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Article

Folic acid as a protective agent in snap bean plants under water deficit conditions

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Pages 94-109 | Accepted 02 Jul 2020, Published online: 28 Jul 2020

References

  • A.O.A.C. (1990). Official methods of analysis of association of official agricultural chemists (Vol. 15, pp. 1045–1106). washengton d.c, usa.
  • Acosta-Motos, J.R., Ortuño, M.F., Bernal-Vicente, A., Diaz-Vivancos, P., Sanchez-Blanco, M.J., & Hernandez, J.A. (2017). Plant responses to salt stress: Adaptive mechanisms. Agronomy, 7, 18. doi:10.3390/agronomy7010018
  • Ahmad, P., Jaleel, C.A., Salem, M.A., Nabi, G., & Sharma, S. (2010). Roles of enzymatic and nonenzymatic antioxidants in plants during abiotic stress. Critical Reviews in Biotechnology, 30, 161–175. doi:10.3109/07388550903524243
  • Ahmad, P., Jamsheed, S., Hameed, A., Rasool, S., Sharma, I., Azooz, M., & Hasanuzzaman, M. (2014). Drought stress induced oxidative damage and antioxidants in plants. In Oxidative damage to plants (pp. 345–367). Elsevier.
  • Albani, D., Giorgetti, L., Pitto, L., Luo, M., & Cantoni, R. (2005). Proliferation-dependent pattern of expression of a dihydrofolate reductase-thymidylate synthase gene from Daucus carota. European Journal of Histochemistry, 49;(2): 107–115.
  • Allen, R.G., Pereira, L.S., Raes, D., & Smith, M. (1998). Crop evapotranspiration-Guidelines for computing crop water requirements-FAO irrigation and drainage paper 56. Fao, Rome, 300, D05109.
  • Al-Naggar, A., El-Salam, R.A., Badran, A., Boulos, S., & El-Moghazi, M.M. (2018). Leaf amino acids and anatomical traits of drought tolerant vs sensitive genotypes of quinoa (Chenopodium quinoa Willd.) under elevated levels of water stress. Annual Research & Review in Biology, 22, 1–19. doi:10.9734/ARRB/2018/39048
  • Alscher, R.G., Erturk, N., & Heath, L.S. (2002). Role of superoxide dismutases (SODs) in controlling oxidative stress in plants. Journal of Experimental Botany, 53, 1331–1341. doi:10.1093/jexbot/53.372.1331
  • Anjum, S.A., Xie, X.-Y., Wang, L.-C., Saleem, M.F., Man, C., & Lei, W. (2011). Morphological, physiological and biochemical responses of plants to drought stress. African Journal of Agricultural Research, 6, 2026–2032.
  • Avramova, V., AbdElgawad, H., Zhang, Z., Fotschki, B., Casadevall, R., Vergauwen, L., … Asard, H. (2015). Drought induces distinct growth response, protection, and recovery mechanisms in the maize leaf growth zone. Plant Physiology, 169, 1382–1396. doi:10.1104/pp.15.00276
  • Bailey-Serres, J., & Mittler, R. (2006). The roles of reactive oxygen species in plant cells. Plant Physiology, 141, 311. doi:10.1104/pp.104.900191
  • Basset, G.J., Quinlivan, E.P., Gregory, J.F., & Hanson, A.D. (2005). Folate synthesis and metabolism in plants and prospects for biofortification. Crop Science, 45, 449–453. doi:10.2135/cropsci2005.0449
  • Bates, L., Waldren, R., & Teare, I. (1973). Rapid determination of free proline for water-stress studies. Plant and Soil, 39, 205–207. doi:10.1007/BF00018060
  • Beshir, H., Bueckert, R., & Tar’an, B. (2016). Effect of temporary drought at different growth stages on snap bean pod quality and yield. African Crop Science Journal, 24, 317–330. doi:10.4314/acsj.v24i3.8
  • Beyer, W.F., & Fridovich, I. (1987). Assaying for superoxide dismutase activity: Some large consequences of minor changes in conditions. Analytical Biochemistry, 161, 559–566. doi:10.1016/0003-2697(87)90489-1
  • Black, C.A. (1969). Methods of soil analysis. Wisconsin USA: American Society of Agronomy Incentive Madison.
