LIU Yuan, XIAO Guangjian, CHEN Fei, et al. Effects of Blanching Methods on Microstructure, Enzymatic Browning and Related Quality of Peach[J]. Science and Technology of Food Industry, 2021, 42(20): 183−190. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2021030121.
Citation: LIU Yuan, XIAO Guangjian, CHEN Fei, et al. Effects of Blanching Methods on Microstructure, Enzymatic Browning and Related Quality of Peach[J]. Science and Technology of Food Industry, 2021, 42(20): 183−190. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2021030121.

Effects of Blanching Methods on Microstructure, Enzymatic Browning and Related Quality of Peach

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  • Received Date: March 09, 2021
  • Available Online: August 18, 2021
  • In this study, hot water and steam blanching were used to pretreat peach. The effects of two blanching treatments on microstructure, enzymatic browning and related qualities of peach were studied for determining the suitable blanching condition. The results showed that the effects of two treatments on peach were similar with the increase of blanching time (0~80 s) in general, the surface microstructure collapsed, PPO and POD inactivated, texture declined, the browning degree and VC content decreased, total phenol content and antioxidant activity increased. Correlation and cluster analysis showed that PPO, POD, hardness, browning degree and VC were extremely significant correlated. And the total phenol, DPPH· scavenging capacity and FRAP were extremely significantly correlated. The changes in physicochemical quality of hot water and steam blanching for 40 s were similar, and showed a high correlation. The quality changes of hot water and steam blanching for 60 s and 80 s were highly correlated. Overall, steam blanching maintained the better quality of peach compared with hot water treatment. When blanching for 80 s, steam blanching could effectively inactivate PPO and POD and maintain preferable tissue structure, and it showed better color quality and higher VC content than those of hot water treatment. Hence, steam blanching for 80 s was the best blanching condition for preserved peach processing.
  • [1]
    毕金峰, 吕健, 刘璇, 等. 国内外桃加工科技与产业现状及展望[J]. 食品科学技术学报,2019,37(5):7−15. [Bi J F, Lü J, Liu X, et al. Research on techniques and industry situation and prospect for peach processing in domestic and aboard[J]. Journal of Food Science and Technology,2019,37(5):7−15. doi: 10.3969/j.issn.2095-6002.2019.05.002
    [2]
    Huan C, An X J, Yu M L, et al. Effect of combined heat and 1-MCP treatment on the quality and antioxidant level of peach fruit during storage[J]. Postharvest Biology and Technology,2018,145:193−202. doi: 10.1016/j.postharvbio.2018.07.013
    [3]
    Koukounaras A, Diamantidis G, Sfakiotakis E. The effect of heat treatment on quality retention of fresh-cut peach[J]. Postharvest Biology and Technology,2008,48:30−36. doi: 10.1016/j.postharvbio.2007.09.011
    [4]
    Radzki W, Ziaja-soltys M, Nowak J, et al. Impact of processing on polysaccharides obtained from button mushroom (Agaricus bisporus)[J]. International Journal of Food Science and Technology,2019,54(4):1405−1412. doi: 10.1111/ijfs.14084
    [5]
    陈惠, 唐明霞, 宋居易, 等. 烫漂对蚕豆感官品质及过氧化物酶活性的影响[J]. 江苏农业学报,2015,31(3):708−710. [Chen H, Tang M X, Song J Y, et al. Effect of blanching on sensory properties and activity of peroxidase in broad beans[J]. Jiangsu Journal of Agricultural Sciences,2015,31(3):708−710. doi: 10.3969/j.issn.1000-4440.2015.03.038
    [6]
    余翔, 苗修港, 张贝贝, 等. 热烫处理对南瓜叶化学成分及色泽的影响[J]. 食品科学,2016,37(7):44−49. [Yü X, Miao X G, Zhang B B, et al. Effect of blanching on chemical composition and color of pumpkin leaves[J]. Food Science,2016,37(7):44−49. doi: 10.7506/spkx1002-6630-201607009
    [7]
    许文文, 曹霞敏, 廖小军. 热烫方式对草莓内源酶与主要品质影响的研究[J]. 中国食物与营养,2011,17(8):25−32. [Xü W W, Cao X M, Liao X J. Effects of various blanching treatments on endogenous enzymes and main qualities of strawberry[J]. Food and Nutrition in China,2011,17(8):25−32. doi: 10.3969/j.issn.1006-9577.2011.08.008
    [8]
    Daniel M, Melvin H, Bernard L O. Comparative study of steam and hot water blanching[J]. Journal of Food Science,2010,9(2):148−153.
