP array for QTL mapping of plant height and flag leaf in a RIL population. Cereal Research Communications: 1-14.
  • Colom, M.R. and C. Vazzana. 2003. Photosynthesis and PSII functionality of drought-resistant and drought-sensitive weeping lovegrass plants. Environmental and experimental botany 49(2): 135-144.
  • Cornic, G. 2000. Drought stress inhibits photosynthesis by decreasing stomatal aperture–not by affecting ATP synthesis. Trends in plant science 5(5): 187-188.
  • Daszkowska-Golec, A., A. Skubacz, M. Marzec, M. Slota, M. Kurowska, M. Gajecka, P. Gajewska, T. Płociniczak, K. Sitko, A. Pacak and Z. Szweykowska-Kulinska. 2017. Mutation in HvCBP20 (Cap Binding Protein 20) adapts barley to drought stress at phenotypic and transcriptomic levels. Frontiers in plant science 8:942.
  • Delwiche, L.D. S.J. Slaughter. 2019. The little SAS book: a primer. SAS institute.
  • Ding, P. and Y. Ding. 2020. Stories of salicylic acid: a plant defense hormone. Trends in plant science 25(6): 549-565.
  • El-Seidy, E.H.E., K.A. Amer, A.A El-Gammaal and E.E. ElShawy. 2013. Growth analysis and yield response of barley as affected by irrigation regimes. Egypt. J. Agron 35(1): 1- 19.
  • El-Tayeb, M.A. 2005. Response of barley grains to the interactive e. ect of salinity and salicylic acid. Plant growth regulation 45: 215-224.
  • FAO .2022. Food Agriculture and Organization (FAO). Statistical database. The Europa Directory of International Organizations 2021.
  • Ghanem, H.E and M.O. Al-Farouk. 2024. Wheat Drought Tolerance: Morpho-Physiological Criteria, Stress Indexes, and Yield Responses in Newly Sand Soils. Journal of Plant Growth Regulation 1-17.
  • Ghotbi‐Ravandi, A.A., M.Shahbazi, M. Shariati and P. Mulo, 2014. Effects of mild and severe drought stress on photosynthetic efficiency in tolerant and susceptible barley (Hordeum vulgare L.) genotypes. Journal of Agronomy and Crop Science, 200(6): 403-415.
  • Gooding, M.J., R.H. Ellis, P.R. Shewry and J.D. Schofield. 2003. Effects of restricted water availability and increased temperature on the grain filling, drying and quality of winter wheat. Journal of Cereal Science 37(3): 295-309.
  • Hafez, E. and M. Farig. 2019. Efficacy of salicylic acid as a cofactor for ameliorating effects of water stress and enhancing wheat yield and water use efficiency in saline soil. International Journal of Plant Production 13(2): 163-176.
  • Hussain, I., M.Y. Ashraf, M.H. Saleem, M.A. Ashraf, B. Ali, A. Shereen, G. Farid, M. Ali, M.U. Shirazi, A. Saleem And Y.S. Mostafa. 2023. Alleviating effects of salicylic acid spray on stage-based growth and antioxidative defense system in two drought-stressed rice (Oryza sativa L.) cultivars. Turkish Journal of Agriculture and Forestry 47(1): 79-99.
  • Kaur, G., Y. Tak and B. Asthir. 2022. Salicylic acid: a key signal molecule ameliorating plant stresses. Cereal Research Communications 50(4): 617-626.
  • Khan, W., B. Prithiviraj and D.L. Smith. 2003. Photosynthetic responses of corn and soybean to foliar application of salicylates. Journal of plant physiology 160(5): 485-492.
  • Kheiri, M., J. Kambouzia, R. Deihimfard, S.M Moghaddam and S. Anvari. 2021. Assessing the response of dryland barley yield to climate variability in semi-arid regions, Iran. Journal of Arid Land 13: 905-917.
  • Khoshouei, Z., M. Ashouri, H.R. Doroudian, E. Amiri and N.M. Roshan. 2024. The effect of irrigation management, municipal waste copmost and nitrogen fertilizer on seed yield, quality and some physiological traits of peanut (Arachis hypogaea l.). Turkish Journal Of Field Crops, 29(1): 18-27.
  • Langridge, P. 2018. Economic and academic importance of barley. The barley genome 1-10.
  • Lawlor, D.W., W. Day, A.E. Johnston, B.J. Legg and K.J. Parkinson. 1981. Growth of spring barley under drought: crop development, photosynthesis, dry-matter accumulation and nutrient content. The Journal of Agricultural Science 96(1): 167-186.