  • Boutraa, T., & Sanders, F. (2001). Influence of water stress on grain yield and vegetative growth of two cultivars of bean (Phaseolus vulgaris L.). Journal of Agronomy and Crop Science, 187, 251–257. doi:10.1046/j.1439-037X.2001.00525.x
  • Bradford, M.M. (1976). A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Analytical Biochemistry, 72, 248–254. doi:10.1016/0003-2697(76)90527-3
  • Burguieres, E., McCue, P., Kwon, Y.-I., & Shetty, K. (2007). Effect of vitamin C and folic acid on seed vigour response and phenolic-linked antioxidant activity. Bioresource Technology, 98, 1393–1404. doi:10.1016/j.biortech.2006.05.046
  • Cakmak, I., Strbac, D., & Marschner, H. (1993). Activities of hydrogen peroxide-scavenging enzymes in germinating wheat seeds. Journal of Experimental Botany, 44, 127–132. doi:10.1093/jxb/44.1.127
  • Campos, C.N., Ávila, R.G., de Souza, K.R.D., Azevedo, L.M., & Alves, J.D. (2019). Melatonin reduces oxidative stress and promotes drought tolerance in young coffea arabica L. plants. Agricultural Water Management, 211, 37–47. doi:10.1016/j.agwat.2018.09.025
  • Choudhury, F.K., Rivero, R.M., Blumwald, E., & Mittler, R. (2017). Reactive oxygen species, abiotic stress and stress combination. The Plant Journal, 90, 856–867. doi:10.1111/tpj.13299
  • Chow, P.S., & Landhäusser, S.M. (2004). A method for routine measurements of total sugar and starch content in woody plant tissues. Tree Physiology, 24, 1129–1136. doi:10.1093/treephys/24.10.1129
  • Crosti, P. (1981). Effect of folate analogues on the activity of dihydrofolate reductases and on the growth of plant organisms. Journal of Experimental Botany, 32, 717–723. doi:10.1093/jxb/32.4.717
  • Cui, S., Lv, X., Li, W., Li, Z., Liu, H., Gao, Y., & Huang, G. (2018). Folic acid modulates VPO1 DNA methylation levels and alleviates oxidative stress-induced apoptosis in vivo and in vitro. Redox Biology, 19, 81–91. doi:10.1016/j.redox.2018.08.005
  • Dawood, M.G., & El-Metwally, I.M. (2018). Weed management, folic acid and seaweed extract effects on Faba bean plants and associated weeds under sandy soil conditions. Agricultural Engineering International: CIGR Journal, 19, 27–34.
  • Dias, M.A., & Costa, M.M. (1983). Effect of low salt concentrations on nitrate reductase and peroxidase of sugar beet leaves. Journal of Experimental Botany, 34, 537–543. doi:10.1093/jxb/34.5.537
  • Doorenbos, J., & Pruitt, W. (1977). Crop water requirements. (FAO irrigation and drainage paper 24. Land and water development division). Rome: FAO. 144
  • Elkeilsh, A., Awad, Y.M., Soliman, M.H., Abu-Elsaoud, A., Abdelhamid, M.T., & El-Metwally, I.M. (2019a). Exogenous application of β-sitosterol mediated growth and yield improvement in water-stressed wheat (Triticum aestivum) involves up-regulated antioxidant system. Journal of Plant Research, 132, 881–901. doi:10.1007/s10265-019-01143-5
  • Elkeilsh, A.A., Soliman, M.H., Alhaithloul, H.A., & El-Esawi, M.A. (2019b). Selenium protects wheat seedlings against salt stress-mediated oxidative damage by up-regulating antioxidants and osmolytes metabolism. Plant Physiology and Biochemistry, 137, 144–153. doi:10.1016/j.plaphy.2019.02.004
  • El-Shafey, A.I., & Hassan, S.S. (2016). Impact of ascorbic and folic acids foliar application on yield, growth and its attributes of flax cultivars. Alexandria Journal of Agricultural Sciences, 61, 2.
  • Emam, M., & Helal, N. (2008). Vitamins minimize the salt-induced oxidative stress hazards. Australian Journal of Basic and Applied Sciences, 2, 110–1119.
