Research Article
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Year 2021, Volume: 27 Issue: 4, 460 - 468, 04.12.2021
https://doi.org/10.15832/ankutbd.702758

Abstract

References

  • Akan S, Gunes N. T & Yanmaz R (2019). Methyl jasmonate and low temperature can help for keeping some physicochemical quality parameters in garlic (Allium sativum L.) cloves. Food chemistry 270: 546-553.
  • Alp Y & Kabay T (2019). The Effect of Drought Stress on Antioxidative Enzyme and Nutrient Exchange in Some Tomato Genotypes. Turkish Journal of Agricultural and Natural Sciences 6 (1): 71-77. DOI: 10.30910/turkjans.515352.
  • Asghari M, Hasanlooe A.R (2015). Methyl jasmonate effectively enhanced some defense enzymes activity and Total Antioxidant content in harvested “Sabrosa” strawberry fruit. Food Sci. Nutr.
  • Aviram M, Volkova N, Coleman R, Dreher M, Reddy M. K, Ferreira D (2008). Pomegranate phenolics from the peels, arils, and flowers are antiatherogenic: Studies in vivo in atherosclerotic apolipoprotein E-deficient (E0) mice and in vitro in cultured macrophages and lipoproteins. Journal of Agricultural and Food Chemistry 56: 1148–1157.
  • Bagcı G (2010). Identification of Drought-induced Oxidative Stress in Chickpea with Physiological and Biochemical Parameters. Ph.D. Thesis, Ankara University Faculty of Science, (unpublished), 403 p.
  • Beattie J, Crozier A & Duthie G. G (2005). Potential health benefits of berries. Current Nutrition and Food Science 1(1), 71–86.
  • Cao S, Zheng Y, Wang K, Jin Rui P H (2009). Methyl jasmonate reduces chilling injury and enhances antioxidant enzyme activity in postharvest loquat fruit. Food Chem. 115, 1458–1463.
  • Cao S, Zheng Y, Wang K, Rui H, Tang S (2009). Effect of methyl jasmonate on cell wall modification of loquat fruit in relation to chilling injury after harvest. Food Chemistry 118: 641–647 (2009).
  • Casado F. J, Sanche A. H, Beato V. M, De Castro A & Montano A (2014). Effect of sulfites and sorbates on the preservation and color of pickled blanched garlic under different storage conditions. Journal of Food Processing and Preservation 38, 905–911.
  • Cavusoglu Ş. (2018). Effects of Modified Atmosphere and Methyl Jasmonate Treatments on The Postharvest Quality and Storage Life of Agaricus bisporus. The Journal of Fungus 9 (2) 206-218.
  • Chanjirakul K, Wang S. Y, Wang C. Y & Siriphanich J (2006). Effect of natural volatile compounds on antioxidant capacity and antioxidant enzymes inraspberries. Postharvest Biology and Technology 40: 106–115.
  • Chanjirakul K, Wang S.Y, Wang C.Y & Siriphanich, J (2007). Natural volatile treatments increase free-radical scavenging capacity of strawberries and blackberries. J. Sci. Food Agric. 87, 1463–1472.
  • Duan J.J, Li J, Guo S & Kang Y (2008). Exogenous spermidine affects polyamine metabolism in salinity-stressed Cucumis sativus roots and enhances short-term salinity. J. Plant Physiol. 165, 1620–1635.
  • Eksi A & Akdag E (2007). Türkiye’de meyve suyu üretimi ve tüketimi 2006. 4 Mevsim Meyve Suyu, 5, 2–4.
  • Fan L, Wang Q, Lv J, Gao L, Zuo J & Shi J (2016a). Amelioration of postharvest chilling injury in cowpea (Vigna sinensis) by methyl jasmonate (MeJA) treatments. Scientia horticulturae 203, 95-101. Fan L, Shi J, Zuo J, Gao L, Lv J & Wang Q (2016b). Methyl jasmonate delays postharvest ripening and senescence in the non-climacteric eggplant (Solanum melongena L.) fruit. Postharvest Biology and Technology 120, 76-83.