  • Ledesma-Ramírez, L., E. Solís-Moya, L.A. Mariscal-Amaro, J. Huerta-Espino, V. Montero-Tavera, A.J. Gámez-Vázquez, J.F. Buenrostro-Rodríguez and S.S. González-Figueroa. 2023. Response of commercial classes of wheat to contrasting irrigation regimes. Cereal Research Communications 1-13.
  • Lichtenthaler, H.K. and A.R. Wellburn. 1983. Determinations of total carotenoids and chlorophylls a and b of leaf extracts in different solvents.
  • Liu, Z., H. Yu, X. Sun and J. Ding. 2022. Effects of elevated temperature on chemistry of an invasive plant, its native congener and their herbivores. Journal of Plant Ecology 15(3): 450-460.
  • Lv, X., Y. Li, R. Chen, M. Rui and Y. Wang. 2023. Stomatal responses of two drought-tolerant barley varieties with different ROS regulation strategies under drought conditions. Antioxidants 12(4):790.
  • Maghsoudi, M., A. Moradi, F. Moradipour and M.A. Nezammahalleh. 2019. Geotourism development in world heritage of the Lut Desert. Geoheritage 11: 501-516.
  • Matinizadeh, M., E. Nouri, M. Bayranvand, Z. Kolarikova and M. Janoušková. 2024. Arbuscular mycorrhiza and rhizosphere soil enzymatic activities as modulated by grazing intensity and plant species identity in a semi-arid grassland. Rhizosphere, p.100893.
  • Meza, I., E.E. Rezaei, S. Siebert, G. Ghazaryan, H. Nouri, O. Dubovyk, H. Gerdener, C. Herbert, J. Kusche, E. Popat and J., Rhyner. 2021. Drought risk for agricultural systems in South Africa: Drivers, spatial patterns, and implications for drought risk management. Science of the Total Environment, 799: 149505.
  • Moharekar, S.T., S.D. Lokhande, T. Hara, R. Tanaka, A. Tanaka and P.D. Chavan. 2003. Effect of salicylic acid on chlorophyll and carotenoid contents of wheat and moong seedlings. Photosynthetica, 41: 315-317.
  • Moshki, A., E. Nouri and M. Matinizadeh. 2024. Soil Biophysicochemical Properties Changes in Response to Grazing Intensity and Seasonal Variations in an Arid Rangeland Ecosystem of Iran. Ecopersia, 12(3): 307-316.
  • Nakano, Y and K. Asada. 1981. Hydrogen peroxide is scavenged by ascorbate-specific peroxidase in spinach chloroplasts. Plant and cell physiology 22(5): 867-880.
  • Nouri, E., M. Matinizadeh, A. Moshki, A. Zolfaghari, S. Rajaei and M. Janoušková. 2020. Arbuscular mycorrhizal fungi benefit drought-stressed S alsola laricina. Plant Ecology 221:683-694.
  • Papkyadeh, S.M.S., N.M. Roshan, S.M. Sadeghi, E. Amiri and M. Ashouri. 2023. Evaluation of nitrogen fertilizer and row spacing effect on yield and physiological characteristics of maize (Zea mays l.) under irrigated and rainfed conditions. Turkish Journal of Field Crops, 28(2): 183-193.
  • Pirnajmedin, F., M.M. Majidi, H. Taleb, G. Saeidi and S. Shojaiefar. 2020. Genotypic‐specific response to exogenous applied salicylic acid in tall fescue under different irrigation conditions. Crop Science 60(2): 1123-1130.
  • Reddy, P.C.O., G. Sairanganayakulu, M. Thippeswamy, P.S. Reddy, M.K. Reddy and C. Sudhakar, 2008. Identification of stress-induced genes from the drought tolerant semi-arid legume crop horsegram (Macrotyloma uniflorum (Lam.) Verdc.) through analysis of subtracted expressed sequence tags. Plant science, 175(3), pp.372-384.
  • Rehman, S., M. Amouzoune, H. Hiddar, H. Aberkane, R. Benkirane, A. Filali-Maltouf, M. Al-Jaboobi, L. Acqbouch, A. Tsivelikas, R.P.S. Verma and Z. Kehel, 2021. Traits discovery in Hordeum vulgare sbsp. spontaneum accessions and in lines derived from interspecific crosses with wild Hordeum species for enhancing barley breeding efforts. Crop Science 61(1): 219-233.