  • Epila, J., Hubeau, M., & Steppe, K. (2018). Drought effects on photosynthesis and implications of photoassimilate distribution in 11C-labeled leaves in the african tropical tree species maesopsis eminii engl. Forests, 9, 109. doi:10.3390/f9030109
  • Forni, C., Duca, D., & Glick, B.R. (2017). Mechanisms of plant response to salt and drought stress and their alteration by rhizobacteria. Plant and Soil, 410, 335–356. doi:10.1007/s11104-016-3007-x
  • Foryer, C., & Noctor, G. (2000). Oxygen processing in photosynthesis: Regulation and signaling. New Phytologist, 146, 359–388. doi:10.1046/j.1469-8137.2000.00667.x
  • Gambonnet, B., Jabrin, S., Ravanel, S., Karan, M., Douce, R., & Rébeillé, F. (2001). Folate distribution during higher plant development. Journal of the Science of Food and Agriculture, 81, 835–841. doi:10.1002/jsfa.870
  • Giberti, S., Funck, D., & Forlani, G. (2014). Δ1‐pyrroline‐5‐carboxylate reductase from Arabidopsis thaliana: Stimulation or inhibition by chloride ions and feedback regulation by proline depend on whether NADPH or NADH acts as co‐substrate. New Phytologist, 202, 911–919. doi:10.1111/nph.12701
  • Gliszczyńska-Świgło, A. (2007). Folates as antioxidants. Food Chemistry, 101, 1480–1483. doi:10.1016/j.foodchem.2006.04.022
  • Golldack, D., Li, C., Mohan, H., & Probst, N. (2014). Tolerance to drought and salt stress in plants: Unraveling the signaling networks. Frontiers in Plant Science, 5, 151. doi:10.3389/fpls.2014.00151
  • Gorelova, V., Ambach, L., Rébeillé, F., Stove, C., & Van Der Straeten, D. (2017). Folates in plants: Research advances and progress in crop biofortification. Frontiers in Chemistry, 5, 21. doi:10.3389/fchem.2017.00021
  • Hamilton, P.B., Van Slyke, D.D., & Lemish, S. (1943). The gasometric determination of free amino acids in blood filtrates by the ninhydrin-carbon dioxide method. Journal of Biological Chemistry, 150, 231–250.
  • Hayat, S., Hayat, Q., Alyemeni, M.N., Wani, A.S., Pichtel, J., & Ahmad, A. (2012). Role of proline under changing environments: A review. Plant Signaling & Behavior, 7, 1456–1466. doi:10.4161/psb.21949
  • Heath, R.L., & Packer, L. (1968). Photoperoxidation in isolated chloroplasts: I. Kinetics and stoichiometry of fatty acid peroxidation. Archives of Biochemistry and Biophysics, 125, 189–198. doi:10.1016/0003-9861(68)90654-1
  • Huang, G.-T., Ma, S.-L., Bai, L.-P., Zhang, L., Ma, H., Jia, P., … Guo, Z.-F. (2012). Signal transduction during cold, salt, and drought stresses in plants. Molecular Biology Reports, 39, 969–987. doi:10.1007/s11033-011-0823-1
  • Ibrahim, M., & Ibrahim, H.A. (2016). Assessment of selenium role in promoting or inhibiting potato plants under water stress. Journal of Horticultural Science & Ornamental Plants, 8, 125–139.
  • Ibrahim, M.F.M., Abd-El-Gawad, H.G., & Bondok, A. (2015a). Physiological impacts of potassium citrate and folic acid on growth, yield and some viral diseases of potato plants. Middle East Journal of Agriculture Research, 4, 577–589.
  • Ibrahim, M.F.M., Bondok, A.M., Al-Senosy, N.K., & Younis, R.A. (2015b). Stimulation some of defense mechanisms in tomato plants under water deficit and Tobacco mosaic virus (TMV). World Journal of Agricultural Sciences, 11, 289–302.