  • FAOSTAT (2017). Food and Agriculture Organization of the United Nations.
  • Ferretti G, Bacchetti T, Belleggia A & Neri D (2010). Cherry antioxidants: From farm to table. Molecules 15(10), 6993–7005.
  • Gill S & Tuteja N (2010). Reactive oxygen species and antioxidant machinery in abiotic stress tolerance in crop plants. Plant Physiol. Biochem. 48, 909–930 .
  • Greer D. H (2005). Non-destructive chlorophyll fluorescence and colour measurements of ‘Braeburn’ and ‘Royal Gala’ apple (Malus domestica) fruit development throughout the growing season. New Zeal J Crop Hortic Sci, 33: 413-421.
  • Groppa M.D & Benavides M.P (2008). Polyamines and abiotic stress: recent advance. Amino Acids 34, 35–45.
  • Guillén F, Díaz-Mula H.M, Zapata P.J, Valero D, Serrano M, Castillo S & MartínezRomero D (2013). Aloe arborescens and Aloe vera gels as coatings in delaying postharvest ripening in peach and plum fruit. Postharvest Biol. Technol. 83, 54– 57.
  • Jebara S, Jebara M, Limam F & Aouani M. E (2005). Changes in ascorbate peroxidase, catalase, guaiacol peroxidase and superoxide dismutase activities in common bean (Phaseolus vulgaris) nodules under salt stress. Journal of Plant Physiology 162(8): 929-936.
  • Jin P, Zhen, Y, Tang S, Rui H & Wang C.Y (2009). A combination of hot air and methyl jasmonate vapor treatment alleviates chilling injury of peach fruit. Postharvest Biol. Technol. 52, 24–29.
  • Jin P, Zhu H, Wang J, Chen J, Wang X & Zheng Y (2012). Effect of methyl jasmonate on energy metabolism in peach fruit during chilling stress. Society of Chemical Industry 10: 1002-5973.
  • Karuppanapandian T, Moon J.C, Kim C, Manoharan K & Kim W (2011). Reactive oxygen species in plants: their generation, signal transduction, and scavenging mechanisms. Aust. J. Crop. Sci. 5: 709–725.
  • Kim D. O, Heo H. J, Kim Y. J, Yang H. S & Lee C. Y (2005). Sweet and sour cherry phenolics and their protective effects on neuronal cells. Journal of Agricultural and Food Chemistry 53(26): 9921–9927.
  • Kirakosyan A, Seymour E. M, Llanes D. E. U, Kaufman P. B & Bolling S. F (2009). Chemical profile and antioxidant capacities of tart cherry products. Food Chemistry 115(1): 20-25.
  • Lalel H. J. D, Singh Z & Ta, S. C (2003). The role of methyl jasmonate in mango ripening and biosynthesis of aroma volatile compounds. The Journal of Horticultural Science and Biotechnology 78(4): 470-484.
  • Lončarić A, Pichler A, Trtinjak I, Piližota V & Kopjar M (2016). Phenolics and antioxidant activity of freeze-dried sour cherry puree with addition of disaccharides. LWT-Food Science and Technology 73: 391–396
  • Martínez-Espláa A, Zapataa P.J, Castilloa S, Guilléna F, Martínez-Romeroa D, Valeroa D & Serranob M (2014). Preharvest application of methyl jasmonate (MeJA) in two plumcultivars. 1. Improvement of fruit growth and quality attributes at harvest. Postharvest Biology and Technology 98: 98–105.
  • Meng D. M, Zhang Y. X, Yang R, Wang J, Zhang X. H, Sheng J. P & Fan Z. C (2017). Arginase participates in the methyl jasmonate-regulated quality maintenance of postharvest Agaricus bisporus fruit bodies. Postharvest Biology and Technology 132: 7-14.
  • Mertens-Talcott S. U, Jilma-Stohlawetz P, Ríos J, Hingorani L & Derendorf H (2006). Absorption, metabolism and antioxidant effects of pomegranate (Punica granatum L.) polyphenols after ingestion. Journal of Agricultural and Food Chemistry 54 :8956–8961.