    [9]
    王丽娟, 宋思圆, 刘东红. 基于品质模型的黄桃去皮工艺优化及应用[J]. 中国食品学报,2018,18(7):158−163. [Wang L J, Song S Y, Liu D H. Optimization and application of peeling process of yellow peaches based on quality model[J]. Journal of Chinese Institute of Food Science and Technology,2018,18(7):158−163.
    [10]
    Techakanon C, Smith G M, Jernstedt J, et al. The effect of high pressure processing on clingstone and freestone peach cell integrity and enzymatic browning reactions[J]. Innovative Food Science and Emerging Technologies,2017,39:230−240. doi: 10.1016/j.ifset.2016.12.011
    [11]
    Lopes A M, Toralles R P, Rombaldi C V. Thermal inactivation of polyphenoloxidase and peroxidase in jubileu clingstone peach and yeast isolated from its spoiled puree[J]. Food Science and Technology,2014,34(1):156.
    [12]
    吕健, 于笑颜, 毕金峰, 等. 汤汁特性对罐藏黄桃贮藏期质构品质的影响[J]. 食品科学,2021,42(13):208−214. [Lü J, Yü X Y, Bi J F, et al. Effects of syrup characteristics on texture of canned yellow peach during storage[J]. Food Science,2021,42(13):208−214. doi: 10.7506/spkx1002-6630-20200715-202
    [13]
    Hernández Y, Lobo M G, González M. Determination of vitamin C in tropical fruits: a comparative evaluation of methods[J]. Food Chemistry,2006,96(4):654−664. doi: 10.1016/j.foodchem.2005.04.012
    [14]
    Liu H, Jiang W B, Cao J K, et al. Evaluation of antioxidant properties of extractable and nonextractable polyphenols in peel and flesh tissue of different peach varieties[J]. Journal of Food Processing and Preservation,2018,42(6):1−9.
    [15]
    Mokrani A, Madani K. Effect of solvent, time and temperature on the extraction of phenolic compounds and antioxidant capacity of peach (Prunus persica L.) fruit[J]. Separation and Purification Technology,2016,162:68−76. doi: 10.1016/j.seppur.2016.01.043
    [16]
    王海鸥, 扶庆权, 陈守江, 等. 预处理方式对真空冷冻干燥苹果片品质的影响[J]. 食品与机械,2018,34(11):126−130. [Wang H O, Fu Q Q, Chen S J, et al. Effect of different pretreatment methods on the quality of freeze-dried apple slices[J]. Food and Machinery,2018,34(11):126−130.
    [17]
    Zid M B, Dhuique-mayer C, Bellagha S, et al. Effects of blanching on flavanones and microstructure of Citrus aurantium peels[J]. Food and Bioprocess Technology,2015,8(11):2246−2255. doi: 10.1007/s11947-015-1573-1
    [18]
    Singh B, Suri K, Shevkani K, et al. Enzymatic browning of fruit and vegetables: A review[J]. Enzymes in Food Technology,2018:63−78.