  • Ritchie, S.W., H.T. Nguyen and A.S. Holaday. 1990. Leaf water content and gas‐exchange parameters of two wheat genotypes differing in drought resistance. Crop science 30(1): 105-111.
  • Rousta, M.J., M. Matinizadeh, E. Nouri, M. Zarafshar and M. Enayati. 2023. Investigating the Diversity, Abundance and Degree of Symbiosis of Arbuscular Mycorrhizal Fungi with Trees and Pasture Plants in Kowsar Station. Ecology of Iranian Forest 11(21): 159-169.
  • Rozentsvet, O., E. Bogdanova, V. Nesterov, A. Bakunov, A. Milekhin, S. Rubtsov and N. Dmitrieva. 2022. Physiological and biochemical parameters of leaves for evaluation of the potato yield. Agriculture, 12(6), p.757.
  • Safar-Noori, M., D.V.M. Assaha and H. Saneoka. 2018. Effect of salicylic acid and potassium application on yield and grain nutritional quality of wheat under drought stress condition. Cereal Research Communications 46(3): 558-568.
  • Sallam, A., A.M. Alqudah, M.F. Dawood, P.S. Baenziger and A. Börner. 2019. Drought stress tolerance in wheat and barley: advances in physiology, breeding and genetics research. International journal of molecular sciences 20(13): 3137.
  • Samarah, N.H. 2005. Effects of drought stress on growth and yield of barley. Agronomy for sustainable development, 25(1): 145-149.
  • Shakirova, F.M., A.R. Sakhabutdinova, M.V. Bezrukova, R.A. Fatkhutdinova and D.R. Fatkhutdinova. 2003. Changes in the hormonal status of wheat seedlings induced by salicylic acid and salinity. Plant science 164(3): 317-322.
  • Silva, M.D.A., J.L. Jifon, J.A. Da Silva and V. Sharma. 2007. Use of physiological parameters as fast tools to screen for drought tolerance in sugarcane. Brazilian Journal of Plant Physiology 19: 193-201.
  • Singh, B. and K. Usha, 2003. Salicylic acid induced physiological and biochemical changes in wheat seedlings under water stress. Plant growth regulation 39:137-141.
  • Singh, S. 2023. Salicylic acid elicitation improves antioxidant activity of spinach leaves by increasing phenolic content and enzyme levels. Food Chemistry Advances 2:100156.
  • Siosemardeh, A., A. Ahmadi, K. Poustini, and H. Ebrahimzadeh. 2004. Stomatal and nonstomatal limitations to photosynthesis and their relationship with drought resistance in wheat cultivars.
  • Stone, P.J., D.R.Wilson, P.D. Jamieson and R.N.Gillespie. 2001. Water deficit effects on sweet corn. II. Canopy development. Australian journal of agricultural research, 52(1): 115-126.
  • Soltys-Kalina, D., J. Plich, D. Strzelczyk-Żyta, J. Śliwka and W. Marczewski. 2016. The effect of drought stress on the leaf relative water content and tuber yield of a half-sib family of ‘Katahdin’-derived potato cultivars. Breeding science 66(2): 328-331.
  • Trovato, M., D. Funck, G. Forlani, S. Okumoto and R. Amir. 2021. Amino acids in plants: Regulation and functions in development and stress defense. Frontiers in plant science 12: 772810.
  • Verbruggen, N and C. Hermans. 2008. Proline accumulation in plants: a review. Amino acids 35: 753-759.
  • Williams, J.L., J.D. Sherman, P. Lamb, J. Cook, J.A Lachowiec and M. Bourgault. 2022. Relationships between roots, the staygreen phenotype, and agronomic performance in barley and wheat grown in semiarid conditions. The Plant Phenome Journal 5(1): e220050.
  • Yan, Y., Q. Liu, Q. Zhang, Y. Ding and Y. Li. 2019. Adaptation of dominant species to drought in the inner mongolia grassland–species level and functional type level analysis. Frontiers in plant science 10:231.
  • Yang, X., M. Lu, Y. Wang, Y. Wang, Z. Liu and S. Chen. 2021. Response mechanism of plants to drought stress. Horticulturae 7(3):50.
  • Yang, Y., R. Nan, T. Mi, Y. Song, F. Shi, X. Liu, Y. Wang, F. Sun, Y. Xi and C. Zhang. 2023. Rapid and nondestructive evaluation of wheat chlorophyll under drought stress using hyperspectral imaging. International Journal of Molecular Sciences 24(6):5825.