  • Nakano Y & Asada K (1981) Hydrogen peroxide in spinach chloroplasts. Plant Cell Physiology 22: 860-867. Ozturk A, Yildiz K, Ozturk B, Karakaya O, Gun S, Uzun S & Gundogdu M (2019). Maintaining postharvest quality of medlar (Mespilus germanica) fruit using modified atmosphere packaging and methyl jasmonate. LWT 111:117-124.
  • Ozturk B, Kucuker E, Saracoglu O, Yıldız K & Ozkan Y (2013). Effect of Plant Growth Regulators on Fruit Quality and Biochemical Content of ‘0900 Ziraat’ Sweet Cherry Cultivar. Journal of Tekirdag Agricultural Faculty 10: 82-89.
  • Piccolella, S., Fiorentino, A., Pacifico, S., D’Abrosca, B., Uzzo, P., & Monaco, P. (2008). Antioxidant properties of sour cherries (Prunus cerasus L): Role of colorless phytochemicals from the methanolic extract of ripe fruits. Journal of Agricultural and Food Chemistry 56(6): 1928–1935.
  • Rider J.E, Hacker A, Mackintosh C.A, Pegg A.E, Woster P.M & Casero Jr R.A (2007). Spermine and spermidine mediate protection against oxidative damage caused by hydrogen peroxide. Amino Acids 33: 231–240
  • Rudell D. R, Fellmann J. K & Mattheis J. P (2005). Preharvest application of methyl jasmonate to ‘Fuji’ apples enhances red coloration and affects fruit size, splitting, and bitter pit incidence. Hortscience, 40: 1760–1762.
  • Rudell D. R & Mattheis J. P (2008). Synergism exists between ethylene and methyl jasmonate in artificial light-induced pigment enhancement of ‘Fuji’ apple fruit peel. Postharvest Biol Technol 47: 136–140.
  • Wang S. Y & Zheng W (2005). Preharvest application of methyl jasmonate increases fruit quality and antioxidant capacity in raspberries. International Journal of Food Science and Technology 40: 187–195.
  • Wang S. Y, Bowman L & Ding M (2008). Methyl jasmonate enhances antioxidant activity and flavonoid content in blackberries (Rubus spp.) and promotes antiproliferation of human cancer cells. Food Chemistry 107:1261–1269.
  • Wang S. Y & Zheng W (2005). Preharvest application of methyl jasmonate increases fruit quality and antioxidant capacity in raspberries. International Journal of Food Science and Technology 40: 187–195.
  • Xie Z.X, Duan L.S, Tian X.L, Wang B.M, Eneji A.E & Li Z.H (2008). Coronatinealleviates salinity stress in cotton by improving the antioxidative defense system and radical-scavenging activity. J. Plant Physiol. 165: 375–384.
  • Yarılgaç T, Kadim H. & Ozturk B (2019). Role of maturity stages and modified atmosphere packaging on the quality attributes of cornelian cherry fruits (Cornus mas L.) throughout shelf life. Journal of the Science of Food and Agriculture 99: 421–428.
  • Zapata P. J, Martínez-Esplá A, Guillén F, Díaz-Mula H. M, Martínez-Romero D, Serrano M & Valero D (2014). Preharvest application of methyl jasmonate (MeJA) in two plum cultivars. 2. Improvement of fruit quality and antioxidant systems during postharvest storage. Postharvest Biology and Technology 98, 115-122.
  • Zhou Y.H, Yu J.Q, Mao W.H, Huang L.F, Song X.S & Nogués S (2006). Genotypic variation of Rubisco expression, photosynthetic electron flow and antioxidant metabolism in the chloroplasts of chill-exposed cucumber plants. Plant Cell Physiol. 47: 192–199.
  • Ziosi V, Bregoli A, Fregola F & Costa G (2008).Torrigiani, P, Jasmonate-Induced ripening delay is associated with up-regulation of polyamine levels in peach fruit. J. Plant Physiol. 166, 938–946.

