高压二氧化碳对桃果胶甲基酯酶活性的钝化效果与动力学研究

周林燕 廖小军 曹霞敏 刘凤霞 毕秀芳 易建勇 李淑荣

周林燕, 廖小军, 曹霞敏, 刘凤霞, 毕秀芳, 易建勇, 李淑荣. 高压二氧化碳对桃果胶甲基酯酶活性的钝化效果与动力学研究[J]. 高压物理学报, 2014, 28(6): 753-761. doi: 10.11858/gywlxb.2014.06.017
引用本文: 周林燕, 廖小军, 曹霞敏, 刘凤霞, 毕秀芳, 易建勇, 李淑荣. 高压二氧化碳对桃果胶甲基酯酶活性的钝化效果与动力学研究[J]. 高压物理学报, 2014, 28(6): 753-761. doi: 10.11858/gywlxb.2014.06.017
ZHOU Lin-Yan, LIAO Xiao-Jun, CAO Xia-Min, LIU Feng-Xia, BI Xiu-Fang, YI Jian-Yong, LI Shu-Rong. Inactivation Kinetics of Pectin Methylesterase from Peach under High Pressure Carbon Dioxide[J]. Chinese Journal of High Pressure Physics, 2014, 28(6): 753-761. doi: 10.11858/gywlxb.2014.06.017
Citation: ZHOU Lin-Yan, LIAO Xiao-Jun, CAO Xia-Min, LIU Feng-Xia, BI Xiu-Fang, YI Jian-Yong, LI Shu-Rong. Inactivation Kinetics of Pectin Methylesterase from Peach under High Pressure Carbon Dioxide[J]. Chinese Journal of High Pressure Physics, 2014, 28(6): 753-761. doi: 10.11858/gywlxb.2014.06.017

高压二氧化碳对桃果胶甲基酯酶活性的钝化效果与动力学研究

doi: 10.11858/gywlxb.2014.06.017
基金项目: 国家自然科学基金(31171770);国家863计划项目(2011AA100801)
详细信息
    作者简介:

    周林燕(1984—), 女,博士,助理研究员,主要从事农产品加工与贮藏研究.E-mail:zhoulinyan916@hotmail.com

    通讯作者:

    廖小军(1966—), 男,博士,教授,主要从事农产品加工与贮藏研究、食品非热加工研究.E-mail:liaoxjun@hotmail.com

  • 中图分类号: O521.9;TS205

Inactivation Kinetics of Pectin Methylesterase from Peach under High Pressure Carbon Dioxide

  • 摘要: 采用高压二氧化碳技术(High Pressure Carbon Dioxide, HPCD)处理桃果胶甲基酯酶(Pectin Methylesterase, PME)粗酶液,分析了HPCD对粗酶液中PME的钝化效果及动力学,进一步比较了粗酶液和桃汁两种体系中PME对HPCD的敏感性。HPCD对粗酶液中PME具有较好的钝化效果,处理温度和压力的共同作用导致了PME活性降低,钝化动力学遵从一级动力学模型。随着处理压力和温度的提高,钝化速率逐渐增大,而指数递减时间则逐渐减小;在最优的处理条件(22 MPa、55 ℃)下,HPCD钝酶的钝化速率和指数递减时间分别为0.408 8 min-1和5.63 min。温度为55 ℃时HPCD钝酶的压力敏感指数为16.40 MPa,活化体积为-383.00 cm3/mol;压强为15 MPa时HPCD钝酶的温度敏感指数为13.30 ℃,活化能为1 845.86 kJ/mol。比较HPCD对桃汁和粗酶液中PME的钝化效果,发现HPCD处理16 min后(15 MPa、55 ℃),桃汁中PME残存酶活在80%左右,而粗酶液中PME活性已完全钝化,表明桃汁体系中存在保护PME活性的因素,有关机制需要进一步研究。

     

  • 图  果胶甲基脂酶作用原理[5]

    Figure  1.  Reaction of pectincatalyzed by pectin methylesterase[5]

    图  HPCD处理装置

    Figure  2.  High pressure carbon dioxide processing equipment

    1.CO2 cylinder; 2.CO2 filter; 3.Pressure gauge; 4.Cooling unit; 5.Plunger pump; 6.Pressure transducer; 7.Biohazard clean safety facility for aseptic operation; 8.High pressure vessel; 9.Thermocouples; 10.Thermostatic bath; 11.Vacuum pump; 12.Displaying panel

    图  不同压强下HPCD处理(55 ℃)桃PME的钝化动力学

    Figure  3.  Inactivation kinetics of peach PME by HPCD at 55 ℃ modelled using the first-order kinetic model

    图  HPCD(55 ℃)钝化桃PME的ZpVa值理

    Figure  4.  Zp and Va for pressure-dependence inactivation of peach PME by HPCD at 55 ℃

    图  不同温度下HPCD处理(15 MPa)桃PME的钝化动力学

    Figure  5.  Inactivation kinetics of peach PME by HPCD at 15 MPa modelled using the first-order kinetic model

    图  HPCD处理(15 MPa)钝化桃PME的ZTEa

    Figure  6.  ZT and Ea for temparature-dependence inactivation of peach PME by HPCD at 15 MPa

    图  HPCD处理(55 ℃,15 MPa)对桃汁和PME粗酶液的钝化效果(重复次数:n=3;不同字母a, b, c, d, e表示有显著性差异)

    Figure  7.  Comparison of the AR of peach PME in juice and buffer by HPCD (55 ℃, 15 MPa) (Times of repetition:n=3;Different letters represent that there are significant diffrences)