  • Zhu, G.X., D.J. Midmore, B.J. Radford and D.F. Yule. 2004. Effect of timing of defoliation on wheat (Triticum aestivum) in central Queensland: 1. Crop response and yield. Field crops research 88(2-3): 211-226.
Year 2024, Volume: 29 Issue: 2, 260 - 273, 24.12.2024
https://doi.org/10.17557/tjfc.1502359

Abstract

References

  • Abdelaal, K.A., K.A. Attia, S.F. Alamery, M.M. El-Afry, A.I. Ghazy, D.S. Tantawy, A.A. Al-Doss, E.S.E. El- M. Shawy, A. Abu-Elsaoud and Y.M. Hafez. 2020. Exogenous application of proline and salicylic acid can mitigate the injurious impacts of drought stress on barley plants associated with physiological and histological characters. Sustainability 12(5): 1736.
  • Arfan, M., H.R. Athar and M. Ashraf. 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?. Journal of plant physiology 164(6): 685-694.
  • Ashraf, M.F.M.R and M.R. Foolad. 2007. Roles of glycine betaine and proline in improving plant abiotic stress resistance. Environmental and experimental botany 59(2): 206-216.
  • Badr, A., R. Sch, H.E. Rabey, S. Effgen, H.H. Ibrahim, C. Pozzi, W. Rohde and F. Salamini. 2000. On the origin and domestication history of barley (Hordeum vulgare). Molecular biology and evolution, 17(4): 499-510.
  • Barati, M., M.M. Majidi, M. Safari, F. Mostafavi, A. Mirlohi and Z. Karami. 2020. Comparative physiological attributes of cultivated and wild relatives of barley in response to different water environments. Agronomy Journal 112(1): 36- 43.
  • Bates, L.S., R.P.A. Waldren and I.D. Teare. 1973. Rapid determination of free proline for water-stress studies. Plant and soil 39: 205-207.
  • Beadle, C.L. 1993. Growth analysis. In Photosynthesis and production in a changing environment: a field and laboratory manual Dordrecht: Springer Netherlands. Pp: 36-46.
  • Cakmak, I. and W.J. Horst. 1991. Effect of aluminium on lipid peroxidation, superoxide dismutase, catalase, and peroxidase activities in root tips of soybean (Glycine max). Physiologia plantarum 83(3): 463-468.
  • Cattivelli, L., F. Rizza, F.W. Badeck, E. Mazzucotelli, A.M. Mastrangelo, E. Francia, C. Marè, A. Tondelli and A.M. Stanca. 2008. Drought tolerance improvement in crop plants: an integrated view from breeding to genomics. Field crops research 105(1-2): 1-14.
  • Cheng, B., X. Gao, Y. Luo, Y. Ding, T. Chen, N. Cao, J. Xu, Z. Xin and L. Zhang. 2023. Utilization of wheat 55K SNP array for QTL mapping of plant height and flag leaf in a RIL population. Cereal Research Communications: 1-14.
  • Colom, M.R. and C. Vazzana. 2003. Photosynthesis and PSII functionality of drought-resistant and drought-sensitive weeping lovegrass plants. Environmental and experimental botany 49(2): 135-144.
  • Cornic, G. 2000. Drought stress inhibits photosynthesis by decreasing stomatal aperture–not by affecting ATP synthesis. Trends in plant science 5(5): 187-188.
  • Daszkowska-Golec, A., A. Skubacz, M. Marzec, M. Slota, M. Kurowska, M. Gajecka, P. Gajewska, T. Płociniczak, K. Sitko, A. Pacak and Z. Szweykowska-Kulinska. 2017. Mutation in HvCBP20 (Cap Binding Protein 20) adapts barley to drought stress at phenotypic and transcriptomic levels. Frontiers in plant science 8:942.
  • Delwiche, L.D. S.J. Slaughter. 2019. The little SAS book: a primer. SAS institute.
  • Ding, P. and Y. Ding. 2020. Stories of salicylic acid: a plant defense hormone. Trends in plant science 25(6): 549-565.
  • El-Seidy, E.H.E., K.A. Amer, A.A El-Gammaal and E.E. ElShawy. 2013. Growth analysis and yield response of barley as affected by irrigation regimes. Egypt. J. Agron 35(1): 1- 19.