Effect of Methyl Jasmonate Treatments on Fruit Quality and Antioxidant Enzyme Activities of Sour Cherry (Prunus cerasus L.) During Cold Storage

Year 2021, Volume: 27 Issue: 4, 460 - 468, 04.12.2021
https://doi.org/10.15832/ankutbd.702758

Abstract

The study was carried out to investigate the effect of methyl jasmonate (MeJA) treatments (0.5 and 1.0 mM MeJA) on quality characteristics such as weight loss, respiration rate, ethylene production, color, total phenolic content (TPC), total antioxidant capacity (TAC) and antioxidant enzyme activities of sour cherry fruit (Prunus cerasus L. cv. ‘Kütahya’) during cold storage. Fruit were stored at 0±1 °C and 90±5% RH for 36 days. The results indicated that MeJA treatments showed higher levels of total phenolic content, total antioxidant capacity and quality and were also effective on superoxide dismutase (SOD), catalase (CAT), ascorbate peroxidase (APX), malondialdehyde (MDA), ethylene production and respiration rate. In conclusion, 0.5 mM MeJA treatment showed the best maintaining of fruit quality among the concentrations of MeJA. It can be suggested that sour cherry could be stored successfully for 36 days at 0 °C following treatment of MeJA.

References

  • Akan S, Gunes N. T & Yanmaz R (2019). Methyl jasmonate and low temperature can help for keeping some physicochemical quality parameters in garlic (Allium sativum L.) cloves. Food chemistry 270: 546-553.
  • Alp Y & Kabay T (2019). The Effect of Drought Stress on Antioxidative Enzyme and Nutrient Exchange in Some Tomato Genotypes. Turkish Journal of Agricultural and Natural Sciences 6 (1): 71-77. DOI: 10.30910/turkjans.515352.
  • Asghari M, Hasanlooe A.R (2015). Methyl jasmonate effectively enhanced some defense enzymes activity and Total Antioxidant content in harvested “Sabrosa” strawberry fruit. Food Sci. Nutr.
  • Aviram M, Volkova N, Coleman R, Dreher M, Reddy M. K, Ferreira D (2008). Pomegranate phenolics from the peels, arils, and flowers are antiatherogenic: Studies in vivo in atherosclerotic apolipoprotein E-deficient (E0) mice and in vitro in cultured macrophages and lipoproteins. Journal of Agricultural and Food Chemistry 56: 1148–1157.
  • Bagcı G (2010). Identification of Drought-induced Oxidative Stress in Chickpea with Physiological and Biochemical Parameters. Ph.D. Thesis, Ankara University Faculty of Science, (unpublished), 403 p.
  • Beattie J, Crozier A & Duthie G. G (2005). Potential health benefits of berries. Current Nutrition and Food Science 1(1), 71–86.
  • Cao S, Zheng Y, Wang K, Jin Rui P H (2009). Methyl jasmonate reduces chilling injury and enhances antioxidant enzyme activity in postharvest loquat fruit. Food Chem. 115, 1458–1463.
  • Cao S, Zheng Y, Wang K, Rui H, Tang S (2009). Effect of methyl jasmonate on cell wall modification of loquat fruit in relation to chilling injury after harvest. Food Chemistry 118: 641–647 (2009).
  • Casado F. J, Sanche A. H, Beato V. M, De Castro A & Montano A (2014). Effect of sulfites and sorbates on the preservation and color of pickled blanched garlic under different storage conditions. Journal of Food Processing and Preservation 38, 905–911.
  • Cavusoglu Ş. (2018). Effects of Modified Atmosphere and Methyl Jasmonate Treatments on The Postharvest Quality and Storage Life of Agaricus bisporus. The Journal of Fungus 9 (2) 206-218.
  • Chanjirakul K, Wang S. Y, Wang C. Y & Siriphanich J (2006). Effect of natural volatile compounds on antioxidant capacity and antioxidant enzymes inraspberries. Postharvest Biology and Technology 40: 106–115.
  • Chanjirakul K, Wang S.Y, Wang C.Y & Siriphanich, J (2007). Natural volatile treatments increase free-radical scavenging capacity of strawberries and blackberries. J. Sci. Food Agric. 87, 1463–1472.
  • Duan J.J, Li J, Guo S & Kang Y (2008). Exogenous spermidine affects polyamine metabolism in salinity-stressed Cucumis sativus roots and enhances short-term salinity. J. Plant Physiol. 165, 1620–1635.
