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Articles

Effect of hypobaric treatment on the quality and reactive oxygen species metabolism of blueberry fruit at storage

Efecto del tratamiento hipobárico en la calidad y el metabolismo de las especies reactivas de oxígeno de los arándanos durante el almacenamiento

, , , , & ORCID Icon
Pages 937-948 | Received 18 Jun 2019, Accepted 19 Sep 2019, Published online: 05 Nov 2019

References

  • An, D. S., Park, E., & Dong, S. L. (2009). Effect of hypobaric packaging on respiration and quality of strawberry and curled lettuce. Postharvest Biology & Technology, 52(1), 78–83. doi:10.1016/j.postharvbio.2008.09.014
  • Arts, M. J. T. J., Dallinga, J. S., Voss, H.-P., Haenen, G. R. M. M., & Bast, A. (2003). A critical appraisal of the use of the antioxidant capacity (TEAC) assay in defining optimal antioxidant structures. Food Chemistry, 80(3), 409–414. doi:10.1016/S0308-8146(02)00468-5
  • Avellar, I. G. J. D., Magalhães, M. M. M., Silva, A. B., Souza, L. L., Leitão, A. C., & Hermes-Lima, M. (2004). Reevaluating the role of 1,10-phenanthroline in oxidative reactions involving ferrous ions and DNA damage. BBA - General Subjects, 1675(1), 46–53. doi:10.1016/j.bbagen.2004.08.006
  • Benzie, I. F. F., & Strain, J. J. (1996). The ferric reducing ability of plasma (FRAP) as a measure of “antioxidant power”: The frap assay. Analytical Biochemistry, 239(1), 70–76. doi:10.1006/abio.1996.0292
  • Blois, M. S. (1958). Antioxidant determinations by the use of a stable free radical. Nature, 181(4617), 1199–1200. doi:10.1038/1811199a0
  • Brennan, T., & Frenkel, C. (1977). Involvement of hydrogen peroxide in the regulation of senescence in pear. Plant Physiology, 59(3), 411–416. doi:10.1104/pp.59.3.411
  • Celik, F., Bozhuyuk, M. R., Ercisli, S., & Gundogdu, M. (2018). Physicochemical and bioactive characteristics of wild grown bilberry (Vaccinium myrtillus L.) genotypes from northeastern Turkey. Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 46(1), 128–133. doi:10.15835/nbha46110842
  • Chang, W. C., Kim, S. C., Hwang, S. S., Choi, B. K., Ahn, H. J., Min, Y. L., … Kim, S. K. (2002). Antioxidant activity and free radical scavenging capacity between Korean medicinal plants and flavonoids by assay-guided comparison. Plant Science, 163(6), 1161–1168. doi:10.1016/S0168-9452(02)00332-1
  • Chen, H. J., Yang, H. L., Gao, H. Y., Long, J., Tao, F., Fang, X. J., & Jiang, Y. M. (2013). Effect of hypobaric storage on quality, antioxidant enzyme and antioxidant capability of the Chinese bayberry fruits. Chemistry Central Journal, 7(1), 4. doi:10.1186/1752-153X-7-4
  • Chen, H. Y., Ling, J. G., Wu, F. H., Zhang, L. J., Sun, Z. D., & Yang, H. Q. (2013). Effect of hypobaric storage on flesh lignification, active oxygen metabolism and related enzyme activities in bamboo shoots. LWT - Food Science and Technology, 51(1), 190–195. doi:10.1016/j.lwt.2012.09.031
  • Colak, A. M., Kupe, M., Bozhuyuk, M. R., Ercisli, S., & Gundogdu, M. (2018). Identification of some fruit characteristics in wild bilberry (Vaccinium myrtillus L.) accessions from eastern Anatolia. Gesunde Pflanzen, 70(1), 31–38. doi:10.1007/s10343-017-0410-z
  • Delong, J. M., Prange, R. K., Bishop, C., Harrison, P. A., & Ryan, D. A. J. (2003). The influence of 1-MCP on shelf-life quality of highbush blueberry. Hortscience, 38(3), 417–418. doi:10.21273/HORTSCI.38.3.417
  • Docampo, R., & Moreno, S. N. J. (2017). 17 - Biochemistry of Trypanosoma cruzi. In J. Telleria & M. Tibayrenc (Eds.), American Trypanosomiasis chagas disease (2nd ed., pp. 371–400). London: Elsevier.