  • Jabrin, S., Ravanel, S., Gambonnet, B., Douce, R., & Rébeillé, F. (2003). One-carbon metabolism in plants. Regulation of tetrahydrofolate synthesis during germination and seedling development. Plant Physiology, 131, 1431–1439. doi:10.1104/pp.016915
  • Jiang, C., Cui, Q., Feng, K., Xu, D., Li, C., & Zheng, Q. (2016). Melatonin improves antioxidant capacity and ion homeostasis and enhances salt tolerance in maize seedlings. Acta Physiologiae Plantarum, 38, 82. doi:10.1007/s11738-016-2101-2
  • Khan, S.H., Ahmad, N., Ahmad, F., & Kumar, R. (2010). Naturally occurring organic osmolytes: From cell physiology to disease prevention. IUBMB Life, 62, 891–895. doi:10.1002/iub.406
  • Kilic, S., & Aca, H.T. (2016). Role of exogenous folic acid in alleviation of morphological and anatomical inhibition on salinity-induced stress in barley. Italian Journal of Agronomy, 11, 246–251. doi:10.4081/ija.2016.777
  • Kishor, P.K., Sangam, S., Amrutha, R., Laxmi, P.S., Naidu, K., Rao, K., … Sreenivasulu, N. (2005). Regulation of proline biosynthesis, degradation, uptake and transport in higher plants: Its implications in plant growth and abiotic stress tolerance. Current Science, 88, 424–438.
  • Koller, H. (1972). Leaf area-leaf weight relationships in the soybean canopy 1. Crop Science, 12, 180–183. doi:10.2135/cropsci1972.0011183X001200020007x
  • Kuromori, T., Mizoi, J., Umezawa, T., Yamaguchi-Shinozaki, K., & Shinozaki, K. (2014). Drought stress signaling network. In: S.H. Howell (Ed.), Molecular biology (pp. 383–409). New York: Springer New York.
  • Kushwah, N., Jain, V., & Yadav, D. (2020). Osmolytes: A possible therapeutic molecule for ameliorating the neurodegeneration caused by protein misfolding and aggregation. Biomolecules, 10, 132. doi:10.3390/biom10010132
  • Lee, B.R., Jin, Y.L., Jung, W.J., Avice, J.C., Morvan‐Bertrand, A., Ourry, A., … Kim, T.H. (2008). Water‐deficit accumulates sugars by starch degradation—not by de novo synthesis—in white clover leaves (Trifolium repens). Physiologia Plantarum, 134, 403–411. doi:10.1111/j.1399-3054.2008.01156.x
  • Liu, C., Liu, Y., Guo, K., Fan, D., Li, G., Zheng, Y., … Yang, R. (2011). Effect of drought on pigments, osmotic adjustment and antioxidant enzymes in six woody plant species in karst habitats of southwestern China. Environmental and Experimental Botany, 71, 174–183. doi:10.1016/j.envexpbot.2010.11.012
  • Liu, Q., Luo, L., & Zheng, L. (2018). Lignins: Biosynthesis and biological functions in plants. International Journal of Molecular Sciences, 19, 335. doi:10.3390/ijms19020335
  • Mattioni, C., Lacerenza, N., Troccoli, A., De Leonardis, A., & Di Fonzo, N. (1997). Water and salt stress‐induced alterations in proline metabolism of Triticum durum seedlings. Physiologia Plantarum, 101, 787–792. doi:10.1111/j.1399-3054.1997.tb01064.x
  • Minocha, R., Majumdar, R., & Minocha, S.C. (2014). Polyamines and abiotic stress in plants: A complex relationship1. Frontiers in Plant Science, 5, 175. doi:10.3389/fpls.2014.00175
  • Mohamed, N.E.M. (2013). Behaviour of wheat cv. Masr-1 plants to foliar application of some vitamins. Natural Science, 11, 1–5.