  • Eksi A & Akdag E (2007). Türkiye’de meyve suyu üretimi ve tüketimi 2006. 4 Mevsim Meyve Suyu, 5, 2–4.
  • Fan L, Wang Q, Lv J, Gao L, Zuo J & Shi J (2016a). Amelioration of postharvest chilling injury in cowpea (Vigna sinensis) by methyl jasmonate (MeJA) treatments. Scientia horticulturae 203, 95-101. Fan L, Shi J, Zuo J, Gao L, Lv J & Wang Q (2016b). Methyl jasmonate delays postharvest ripening and senescence in the non-climacteric eggplant (Solanum melongena L.) fruit. Postharvest Biology and Technology 120, 76-83.
  • FAOSTAT (2017). Food and Agriculture Organization of the United Nations.
  • Ferretti G, Bacchetti T, Belleggia A & Neri D (2010). Cherry antioxidants: From farm to table. Molecules 15(10), 6993–7005.
  • Gill S & Tuteja N (2010). Reactive oxygen species and antioxidant machinery in abiotic stress tolerance in crop plants. Plant Physiol. Biochem. 48, 909–930 .
  • Greer D. H (2005). Non-destructive chlorophyll fluorescence and colour measurements of ‘Braeburn’ and ‘Royal Gala’ apple (Malus domestica) fruit development throughout the growing season. New Zeal J Crop Hortic Sci, 33: 413-421.
  • Groppa M.D & Benavides M.P (2008). Polyamines and abiotic stress: recent advance. Amino Acids 34, 35–45.
  • Guillén F, Díaz-Mula H.M, Zapata P.J, Valero D, Serrano M, Castillo S & MartínezRomero D (2013). Aloe arborescens and Aloe vera gels as coatings in delaying postharvest ripening in peach and plum fruit. Postharvest Biol. Technol. 83, 54– 57.
  • Jebara S, Jebara M, Limam F & Aouani M. E (2005). Changes in ascorbate peroxidase, catalase, guaiacol peroxidase and superoxide dismutase activities in common bean (Phaseolus vulgaris) nodules under salt stress. Journal of Plant Physiology 162(8): 929-936.
  • Jin P, Zhen, Y, Tang S, Rui H & Wang C.Y (2009). A combination of hot air and methyl jasmonate vapor treatment alleviates chilling injury of peach fruit. Postharvest Biol. Technol. 52, 24–29.
  • Jin P, Zhu H, Wang J, Chen J, Wang X & Zheng Y (2012). Effect of methyl jasmonate on energy metabolism in peach fruit during chilling stress. Society of Chemical Industry 10: 1002-5973.
  • Karuppanapandian T, Moon J.C, Kim C, Manoharan K & Kim W (2011). Reactive oxygen species in plants: their generation, signal transduction, and scavenging mechanisms. Aust. J. Crop. Sci. 5: 709–725.
  • Kim D. O, Heo H. J, Kim Y. J, Yang H. S & Lee C. Y (2005). Sweet and sour cherry phenolics and their protective effects on neuronal cells. Journal of Agricultural and Food Chemistry 53(26): 9921–9927.
  • Kirakosyan A, Seymour E. M, Llanes D. E. U, Kaufman P. B & Bolling S. F (2009). Chemical profile and antioxidant capacities of tart cherry products. Food Chemistry 115(1): 20-25.
  • Lalel H. J. D, Singh Z & Ta, S. C (2003). The role of methyl jasmonate in mango ripening and biosynthesis of aroma volatile compounds. The Journal of Horticultural Science and Biotechnology 78(4): 470-484.
  • Lončarić A, Pichler A, Trtinjak I, Piližota V & Kopjar M (2016). Phenolics and antioxidant activity of freeze-dried sour cherry puree with addition of disaccharides. LWT-Food Science and Technology 73: 391–396
  • Martínez-Espláa A, Zapataa P.J, Castilloa S, Guilléna F, Martínez-Romeroa D, Valeroa D & Serranob M (2014). Preharvest application of methyl jasmonate (MeJA) in two plumcultivars. 1. Improvement of fruit growth and quality attributes at harvest. Postharvest Biology and Technology 98: 98–105.
  • Meng D. M, Zhang Y. X, Yang R, Wang J, Zhang X. H, Sheng J. P & Fan Z. C (2017). Arginase participates in the methyl jasmonate-regulated quality maintenance of postharvest Agaricus bisporus fruit bodies. Postharvest Biology and Technology 132: 7-14.
  • Mertens-Talcott S. U, Jilma-Stohlawetz P, Ríos J, Hingorani L & Derendorf H (2006). Absorption, metabolism and antioxidant effects of pomegranate (Punica granatum L.) polyphenols after ingestion. Journal of Agricultural and Food Chemistry 54 :8956–8961.
