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Effects of preharvest salicylic acid and oxalic acid treatments on blackberry (cv. Bursa 1) fruit quality

Year 2025, Volume: 12 Issue: 2, 235 - 247

Abstract

The aim of the current study was to determine how the pre-harvest different dosages of oxalic acid (OA) and salicylic acid (SA) affect the quality of blackberry (cv. Bursa 1) fruits at harvest. Thus, blackberry plants were sprayed with solutions containing 0.5 mM SA, 1 mM SA, 2.5 mM OA, and 5 mM OA seven and fourteen days to before the commercial maturity of fruits. Some characteristics of these fruits were investigated, including their biochemistry (phenolic compounds, organic acids, and general phytochemical characteristics), pomology (fruit width, fruit length, and fruit weight), and physiology (respiration). Regarding the results, the application of SA and OA increased fruit size and fruit weight by up to 40% and 23%, respectively, while leading to a reduction in soluble solid content by up to 7%. However, the organic acids and phenolic compounds with antioxidant impact were unaffected by this decline and were found to increase, especially with OA application. The control group's respiration rate was the highest among the harvested fruits, and the treatments lowered it by 30%. Consequently, the pre-harvest application of oxalic acid or salicylic acid could enhance the quality characteristics of blackberry fruit.

References

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Effects of preharvest salicylic acid and oxalic acid treatments on blackberry (cv. Bursa 1) fruit quality

Year 2025, Volume: 12 Issue: 2, 235 - 247

Abstract

The aim of the current study was to determine how the pre-harvest different dosages of oxalic acid (OA) and salicylic acid (SA) affect the quality of blackberry (cv. Bursa 1) fruits at harvest. Thus, blackberry plants were sprayed with solutions containing 0.5 mM SA, 1 mM SA, 2.5 mM OA, and 5 mM OA seven and fourteen days to before the commercial maturity of fruits. Some characteristics of these fruits were investigated, including their biochemistry (phenolic compounds, organic acids, and general phytochemical characteristics), pomology (fruit width, fruit length, and fruit weight), and physiology (respiration). Regarding the results, the application of SA and OA increased fruit size and fruit weight by up to 40% and 23%, respectively, while leading to a reduction in soluble solid content by up to 7%. However, the organic acids and phenolic compounds with antioxidant impact were unaffected by this decline and were found to increase, especially with OA application. The control group's respiration rate was the highest among the harvested fruits, and the treatments lowered it by 30%. Consequently, the pre-harvest application of oxalic acid or salicylic acid could enhance the quality characteristics of blackberry fruit.

Ethical Statement

Çalışma için etik beyana gerek duyulmamaktadır.