  • Morales, M., & Munné-Bosch, S. (2019). Malondialdehyde: Facts and artifacts. Plant Physiology, 180, 1246. doi:10.1104/pp.19.00405
  • Mundree, S.G., Baker, B., Mowla, S., Peters, S., Marais, S., Vander Willigen, C., … Farrant, J.M. (2002). Physiological and molecular insights into drought tolerance. African Journal of Biotechnology, 1, 28–38. doi:10.5897/AJB2002.000-006
  • Muñoz, P., Briones, M., & Munné-Bosch, S. (2018). Photoinhibition and photoprotection during flower opening in lilies. Plant Science, 272, 220–229. doi:10.1016/j.plantsci.2018.04.023
  • Navarrete, O., Van Daele, J., Stove, C., Lambert, W., Storozhenko, S., & Van Der Straeten, D. (2013). Isolation and characterisation of an antifolate insensitive (afi1) mutant of Arabidopsis thaliana. Plant Biology, 15, 37–44. doi:10.1111/j.1438-8677.2012.00602.x
  • Neilson, K.A., Mariani, M., & Haynes, P.A. (2011). Quantitative proteomic analysis of cold‐responsive proteins in rice. Proteomics, 11, 1696–1706. doi:10.1002/pmic.201000727
  • Pandey, H.C., Baig, M., Chandra, A., & Bhatt, R. (2010). Drought stress induced changes in lipid peroxidation and antioxidant system in genus Avena. Journal of Environmental Biology, 31 (4): 435-440.
  • Parveen, S., Rana, S., & Fangueiro, R. (2017). Macro-and nanodimensional plant fiber reinforcements for cementitious composites. In: Sustainable and nonconventional construction materials using inorganic bonded fiber composites (pp. 343–382). Elsevier.
  • Pavlović, I., Petřík, I., Tarkowská, D., Lepeduš, H., Vujčić Bok, V., Radić Brkanac, S., … Salopek-Sondi, B. (2018). Correlations between phytohormones and drought tolerance in selected Brassica crops: Chinese cabbage, white cabbage and kale. International Journal of Molecular Sciences, 19, 2866. doi:10.3390/ijms19102866
  • Powell, J.J., Fitzgerald, T.L., Stiller, J., Berkman, P.J., Gardiner, D.M., Manners, J.M., … Kazan, K. (2017). The defence‐associated transcriptome of hexaploid wheat displays homoeolog expression and induction bias. Plant Biotechnology Journal, 15, 533–543. doi:10.1111/pbi.12651
  • Raeisi, J., Pakkish, Z., & Saffari, V.R. (2017). Efficiency of folic acid in improving yield and fruit quality of strawberry. Journal of Plant Physiology & Breeding, 7, 15–25.
  • Rai, S., & Mudgal, V. (1988). Synergistic effect of sodium hydroxide and steam pressure treatment on composition changes and fibre utilization of wheat straw. Biological Wastes, 24, 105–113. doi:10.1016/0269-7483(88)90053-5
  • Rajasheker, G., Jawahar, G., Jalaja, N., Kumar, S.A., Kumari, P.H., Punita, D.L., … Sreenivasulu, N. (2019). Role and regulation of osmolytes and ABA interaction in salt and drought stress tolerance. In Plant signaling molecules (pp. 417–436). Elsevier.
  • Saleh, S., Liu, G., Liu, M., Ji, Y., He, H., & Gruda, N. (2018). Effect of irrigation on growth, yield, and chemical composition of two green bean cultivars. Horticulturae, 4, 3. doi:10.3390/horticulturae4010003
  • Sanchez-Reinoso, A.D., Ligarreto-Moreno, G.A., & Restrepo-Díaz, H. (2018). Physiological and biochemical responses of common bush bean to drought. Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 46, 393–401. doi:10.15835/nbha46210965
  • SAS. (1988). SAS/STAT user’s guide: Release 6.03 ed. Cary,NC.: Author.
  • Schmid-Siegert, E., Loscos, J., & Farmer, E.E. (2012). Inducible malondialdehyde pools in zones of cell proliferation and developing tissues in Arabidopsis. Journal of Biological Chemistry, 287, 8954–8962. doi:10.1074/jbc.M111.322842
  • Schuppler, U., He, P.H., John, P.C., & Munns, R. (1998). Effect of water stress on cell division and cell-division-cycle 2-like cell-cycle kinase activity in wheat leaves. Plant Physiology, 117, 667–678. doi:10.1104/pp.117.2.667
  • Silva, A.J., Magalhães Filho, J.R., Sales, C.R., Pires, R.C., & Machado, E. (2018). Source-sink relationships in two soybean cultivars with indeterminate growth under water deficit. Bragantia, 77, 23–35. doi:10.1590/1678-4499.2017010
  • Singh, A., Kumar, J., & Kumar, P. (2008). Effects of plant growth regulators and sucrose on post harvest physiology, membrane stability and vase life of cut spikes of gladiolus. Plant Growth Regulation, 55, 221. doi:10.1007/s10725-008-9278-3
  • Sircelj, H., Batic, F., & Stampar, F. (1999). Effects of drought stress on pigment, ascorbic acid and free amino acids content in leaves of two apple tree cultivars. PHYTON-HORN, 39, 97–100.