  • El-Tayeb, M.A. 2005. Response of barley grains to the interactive e. ect of salinity and salicylic acid. Plant growth regulation 45: 215-224.
  • FAO .2022. Food Agriculture and Organization (FAO). Statistical database. The Europa Directory of International Organizations 2021.
  • Ghanem, H.E and M.O. Al-Farouk. 2024. Wheat Drought Tolerance: Morpho-Physiological Criteria, Stress Indexes, and Yield Responses in Newly Sand Soils. Journal of Plant Growth Regulation 1-17.
  • Ghotbi‐Ravandi, A.A., M.Shahbazi, M. Shariati and P. Mulo, 2014. Effects of mild and severe drought stress on photosynthetic efficiency in tolerant and susceptible barley (Hordeum vulgare L.) genotypes. Journal of Agronomy and Crop Science, 200(6): 403-415.
  • Gooding, M.J., R.H. Ellis, P.R. Shewry and J.D. Schofield. 2003. Effects of restricted water availability and increased temperature on the grain filling, drying and quality of winter wheat. Journal of Cereal Science 37(3): 295-309.
  • Hafez, E. and M. Farig. 2019. Efficacy of salicylic acid as a cofactor for ameliorating effects of water stress and enhancing wheat yield and water use efficiency in saline soil. International Journal of Plant Production 13(2): 163-176.
  • Hussain, I., M.Y. Ashraf, M.H. Saleem, M.A. Ashraf, B. Ali, A. Shereen, G. Farid, M. Ali, M.U. Shirazi, A. Saleem And Y.S. Mostafa. 2023. Alleviating effects of salicylic acid spray on stage-based growth and antioxidative defense system in two drought-stressed rice (Oryza sativa L.) cultivars. Turkish Journal of Agriculture and Forestry 47(1): 79-99.
  • Kaur, G., Y. Tak and B. Asthir. 2022. Salicylic acid: a key signal molecule ameliorating plant stresses. Cereal Research Communications 50(4): 617-626.
  • Khan, W., B. Prithiviraj and D.L. Smith. 2003. Photosynthetic responses of corn and soybean to foliar application of salicylates. Journal of plant physiology 160(5): 485-492.
  • Kheiri, M., J. Kambouzia, R. Deihimfard, S.M Moghaddam and S. Anvari. 2021. Assessing the response of dryland barley yield to climate variability in semi-arid regions, Iran. Journal of Arid Land 13: 905-917.
  • Khoshouei, Z., M. Ashouri, H.R. Doroudian, E. Amiri and N.M. Roshan. 2024. The effect of irrigation management, municipal waste copmost and nitrogen fertilizer on seed yield, quality and some physiological traits of peanut (Arachis hypogaea l.). Turkish Journal Of Field Crops, 29(1): 18-27.
  • Langridge, P. 2018. Economic and academic importance of barley. The barley genome 1-10.
  • Lawlor, D.W., W. Day, A.E. Johnston, B.J. Legg and K.J. Parkinson. 1981. Growth of spring barley under drought: crop development, photosynthesis, dry-matter accumulation and nutrient content. The Journal of Agricultural Science 96(1): 167-186.
  • Ledesma-Ramírez, L., E. Solís-Moya, L.A. Mariscal-Amaro, J. Huerta-Espino, V. Montero-Tavera, A.J. Gámez-Vázquez, J.F. Buenrostro-Rodríguez and S.S. González-Figueroa. 2023. Response of commercial classes of wheat to contrasting irrigation regimes. Cereal Research Communications 1-13.
  • Lichtenthaler, H.K. and A.R. Wellburn. 1983. Determinations of total carotenoids and chlorophylls a and b of leaf extracts in different solvents.
  • Liu, Z., H. Yu, X. Sun and J. Ding. 2022. Effects of elevated temperature on chemistry of an invasive plant, its native congener and their herbivores. Journal of Plant Ecology 15(3): 450-460.
  • Lv, X., Y. Li, R. Chen, M. Rui and Y. Wang. 2023. Stomatal responses of two drought-tolerant barley varieties with different ROS regulation strategies under drought conditions. Antioxidants 12(4):790.
  • Maghsoudi, M., A. Moradi, F. Moradipour and M.A. Nezammahalleh. 2019. Geotourism development in world heritage of the Lut Desert. Geoheritage 11: 501-516.