  • Florence, T. M. (1984). The production of hydroxyl radical from hydrogen peroxide. Journal of Inorganic Biochemistry, 22(4), 221–230. doi:10.1016/0162-0134(84)85007-2
  • Fukai, T., & Ushiofukai, M. (2011). Superoxide dismutases: Role in redox signaling, vascular function, and diseases. Antioxidants & Redox Signaling, 15(6), 1583–1606. doi:10.1089/ars.2011.3999
  • Gao, H. Y., Chen, H. J., Chen, W. X., Yang, J. T., Song, L. L., Jiang, Y. M., & Zheng, Y. H. (2006). Effect of hypobaric storage on physiological and quality attributes of loquat fruit at low temperature. Acta Horticulturae, 712(1), 269. doi:10.17660/ActaHortic.2006.712.29
  • Giannopolitis, C. N., & Ries, S. K. (1977). Superoxide dismutases. Ciba Foundation Symposium, 79(10), 61–97.
  • Gulcin, I., Huyut, Z., Elmastas, M., & Aboulenein, H. Y. (2010). Radical scavenging and antioxidant activity of tannic acid. Arabian Journal of Chemistry, 3(1), 43–53. doi:10.1016/j.arabjc.2009.12.008
  • Hashmi, M. S., East, A. R., Palmer, J. S., & Heyes, J. A. (2013). Pre-storage hypobaric treatments delay fungal decay of strawberries. Postharvest Biology and Technology, 77, 75–79. doi:10.1016/j.postharvbio.2012.11.008
  • Helland, I. S. (1990). Partial least squares regression and statistical models. Scandinavian Journal of Statistics, 17(2), 97–114.
  • Hua, Z. Y., Wang, C. Y., Wang, S. Y., & Wei, Z. (2003). Effect of high-oxygen atmospheres on blueberry phenolics, anthocyanins, and antioxidant capacity. Journal of Agricultural and Food Chemistry, 51(24), 7162–7169. doi:10.1021/jf030440k
  • Jara-Palacios, M. J., Santisteban, A., Gordillo, B., Hernanz, D., Heredia, F. J., & Escudero-Gilete, M. L. (2019). Comparative study of red berry pomaces (blueberry, red raspberry, red currant and blackberry) as source of antioxidants and pigments. European Food Research and Technology, 245(1), 1–9. doi:10.1007/s00217-018-3135-z
  • Jia, Z. S., Tang, M. C., & Wu, J. M. (1999). The determination of flavonoid contents in mulberry and their scavenging effects on superoxide radicals. Food Chemistry, 64(4), 555–559. doi:10.1016/S0308-8146(98)00102-2
  • Jiang, A. L., Tian, S. P., & Xu, Y. (2002). Effects of controlled atmospheres with high-O2 or high-CO2 concentrations on postharvest physiology and storability of “Napoleon” sweet cherry. Bulletin of Botany, 44(8), 925–930.
  • Jimenez, A., Hernandez, J. A., Del Rio, L. A., & Sevilla, F. (1997). Evidence for the presence of the ascorbate-glutathione cycle in mitochondria and peroxisomes of pea leaves. Plant Physiology, 114(1), 275–284. doi:10.1104/pp.114.1.275
  • Kader, F., Irmouli, M., Nicolas, J. P., & Metche, M. (2002). Involvement of blueberry peroxidase in the mechanisms of anthocyanin degradation in blueberry juice. Journal of Food Science, 67(3), 910–915. doi:10.1111/jfds.2002.67.issue-3
  • Kalt, W., McDonald, J. E., & Donner, H. (2000). Anthocyanins, phenolics, and antioxidant capacity of processed lowbush blueberry products. Journal of Food Science, 65(3), 390–393. doi:10.1111/jfds.2000.65.issue-3
  • Kazan, A., Sevimli-Gur, C., Yesil-Celiktas, O., & Dunford, N. T. (2017). In vitro tumor suppression properties of blueberry extracts in liquid and encapsulated forms. European Food Research and Technology, 243(6), 1057–1063. doi:10.1007/s00217-016-2819-5