References

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  • Aglar, E., Sumbul, A., Karakaya, O., Erturk, O., & Ozturk, B. (2021). Biochemical properties and antimicrobial and antioxidant activity of blackberry growing naturally in Kelkit Valley. Journal of Postharvest Technology, 9(3), 127-135.
  • Ansarifar, E. (2019). Effect of postharvest application of salicylic acid, oxalic acid and nitric oxide on improving qualitative properties and extending the shelf life of fresh apricot fruit cv. ‘Sharoudi’. Journal of Food Science and Technology (Iran), 16(92), 177-189.
  • Bal, E. (2019). Effects of alginate edible coating enriched with salicylic and oxalic acid on preserving plum fruit (Prunus salicina L. cv. ‘Black amber’) quality during post-harvest storage. Acta Sci. Pol. Hortorum Cultus, 18, 35-46. https://doi.org/10.24326/asphc.2019.4.4
  • Batool, M., Bashir, O., Amin, T., Wani, S.M., Masoodi, F.A., Jan, N., ... Gul, A. (2022). Effect of oxalic acid and salicylic acid treatments on the post-harvest life of temperate grown apricot varieties (Prunus armeniaca) during controlled atmosphere storage. Food Science and Technology International, 28(7), 557-569. https://doi.org/10.1177/10820132211032074
  • Brizzolara, S., Manganaris, G.A., Fotopoulos, V., Watkins, C.B., & Tonutti, P. (2020). Primary metabolism in fresh fruits during storage. Frontiers in Plant Science, 11, 80. https://doi.org/10.3389/fpls.2020.00080
  • Chang, C., Yang, M., Wen, H., & Chern, J. (2002). Estimation of total flavonoid content in propolis by two complementary colorimetric methods Journal of Food and Drug Analysis, 10, 178-182. https://doi.org/10.38212/2224-6614.2748
  • Çolak, A.M., Alan, F., Mertoğlu, K., & Bulduk, I. (2022). Morphological, biochemical, and bioactive characterization of naturally grownEuropean cranberrybush genotypes. Turkish Journal of Agriculture and Forestry, 46(2), 204-213. https://doi.org/10.55730/1300-011X.2971
  • Dixon, R.A., & Paiva, N.L. (1995). Stress-induced phenylpropanoid metabolism. The Plant Cell, 7(7), 1085.
  • Düzgüneş, O., Kesici, T., Kavuncu O., & Gürbüz, F. (1987). Araştırma ve Deneme Metodları (İstatistik Metodları II) [Research and Experiment Methods (Statistical Methods II)]. Ankara University, Agriculture Faculty Publications: 1021 Textbook (In Turkish).
  • El-Zaeddi, H., Calín-Sánchez, Á., Nowicka, P., Martínez-Tomé, J., Noguera-Artiaga, L., Burló, F., ... Carbonell-Barrachina, Á.A. (2017). Preharvest treatments with malic, oxalic, and acetylsalicylic acids affect the phenolic composition and antioxidant capacity of coriander, dill and parsley. Food Chemistry, 226, 179 186. https://doi.org/10.1016/j.foodchem.2017.01.067
  • Eskimez, İ., Polat, M., Korkmaz, N., & Mertoğlu, K. (2019). Investigation of some blackberry cultivars in terms of phenological, yield and fruit characteristics. International Journal of Agriculture Forestry and Life Sciences, 3(2), 233-238.
  • FAO (2022) Statistical database. https://www.fao.org/faostat/en/#data/QCL
  • Finn, C.E., & Clark, J.R. (2012). Blackberry. Fruit Breeding, 151-190.
  • Fu, H.X., Zhang, L.L., He, B., Yue, P.X., & Gao, X.L. (2015). Analysis of organic acids in blueberry juice and its fermented wine by high performance liquid chromatography. Advance Journal of Food Science and Technology, 9(2), 127–134.
  • Funt, R.C. (2017). Blackberry farm management and economics. In Blackberries and their hybrids (pp. 294-307). CABI.
  • Gacnik, S., Veberic, R., Marinovic, S., Halbwirth, H., & Mikulic-Petkovsek, M. (2021). Effect of pre-harvest treatments with salicylic and methyl salicylic acid on the chemical profile and activity of some phenylpropanoid pathway related enzymes in apple leaves. Scientia Horticulturae, 277, 109794. https://doi.org/10.1016/j.scienta.2020.109794
  • Garcia-Pastor, M.E., Zapata, P.J., Castillo, S., Martínez-Romero, D., Valero, D., Serrano, M., & Guillén, F. (2020). Preharvest salicylate treatments enhance antioxidant compounds, color and crop yield in low pigmented-table grape cultivars and preserve quality traits during storage. Antioxidants, 9(9), 832. https://doi.org/10.3390/antiox9090832