  • Matinizadeh, M., E. Nouri, M. Bayranvand, Z. Kolarikova and M. Janoušková. 2024. Arbuscular mycorrhiza and rhizosphere soil enzymatic activities as modulated by grazing intensity and plant species identity in a semi-arid grassland. Rhizosphere, p.100893.
  • Meza, I., E.E. Rezaei, S. Siebert, G. Ghazaryan, H. Nouri, O. Dubovyk, H. Gerdener, C. Herbert, J. Kusche, E. Popat and J., Rhyner. 2021. Drought risk for agricultural systems in South Africa: Drivers, spatial patterns, and implications for drought risk management. Science of the Total Environment, 799: 149505.
  • Moharekar, S.T., S.D. Lokhande, T. Hara, R. Tanaka, A. Tanaka and P.D. Chavan. 2003. Effect of salicylic acid on chlorophyll and carotenoid contents of wheat and moong seedlings. Photosynthetica, 41: 315-317.
  • Moshki, A., E. Nouri and M. Matinizadeh. 2024. Soil Biophysicochemical Properties Changes in Response to Grazing Intensity and Seasonal Variations in an Arid Rangeland Ecosystem of Iran. Ecopersia, 12(3): 307-316.
  • Nakano, Y and K. Asada. 1981. Hydrogen peroxide is scavenged by ascorbate-specific peroxidase in spinach chloroplasts. Plant and cell physiology 22(5): 867-880.
  • Nouri, E., M. Matinizadeh, A. Moshki, A. Zolfaghari, S. Rajaei and M. Janoušková. 2020. Arbuscular mycorrhizal fungi benefit drought-stressed S alsola laricina. Plant Ecology 221:683-694.
  • Papkyadeh, S.M.S., N.M. Roshan, S.M. Sadeghi, E. Amiri and M. Ashouri. 2023. Evaluation of nitrogen fertilizer and row spacing effect on yield and physiological characteristics of maize (Zea mays l.) under irrigated and rainfed conditions. Turkish Journal of Field Crops, 28(2): 183-193.
  • Pirnajmedin, F., M.M. Majidi, H. Taleb, G. Saeidi and S. Shojaiefar. 2020. Genotypic‐specific response to exogenous applied salicylic acid in tall fescue under different irrigation conditions. Crop Science 60(2): 1123-1130.
  • Reddy, P.C.O., G. Sairanganayakulu, M. Thippeswamy, P.S. Reddy, M.K. Reddy and C. Sudhakar, 2008. Identification of stress-induced genes from the drought tolerant semi-arid legume crop horsegram (Macrotyloma uniflorum (Lam.) Verdc.) through analysis of subtracted expressed sequence tags. Plant science, 175(3), pp.372-384.
  • Rehman, S., M. Amouzoune, H. Hiddar, H. Aberkane, R. Benkirane, A. Filali-Maltouf, M. Al-Jaboobi, L. Acqbouch, A. Tsivelikas, R.P.S. Verma and Z. Kehel, 2021. Traits discovery in Hordeum vulgare sbsp. spontaneum accessions and in lines derived from interspecific crosses with wild Hordeum species for enhancing barley breeding efforts. Crop Science 61(1): 219-233.
  • Ritchie, S.W., H.T. Nguyen and A.S. Holaday. 1990. Leaf water content and gas‐exchange parameters of two wheat genotypes differing in drought resistance. Crop science 30(1): 105-111.
  • Rousta, M.J., M. Matinizadeh, E. Nouri, M. Zarafshar and M. Enayati. 2023. Investigating the Diversity, Abundance and Degree of Symbiosis of Arbuscular Mycorrhizal Fungi with Trees and Pasture Plants in Kowsar Station. Ecology of Iranian Forest 11(21): 159-169.
  • Rozentsvet, O., E. Bogdanova, V. Nesterov, A. Bakunov, A. Milekhin, S. Rubtsov and N. Dmitrieva. 2022. Physiological and biochemical parameters of leaves for evaluation of the potato yield. Agriculture, 12(6), p.757.
  • Safar-Noori, M., D.V.M. Assaha and H. Saneoka. 2018. Effect of salicylic acid and potassium application on yield and grain nutritional quality of wheat under drought stress condition. Cereal Research Communications 46(3): 558-568.
  • Sallam, A., A.M. Alqudah, M.F. Dawood, P.S. Baenziger and A. Börner. 2019. Drought stress tolerance in wheat and barley: advances in physiology, breeding and genetics research. International journal of molecular sciences 20(13): 3137.