    [19]
    李彦丽, 丁胜华, 高炜, 等. 热烫方式对百合褐变内源酶及微观结构的影响[J]. 食品科学,2018,39(17):53−60. [Li Y L, Ding S H, Gao W, et al. Effect of blanching method on endogenous browning-related enzymes and microstructure of lily bulb[J]. Food Science,2018,39(17):53−60. doi: 10.7506/spkx1002-6630-201817009
    [20]
    Kamble H A, Gatade A A, Sahoo A K, et al. Effect of blanching treatment on antioxidant activity and color values of sugarcane juice[J]. Materials Today: Proceedings,2021. doi: 10.1016/j.matpr.2021.03.706
    [21]
    Lee B, Seo J D, Rhee J K, et al. Heated apple juice supplemented with onion has greatly improved nutritional quality and browning index[J]. Food Chemistry,2016,201:315−319. doi: 10.1016/j.foodchem.2016.01.092
    [22]
    Cheema S, Sommerhalter M. Characterization of polyphenol oxidase activity in Ataulfo mango[J]. Food Chemistry,2015,171:382−387. doi: 10.1016/j.foodchem.2014.09.011
    [23]
    Zhang X L, Shao X F. Characterisation of polyphenol oxidase and peroxidase and the role in browning of loquat fruit[J]. Czech Journal of Food Sciences,2015,33(2):109−117.
    [24]
    Nguyen T V L, Vo T T, Lam T D, et al. Water blanching conditions on the quality of green asparagus butt segment (Asparagus officinalis L.)[J]. Materials Today: Proceedings,2019,18(pt7):4799−4809.
    [25]
    温馨, 胡锐, 赵金红, 等. 不同烫漂方式结合CaCl2预处理对哈密瓜品质的影响[J]. 农业机械学报,2014,45(10):231−237. [Wen X, Hu R, Zhao J H, et al. Effects of different blanching ways combined with CaCl2 treatment on quality of hami melon[J]. Transactions of the Chinese Society for Agricultural Machinery,2014,45(10):231−237. doi: 10.6041/j.issn.1000-1298.2014.10.036
    [26]
    Chinda C, Imaizumi T, Tanaka F, et al. Effects of hot-water blanching on the biological and physicochemical properties of sweet potato slices[J]. Engineering in Agriculture,2018,11:19−24.
    [27]
    张中义, 张攀攀, 张品峰. 高温发酵和蒸汽处理对大蒜抗氧化能力的影响[J]. 食品工业科技,2014,35(13):53−56. [Zhang Z Y, Zhang P P, Zhang P F. Effect of high temperature fermentation and steam treatment on the antioxidant activity of garlic[J]. Science and Technology of Food Industry,2014,35(13):53−56.
    [28]
    陈学红. 加工工艺对绿芦笋汁品质和抗氧化活性的影响[D]. 南京: 南京农业大学, 2012.

    Chen X H. Effect of processing technologies on quality and antioxidant activity of green asparagus juice[D]. Nanjing: Nanjing Agriculture University, 2012.
    [29]
    郑平, 张俊, 陆胜民. 温州蜜柑热烫过程中营养成分和感官品质变化的研究[J]. 食品工业科技,2014,35(03):81−85, 88. [Zeng P, Zhang J, Lu S M. Study on the variation of nutrient contents and sensory values in Satsuma mandarin during blanching process[J]. Science and Technology of Food Industry,2014,35(03):81−85, 88.
    [30]
    左力旭, 刘常金, 毕金峰, 等. 处理方式对西藏光核桃功能因子及其抗氧化活性的影响[J]. 食品与机械,2019,35(6):145−158. [Zuo L X, Liu C J, Bi J F, et, al. Effects of different treatments on functional components and antixoidant activity of Prunus mira Koehne[J]. Food and Machinery,2019,35(6):145−158.
    [31]
    葛帅, 陈宇昱, 彭争光, 等. 基于顶空-气相色谱-离子迁移谱法研究干燥方式对小米椒挥发性风味物质的影响[J]. 激光生物学报,2020,29(4):368−378. [Ge S, Chen Y Y, Peng Z G, et al. Application of headspace-gas chromatography-ion mobility spectrometry to investigate the influence of drying method on volatile substances of capsicum frutescens[J]. Acta Laser Biology Sinica,2020,29(4):368−378. doi: 10.3969/j.issn.1007-7146.2020.04.011
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