  • Gimenez, M.J., Valverde, J.M., Valero, D., Guillén, F., Martínez-Romero, D., Serrano, M., & Castillo, S. (2014). Quality and antioxidant properties on sweet cherries as affected by preharvest salicylic and acetylsalicylic acids treatments. Food Chemistry, 160, 226-232. https://doi.org/10.1016/j.foodchem.2014.03.107
  • Hayat, S., Ahmad, A., & Alyemeni, M.N. (2013). Salicylic acid. Berlin, Germany: Springer Science & Business Media.
  • Hazarika, T.K., & Marak, T. (2022). Salicylic acid and oxalic acid in enhancing the quality and extending the shelf life of grape cv. Thompson seedless. Food Science and Technology International, 28(6), 463-475. https://doi.org/10.1177/10820132211020612
  • Huang, H., Jing, G., Guo, L., Zhang, D., Yang, B., Duan, X., & Jiang, Y. (2013). Effect of oxalic acid on ripening attributes of banana fruit during storage. Postharvest Biology and Technology, 84, 22-27. https://doi.org/10.1016/j.postharvbio.2013.04.002
  • Jackson, M.L. (1962). Interlayering of expansible layer silicates in soils by chemical weathering. Clays and Clay Minerals, 11(1), 29-46.
  • Kafkas, E., Koşar, M., Türemiş, N., & Başer, K.H.C. (2006). Analysis of sugars, organic acids and vitamin C contents of blackberry genotypes from Turkey. Food chemistry, 97(4), 732-736. https://doi.org/10.1016/j.foodchem.2005.09.023
  • Kant, K., Arora, A., Singh, V.P., & Kumar, R. (2013). Effect of exogenous application of salicylic acid and oxalic acid on post harvest shelf-life of tomato (Solanum lycopersicon L.). Indian Journal of Plant Physiology, 18(1), 15-21.
  • Karaçalı, İ. 2012. Bahçe Ürünlerinin Muhafaza ve Pazarlanması [Storage and Marketing of Horticultural Products]. Ege University Faculty of Agriculture Publications, No: 494 (In Turkish).
  • King, A.J., Burke, L.M., Halson, S.L., & Hawley, J.A. (2020). The challenge of maintaining metabolic health during a global pandemic. Sports Medicine, 50(7), 1233-1241. https://doi.org/10.1007/s40279-020-01295-8
  • Kumar, N., Tokas, J., Raghavendra, M., & Singal, H.R. (2021). Impact of exogenous salicylic acid treatment on the cell wall metabolism and ripening process in postharvest tomato fruit stored at ambient temperature. International Journal of Food Science & Technology, 56(6), 2961-2972. https://doi.org/10.1111/ijfs.14936
  • Liao, T., Zhou, L., Liu, J., Zou, L., Dai, T., & Liu, W. (2021). Inhibitory mechanism of salicylic acid on polyphenol oxidase: A cooperation between acidification and binding effects. Food Chemistry, 348, 129100. https://doi.org/10.1016/j.foodchem.2021.129100
  • Lola-Luz, T., Hennequart, F., & Gaffney, M. (2014). Effect on yield, total phenolic, total flavonoid and total isothiocyanate content of two broccoli cultivars (Brassica oleraceae var italica) following the application of a commercial brown seaweed extract (Ascophyllum nodosum). Agricultural and Food Science, 23(1), 28-37. https://doi.org/10.23986/afsci.8832
  • Martinez-Camacho, J.E., Guevara-González, R.G., Rico-García, E., Tovar-Pérez, E.G., & Torres-Pacheco, I. (2022). Delayed senescence and marketability index preservation of blackberry fruit by preharvest application of chitosan and salicylic acid. Frontiers in Plant Science, 13, 796393. https://doi.org/10.3389/fpls.2022.796393
  • Martínez‐Esplá, A., Serrano, M., Martínez‐Romero, D., Valero, D., & Zapata, P.J. (2019). Oxalic acid preharvest treatment increases antioxidant systems and improves plum quality at harvest and during postharvest storage. Journal of the Science of Food and Agriculture, 99(1), 235-243. https://doi.org/10.1002/jsfa.9165
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There are 57 citations in total.

Details

Primary Language English
Subjects Plant Biochemistry
Journal Section Articles
Authors

Kerem Mertoğlu 0000-0002-0490-9073

İlknur Eskimez 0000-0003-4443-505X

Derya Erbaş 0000-0001-5675-3907

Mehmet Polat 0000-0002-2415-4229

İbrahim Bulduk 0000-0001-6172-7738

Early Pub Date March 19, 2025
Publication Date
Submission Date February 21, 2024
Acceptance Date June 11, 2024
Published in Issue Year 2025 Volume: 12 Issue: 2

Cite

APA Mertoğlu, K., Eskimez, İ., Erbaş, D., Polat, M., et al. (2025). Effects of preharvest salicylic acid and oxalic acid treatments on blackberry (cv. Bursa 1) fruit quality. International Journal of Secondary Metabolite, 12(2), 235-247.
International Journal of Secondary Metabolite

e-ISSN: 2148-6905