  • Samarah, N.H. 2005. Effects of drought stress on growth and yield of barley. Agronomy for sustainable development, 25(1): 145-149.
  • Shakirova, F.M., A.R. Sakhabutdinova, M.V. Bezrukova, R.A. Fatkhutdinova and D.R. Fatkhutdinova. 2003. Changes in the hormonal status of wheat seedlings induced by salicylic acid and salinity. Plant science 164(3): 317-322.
  • Silva, M.D.A., J.L. Jifon, J.A. Da Silva and V. Sharma. 2007. Use of physiological parameters as fast tools to screen for drought tolerance in sugarcane. Brazilian Journal of Plant Physiology 19: 193-201.
  • Singh, B. and K. Usha, 2003. Salicylic acid induced physiological and biochemical changes in wheat seedlings under water stress. Plant growth regulation 39:137-141.
  • Singh, S. 2023. Salicylic acid elicitation improves antioxidant activity of spinach leaves by increasing phenolic content and enzyme levels. Food Chemistry Advances 2:100156.
  • Siosemardeh, A., A. Ahmadi, K. Poustini, and H. Ebrahimzadeh. 2004. Stomatal and nonstomatal limitations to photosynthesis and their relationship with drought resistance in wheat cultivars.
  • Stone, P.J., D.R.Wilson, P.D. Jamieson and R.N.Gillespie. 2001. Water deficit effects on sweet corn. II. Canopy development. Australian journal of agricultural research, 52(1): 115-126.
  • Soltys-Kalina, D., J. Plich, D. Strzelczyk-Żyta, J. Śliwka and W. Marczewski. 2016. The effect of drought stress on the leaf relative water content and tuber yield of a half-sib family of ‘Katahdin’-derived potato cultivars. Breeding science 66(2): 328-331.
  • Trovato, M., D. Funck, G. Forlani, S. Okumoto and R. Amir. 2021. Amino acids in plants: Regulation and functions in development and stress defense. Frontiers in plant science 12: 772810.
  • Verbruggen, N and C. Hermans. 2008. Proline accumulation in plants: a review. Amino acids 35: 753-759.
  • Williams, J.L., J.D. Sherman, P. Lamb, J. Cook, J.A Lachowiec and M. Bourgault. 2022. Relationships between roots, the staygreen phenotype, and agronomic performance in barley and wheat grown in semiarid conditions. The Plant Phenome Journal 5(1): e220050.
  • Yan, Y., Q. Liu, Q. Zhang, Y. Ding and Y. Li. 2019. Adaptation of dominant species to drought in the inner mongolia grassland–species level and functional type level analysis. Frontiers in plant science 10:231.
  • Yang, X., M. Lu, Y. Wang, Y. Wang, Z. Liu and S. Chen. 2021. Response mechanism of plants to drought stress. Horticulturae 7(3):50.
  • Yang, Y., R. Nan, T. Mi, Y. Song, F. Shi, X. Liu, Y. Wang, F. Sun, Y. Xi and C. Zhang. 2023. Rapid and nondestructive evaluation of wheat chlorophyll under drought stress using hyperspectral imaging. International Journal of Molecular Sciences 24(6):5825.
  • Zhu, G.X., D.J. Midmore, B.J. Radford and D.F. Yule. 2004. Effect of timing of defoliation on wheat (Triticum aestivum) in central Queensland: 1. Crop response and yield. Field crops research 88(2-3): 211-226.
There are 64 citations in total.