  • Nakano Y & Asada K (1981) Hydrogen peroxide in spinach chloroplasts. Plant Cell Physiology 22: 860-867. Ozturk A, Yildiz K, Ozturk B, Karakaya O, Gun S, Uzun S & Gundogdu M (2019). Maintaining postharvest quality of medlar (Mespilus germanica) fruit using modified atmosphere packaging and methyl jasmonate. LWT 111:117-124.
  • Ozturk B, Kucuker E, Saracoglu O, Yıldız K & Ozkan Y (2013). Effect of Plant Growth Regulators on Fruit Quality and Biochemical Content of ‘0900 Ziraat’ Sweet Cherry Cultivar. Journal of Tekirdag Agricultural Faculty 10: 82-89.
  • Piccolella, S., Fiorentino, A., Pacifico, S., D’Abrosca, B., Uzzo, P., & Monaco, P. (2008). Antioxidant properties of sour cherries (Prunus cerasus L): Role of colorless phytochemicals from the methanolic extract of ripe fruits. Journal of Agricultural and Food Chemistry 56(6): 1928–1935.
  • Rider J.E, Hacker A, Mackintosh C.A, Pegg A.E, Woster P.M & Casero Jr R.A (2007). Spermine and spermidine mediate protection against oxidative damage caused by hydrogen peroxide. Amino Acids 33: 231–240
  • Rudell D. R, Fellmann J. K & Mattheis J. P (2005). Preharvest application of methyl jasmonate to ‘Fuji’ apples enhances red coloration and affects fruit size, splitting, and bitter pit incidence. Hortscience, 40: 1760–1762.
  • Rudell D. R & Mattheis J. P (2008). Synergism exists between ethylene and methyl jasmonate in artificial light-induced pigment enhancement of ‘Fuji’ apple fruit peel. Postharvest Biol Technol 47: 136–140.
  • Wang S. Y & Zheng W (2005). Preharvest application of methyl jasmonate increases fruit quality and antioxidant capacity in raspberries. International Journal of Food Science and Technology 40: 187–195.
  • Wang S. Y, Bowman L & Ding M (2008). Methyl jasmonate enhances antioxidant activity and flavonoid content in blackberries (Rubus spp.) and promotes antiproliferation of human cancer cells. Food Chemistry 107:1261–1269.
  • Wang S. Y & Zheng W (2005). Preharvest application of methyl jasmonate increases fruit quality and antioxidant capacity in raspberries. International Journal of Food Science and Technology 40: 187–195.
  • Xie Z.X, Duan L.S, Tian X.L, Wang B.M, Eneji A.E & Li Z.H (2008). Coronatinealleviates salinity stress in cotton by improving the antioxidative defense system and radical-scavenging activity. J. Plant Physiol. 165: 375–384.
  • Yarılgaç T, Kadim H. & Ozturk B (2019). Role of maturity stages and modified atmosphere packaging on the quality attributes of cornelian cherry fruits (Cornus mas L.) throughout shelf life. Journal of the Science of Food and Agriculture 99: 421–428.
  • Zapata P. J, Martínez-Esplá A, Guillén F, Díaz-Mula H. M, Martínez-Romero D, Serrano M & Valero D (2014). Preharvest application of methyl jasmonate (MeJA) in two plum cultivars. 2. Improvement of fruit quality and antioxidant systems during postharvest storage. Postharvest Biology and Technology 98, 115-122.
  • Zhou Y.H, Yu J.Q, Mao W.H, Huang L.F, Song X.S & Nogués S (2006). Genotypic variation of Rubisco expression, photosynthetic electron flow and antioxidant metabolism in the chloroplasts of chill-exposed cucumber plants. Plant Cell Physiol. 47: 192–199.
  • Ziosi V, Bregoli A, Fregola F & Costa G (2008).Torrigiani, P, Jasmonate-Induced ripening delay is associated with up-regulation of polyamine levels in peach fruit. J. Plant Physiol. 166, 938–946.
There are 46 citations in total.

Details

Primary Language English
Journal Section Makaleler
Authors

Şeyda Çavuşoğlu 0000-0001-8797-6687

Nurettin Yılmaz 0000-0003-0655-5165

Fırat İşlek 0000-0003-3157-3680

Publication Date December 4, 2021
Submission Date March 12, 2020
Acceptance Date June 18, 2020
Published in Issue Year 2021 Volume: 27 Issue: 4

Cite

APA Çavuşoğlu, Ş., Yılmaz, N., & İşlek, F. (2021). Effect of Methyl Jasmonate Treatments on Fruit Quality and Antioxidant Enzyme Activities of Sour Cherry (Prunus cerasus L.) During Cold Storage. Journal of Agricultural Sciences, 27(4), 460-468. https://doi.org/10.15832/ankutbd.702758

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