  • Kou, X. H., Wu, J. Y., Wang, Y., Chen, Q., Xue, Z. H., Bai, Y., & Zhou, F. J. (2016). Effects of hypobaric treatments on the quality, bioactive compounds, and antioxidant activity of tomato. Journal of Food Science, 81(7), H1816–1824. doi:10.1111/1750-3841.13360
  • Li, H., Fan, Y., Zhi, H., Zhu, Y., Liu, Y., & Wang, Y. (2019). Influence of fruit stalk on reactive oxygen species metabolism and quality maintenance of peach fruit under chilling injury condition. Postharvest Biology and Technology, 148, 141–150. doi:10.1016/j.postharvbio.2018.10.018
  • Li, J., Bao, X. L., Xu, Y. C., Zhang, M., Cai, Q. W., Li, L. P., & Wang, Y. S. (2017). Hypobaric storage reduced core browning of Yali pear fruits. Scientia Horticulturae, 225, 547–552. doi:10.1016/j.scienta.2017.07.031
  • Li, Y. C., Li, B. X., & Geng, L. J. (2011). Hypolipidemic and antioxidant effects of total flavonoids from blueberry leaves. European Food Research and Technology, 233(6), 897–903. doi:10.1007/s00217-011-1572-z
  • Lobos, G. A., Callow, P., & Hancock, J. F. (2014). The effect of delaying harvest date on fruit quality and storage of late highbush blueberry cultivars (Vaccinium corymbosum L.). Postharvest Biology and Technology, 87, 133–139. doi:10.1016/j.postharvbio.2013.08.001
  • Matthes, A., & Schmitzeiberger, M. (2009). Polyphenol content and antioxidant capacity of apple fruit: Effect of cultivar and storage conditions. Journal of Applied Botany and Food Quality, 82(2), 152–157.
  • Nicolas, J., Billaud, C., Philippon, J., & Rouet-Mayer, M. A. (2003). Browning | Enzymatic – Biochemical aspects. In B. Caballero (Ed.), Encyclopedia of food sciences and nutrition (2nd ed., pp. 678–686). San Diego, CA: Academic Press.
  • Norberto, S., Silva, S., Meireles, M., Faria, A., Pintado, M., & Calhau, C. (2013). Blueberry anthocyanins in health promotion: A metabolic overview. Journal of Functional Foods, 5(4), 1518–1528. doi:10.1016/j.jff.2013.08.015
  • Obando-Ulloa, J. M., Moreno, E., García-Mas, J., Nicolai, B., Lammertyn, J., Monforte, A. J., & Fernández-Trujillo, J. P. (2008). Climacteric or non-climacteric behavior in melon fruit. Postharvest Biology and Technology, 49(1), 27–37. doi:10.1016/j.postharvbio.2007.11.004
  • Ozyigit, I. I., Filiz, E., Vatansever, R., Kurtoglu, K. Y., Koc, I., Ozturk, M., & Anjum, N. A. (2016). Identification and comparative analysis of H2O2-scavenging enzymes (ascorbate peroxidase and glutathione peroxidase) in selected plants employing bioinformatics approaches. Frontiers in Plant Science, 7(p), 301. doi:10.3389/fpls.2016.00301
  • Prior, R. L., Cao, G., Martin, A., Sofic, E., McEwen, J., O’Brien, C., … Krewer, G. (1998). Antioxidant capacity as influenced by total phenolic and anthocyanin content, maturity, and variety of vaccinium species. Journal of Agricultural and Food Chemistry, 46(7), 2686–2693. doi:10.1021/jf980145d
  • Qi, W., Su, N. N., Zhang, X. Y., Liu, Y. Y., Jin, C., & Liang, Y. C. (2016). Hydrogen peroxide, nitric oxide and UV RESISTANCE LOCUS8 interact to mediate UV-B-induced anthocyanin biosynthesis in radish sprouts. Scientific Report, 6, 29164. doi:10.1038/srep29164
  • Shulaev, V., & Oliver, D. J. (2006). Metabolic and proteomic markers for oxidative stress. New Tools for Reactive Oxygen Species Research. Plant Physiology, 141(2), 367–372.
  • Singleton, V. L., & Rossi, J. A. (1965). Colorimetry of total phenolics with phosphomolybdic-phosphotungstic acid reagents. American Journal of Enology and Viticulture, 16(3), 144–158.