  • Smirnoff, N., & Arnaud, D. (2019). Hydrogen peroxide metabolism and functions in plants. New Phytologist, 221, 1197–1214. doi:10.1111/nph.15488
  • Sperdouli, I., & Moustakas, M. (2012). Interaction of proline, sugars, and anthocyanins during photosynthetic acclimation of Arabidopsis thaliana to drought stress. Journal of Plant Physiology, 169, 577–585. doi:10.1016/j.jplph.2011.12.015
  • Stakhova, L., Stakhov, L., & Ladygin, V. (2000). Effects of exogenous folic acid on the yield and amino acid content of the seed of Pisum sativum L. and Hordeum vulgare L. Applied Biochemistry and Microbiology, 36, 85–89. doi:10.1007/BF02738142
  • Storozhenko, S., Navarrete, O., Ravanel, S., De Brouwer, V., Chaerle, P., Zhang, G.-F., … Van Der Straeten, D. (2007). Cytosolic hydroxymethyldihydropterin pyrophosphokinase/dihydropteroate synthase from arabidopsis thaliana a specific role in early development and stress response. Journal of Biological Chemistry, 282, 10749–10761. doi:10.1074/jbc.M701158200
  • Szabados, L., & Savoure, A. (2010). Proline: A multifunctional amino acid. Trends in Plant Science, 15, 89–97. doi:10.1016/j.tplants.2009.11.009
  • Trouvelot, S., Héloir, M.-C., Poinssot, B., Gauthier, A., Paris, F., Guillier, C., … Adrian, M. (2014). Carbohydrates in plant immunity and plant protection: Roles and potential application as foliar sprays. Frontiers in Plant Science, 5, 592. doi:10.3389/fpls.2014.00592
  • Trovato, M., Mattioli, R., & Costantino, P. (2008). Multiple roles of proline in plant stress tolerance and development. Rendiconti Lincei, 19, 325–346. doi:10.1007/s12210-008-0022-8
  • Ünyayar, S., Keleþ, Y., & Ünal, E. (2004). Proline and ABA levels in two sunflower genotypes subjected to water stress. Bulgarian Journal of Plant Physiology. Citeseer. 30 (3-4):34-47.
  • Vance, N.C., & Zaerr, J.B. (1990). Analysis by high-performance liquid chromatography of free amino acids extracted from needles of drought-stressed and shaded Pinus ponderosa seedlings. Physiologia Plantarum, 79, 23–30. doi:10.1111/j.1399-3054.1990.tb05861.x
  • Walaa, A., Shatlah, M., Atteia, M., & Sror, H. (2010). Selenium induces antioxidant defensive enzymes and promotes tolerance against salinity stress in cucumber seedlings (Cucumis sativus). Arabian University of Journal Agriculture Science, 18, 65–76.
  • Wani, A., Faraz, A., Faizan, M., Ahmad, A., Hayat, S., & Tahir, I. (2017). Foliar spray of proline enhanced the photosynthetic efficiency and antioxidant system in brassica juncea. Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 45, 112–119. doi:10.15835/nbha45110375
  • Xu, J., Zhou, Y., Xu, Z., Chen, Z., & Duan, L. (2020a). Combining physiological and metabolomic analysis to unravel the regulations of coronatine alleviating water stress in tobacco (Nicotiana tabacum L.). Biomolecules, 10, 99. doi:10.3390/biom10010099
  • Xu, Q., Ma, X., Lv, T., Bai, M., Wang, Z., & Niu, J. (2020b). Effects of water stress on fluorescence parameters and photosynthetic characteristics of drip irrigation in rice. Water, 12, 289. doi:10.3390/w12010289

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