Details

Primary Language English
Subjects Agronomy
Journal Section Articles
Authors

Mojtaba Shoaa This is me 0009-0000-3365-6573

Farhad Mohajeri 0000-0003-4217-2655

Mohammad Rahim Owji This is me 0000-0001-6326-6103

Alireza Bagheri This is me 0000-0002-6037-603X

Publication Date December 24, 2024
Submission Date June 18, 2024
Acceptance Date December 14, 2024
Published in Issue Year 2024 Volume: 29 Issue: 2

Cite

APA Shoaa, M., Mohajeri, F., Owji, M. R., Bagheri, A. (2024). INFLUENCE OF THE TIMING OF THE APPLICATION OF SALICYLIC ACID ON THE QUANTITATIVE YIELD AND SOME BIOCHEMICAL CHARACTERISTICS OF BARLEY (Hordeum vulgare L.) UNDER DEFICIT IRRIGATION. Turkish Journal Of Field Crops, 29(2), 260-273. https://doi.org/10.17557/tjfc.1502359
AMA Shoaa M, Mohajeri F, Owji MR, Bagheri A. INFLUENCE OF THE TIMING OF THE APPLICATION OF SALICYLIC ACID ON THE QUANTITATIVE YIELD AND SOME BIOCHEMICAL CHARACTERISTICS OF BARLEY (Hordeum vulgare L.) UNDER DEFICIT IRRIGATION. TJFC. December 2024;29(2):260-273. doi:10.17557/tjfc.1502359
Chicago Shoaa, Mojtaba, Farhad Mohajeri, Mohammad Rahim Owji, and Alireza Bagheri. “INFLUENCE OF THE TIMING OF THE APPLICATION OF SALICYLIC ACID ON THE QUANTITATIVE YIELD AND SOME BIOCHEMICAL CHARACTERISTICS OF BARLEY (Hordeum Vulgare L.) UNDER DEFICIT IRRIGATION”. Turkish Journal Of Field Crops 29, no. 2 (December 2024): 260-73. https://doi.org/10.17557/tjfc.1502359.
EndNote Shoaa M, Mohajeri F, Owji MR, Bagheri A (December 1, 2024) INFLUENCE OF THE TIMING OF THE APPLICATION OF SALICYLIC ACID ON THE QUANTITATIVE YIELD AND SOME BIOCHEMICAL CHARACTERISTICS OF BARLEY (Hordeum vulgare L.) UNDER DEFICIT IRRIGATION. Turkish Journal Of Field Crops 29 2 260–273.
IEEE M. Shoaa, F. Mohajeri, M. R. Owji, and A. Bagheri, “INFLUENCE OF THE TIMING OF THE APPLICATION OF SALICYLIC ACID ON THE QUANTITATIVE YIELD AND SOME BIOCHEMICAL CHARACTERISTICS OF BARLEY (Hordeum vulgare L.) UNDER DEFICIT IRRIGATION”, TJFC, vol. 29, no. 2, pp. 260–273, 2024, doi: 10.17557/tjfc.1502359.
ISNAD Shoaa, Mojtaba et al. “INFLUENCE OF THE TIMING OF THE APPLICATION OF SALICYLIC ACID ON THE QUANTITATIVE YIELD AND SOME BIOCHEMICAL CHARACTERISTICS OF BARLEY (Hordeum Vulgare L.) UNDER DEFICIT IRRIGATION”. Turkish Journal Of Field Crops 29/2 (December 2024), 260-273. https://doi.org/10.17557/tjfc.1502359.
JAMA Shoaa M, Mohajeri F, Owji MR, Bagheri A. INFLUENCE OF THE TIMING OF THE APPLICATION OF SALICYLIC ACID ON THE QUANTITATIVE YIELD AND SOME BIOCHEMICAL CHARACTERISTICS OF BARLEY (Hordeum vulgare L.) UNDER DEFICIT IRRIGATION. TJFC. 2024;29:260–273.
MLA Shoaa, Mojtaba et al. “INFLUENCE OF THE TIMING OF THE APPLICATION OF SALICYLIC ACID ON THE QUANTITATIVE YIELD AND SOME BIOCHEMICAL CHARACTERISTICS OF BARLEY (Hordeum Vulgare L.) UNDER DEFICIT IRRIGATION”. Turkish Journal Of Field Crops, vol. 29, no. 2, 2024, pp. 260-73, doi:10.17557/tjfc.1502359.
Vancouver Shoaa M, Mohajeri F, Owji MR, Bagheri A. INFLUENCE OF THE TIMING OF THE APPLICATION OF SALICYLIC ACID ON THE QUANTITATIVE YIELD AND SOME BIOCHEMICAL CHARACTERISTICS OF BARLEY (Hordeum vulgare L.) UNDER DEFICIT IRRIGATION. TJFC. 2024;29(2):260-73.

Turkish Journal of Field Crops is published by the Society of Field Crops Science and issued twice a year.
Owner : Prof. Dr. Behçet KIR
Ege University, Faculty of Agriculture,Department of Field Crops
Editor in Chief : Prof. Dr. Emre ILKER
Address : 848 sok. 2. Beyler İşhanı No:72, Kat:3 D.313 35000 Konak-Izmir, TURKEY
Email :  turkishjournaloffieldcrops@gmail.com contact@field-crops.org
Tel : +90 232 3112679
Tel/Fax : : +90 232 3432474