  • Srivastava, A., Akoh, C. C., Yi, W., Fischer, J., & Krewer, G. (2007). Effect of storage conditions on the biological activity of phenolic compounds of blueberry extract packed in glass bottles. Journal of Agricultural and Food Chemistry, 55(7), 2705–2713. doi:10.1021/jf062914w
  • Tovar, B., Montalvo, E., Damián, B. M., García, H. S., & Mata, M. (2011). Application of vacuum and exogenous ethylene on Ataulfo mango ripening. LWT - Food Science and Technology, 44(10), 2040–2046. doi:10.1016/j.lwt.2011.06.005
  • Wang, C., & Meng, X. J. (2016). Effect of 60Co γ-irradiation on storage quality and cell wall ultra-structure of blueberry fruit during cold storage. Innovative Food Science and Emerging Technologies, 38, 91–97. doi:10.1016/j.ifset.2016.09.010
  • Wang, J. H., You, Y. L., Chen, W. X., Xu, Q. Q., Wang, J., Liu, Y. K., … Wu, J. S. (2015). Optimal hypobaric treatment delays ripening of honey peach fruit via increasing endogenous energy status and enhancing antioxidant defence systems during storage. Postharvest Biology and Technology, 101, 1–9. doi:10.1016/j.postharvbio.2014.11.004
  • Wang, S. Y., & Chen, C.-T. (2010). Effect of allyl isothiocyanate on antioxidant enzyme activities, flavonoids and post-harvest fruit quality of blueberries (Vaccinium corymbosum L., cv. Duke). Food Chemistry, 122(4), 1153–1158. doi:10.1016/j.foodchem.2010.03.106
  • Wang, S. Y., Chen, C. T., & Wang, C. Y. (2009). The influence of light and maturity on fruit quality and flavonoid content of red raspberries. Food Chemistry, 112(3), 676–684. doi:10.1016/j.foodchem.2008.06.032
  • Wang, Y. S., & Tian, S. P. (2008). Interaction between Cryptococcus laurentii, Monilinia fructicola,and sweet cherry fruit at different temperatures. Agricultural Sciences in China, 7(1), 48–57. doi:10.1016/S1671-2927(08)60021-8
  • Wang, Y. S., Tian, S. P., & Xu, Y. (2005). Effects of high oxygen concentration on pro- and anti-oxidant enzymes in peach fruits during postharvest periods. Food Chemistry, 91(1), 99–104. doi:10.1016/j.foodchem.2004.05.053
  • Wang, Y. S., Tian, S. P., Xu, Y., Qin, G. Z., & Yao, H. J. (2004). Changes in the activities of pro- and anti-oxidant enzymes in peach fruit inoculated with Cryptococcus laurentii or Penicillium expansum at 0 or 20°C. Postharvest Biology and Technology, 34(1), 21–28. doi:10.1016/j.postharvbio.2004.04.003
  • Wang, Z. Y., & Dilley, D. R. (2000). Hypobaric storage removes scald-related volatiles during the low temperature induction of superficial scald of apples. Postharvest Biology and Technology, 18(3), 191–199. doi:10.1016/S0925-5214(99)00080-0
  • Yamasaki, H., Sakihama, Y., & Ikehara, N. (1997). Flavonoid-peroxidase reaction as a detoxification mechanism of plant cells against H2O2. Plant Physiology, 115(4), 1405–1412. doi:10.1104/pp.115.4.1405
  • Yang, T. B., & Poovaiah, B. W. (2002). Hydrogen peroxide homeostasis: Activation of plant catalase by calcium/calmodulin. Proceedings of the National Academy of Sciences of the United States of America, 99(6), 4097–4102. doi:10.1073/pnas.052564899
  • Zhang, Z. Q., Pang, X. Q., Xuewu, D., Ji, Z. L., & Jiang, Y. M. (2005). Role of peroxidase in anthocyanin degradation in litchi fruit pericarp. Food Chemistry, 90, 47–52. doi:10.1016/j.foodchem.2004.03.023
  • Zheng, H., Jiang, L. L., Lou, H. Q., Hu, Y., Kong, X. C., & Lu, H. F. (2011). Application of artificial neural network (ANN) and partial least-squares regression (PLSR) to predict the changes of anthocyanins, ascorbic acid, total phenols, flavonoids, and antioxidant activity during storage of red bayberry juice based on fractal analysis and red, green, and blue (rgb) intensity values. Journal of Agricultural and Food Chemistry, 59(2), 592–600. doi:10.1021/jf1032476