    表  1  不同压强HPCD钝化桃PME的动力学参数(55 ℃)

    Table  1.   Estimation of inactivation kinetic parameters of peach PME by HPCD at 55 ℃ using the first-order kinetic model

    Pressure/(MPa) Kinetic parameters
    k/(min-1) D/(min) R2(P < 0.05)
    5 0.036 5±0.000 8 63.08 0.76
    8 0.066 4±0.001 5 34.68 0.79
    12 0.168 3±0.004 0 13.68 0.94
    15 0.196 5±0.022 2 11.72 0.91
    22 0.408 8±0.044 1 5.63 0.86
    Note:R2 represents the linear regression coefficient, P represents the significance level.
    下载: 导出CSV

    表  2  不同温度HPCD钝化桃PME的动力学参数(15 MPa)

    Table  2.   Estimation of inactivation kinetic parameters of peach PME by HPCD at 15 MPa using the first-order kinetic model

    Temperature/(℃) Kinetic parameters
    k/(min-1) D/(min) R2(P < 0.05)
    25 0.001 2±0.000 5 1 918.82 0.360
    35 0.003 6±0.000 8 639.61 0.667
    45 0.027 0±0.001 5 85.28 0.970
    55 0.196 5±0.022 2 11.72 0.910
    Note:R2 represents the linear regression coefficient, P represents the significance level.
    下载: 导出CSV
  • [1] 周林燕, 廖红梅, 张文佳, 等.食品高压技术研究进展和应用现状[J].中国食品学报, 2009, 9(4): 165-169. http://d.wanfangdata.com.cn/Periodical_zgspxb200904027.aspx

    Zhou L Y, Liao H M, Zhang W J, et al. The research progress and application status of high pressure technology in food science[J]. Journal of Chinese Institute of Food Science and Technology, 2009, 9(4): 165-169. (in Chinese) http://d.wanfangdata.com.cn/Periodical_zgspxb200904027.aspx
    [2] Knorr D. Novel approaches in food-processing technology: New technologies for preserving foods and modifying function[J]. Curr Opin Biotech, 1992, 10(5): 485-491. http://www.sciencedirect.com/science/article/pii/S0958166999000154
    [3] Lado B H, Yousef A E. Alternative food-preservation technologies: Efficacy and mechanisms[J]. Microbes Infect, 2002, 4(4): 433-440. doi: 10.1016/S1286-4579(02)01557-5
    [4] Damar D, Blaban M O. Review of dense phase CO2 technology: Microbiol and enzyme inactivation, and effects on food quality[J]. J Food Sci, 2006, 71(1): 1-11.
    [5] Francis K E, Lam S Y, Copenhaver G P. Separation of arabidopsis pollen tetrads is regulated by QUARTET1, a pectin methylesterase gene[J]. Plant Physiol, 2006, 142(3): 1004-1013. doi: 10.1104/pp.106.085274
    [6] Ly-Nguyen B, van Loey A M, Smout C, et al. Effect of mild-heat and high-pressure processing on banana pectin methylesterase: A kinetic study[J]. J Agric Food Chem, 2003, 51(27): 7974-7979. doi: 10.1021/jf034658i
    [7] Guiavarc'h Y, Segovia O, Hendrickx M, et al. Purification, characterization, thermal and high-pressure inactivation of a pectin methylesterase from white grapefruit(Citrus paradisi)[J]. Innov Food Sci Emerg, 2005, 6(4): 363-371. doi: 10.1016/j.ifset.2005.06.003
    [8] Duvetter T, Sila D N, van Buggenhout S V, et al. Pectins in processed fruit and vegetables: Part I-stability and catalytic activity of pectinases[J]. Compr Rev Food Sci Food Saf, 2009, 8(2): 75-85. doi: 10.1111/j.1541-4337.2009.00070.x
    [9] Zhi X, Zhang Y, Hu X, et al. Inactivation of apple pectin methylesterase induced by dense phase carbon dioxide[J]. J Agric Food Chem, 2008, 56(13): 5394-5400. doi: 10.1021/jf800260c
    [10] Niu S, Xu Z, Fang Y, et al. Comparative study on cloudy apple juice qualities from apple slices treated by high pressure carbon dioxide and mild heat[J]. Innov Food Sci Emerg, 2010, 11(1): 91-97. http://www.cabdirect.org/abstracts/20103061936.html
    [11] Zhou L, Zhang Y, Hu X, et al. Comparison of the inactivation kinetics of pectin methylesterases from carrot and peach by high-pressure carbon dioxide[J]. Food Chem, 2009, 115(2): 449-455. doi: 10.1016/j.foodchem.2008.12.028
    [12] Liu X, Gao Y X, Peng X T, et al. Inactivation of peroxidase and polyphenol oxidase in red beet(Beta vulgaris L.)extract with high pressure carbon dioxide[J]. Innov Food Sci Emerg, 2008, 9(1): 24-31. doi: 10.1016/j.ifset.2007.04.010
    [13] Zhou L Y, Zhang Y, Leng X J, et al. Acceleration of precipitation formation in peach juice induced by high-pressure carbon dioxide[J]. J Agric Food Chem, 2010, 58(17): 9605-9610. doi: 10.1021/jf101430j
    [14] Sampedro F, Rodrigo D, Hendrickx M. Inactivation kinetics of pectin methyl esterase under combined thermal-high pressure treatment in an orange juice-milk beverage[J]. J Food Eng, 2008, 86(1): 133-139. doi: 10.1016/j.jfoodeng.2007.09.019
    [15] Eagerman B A, Rouse A H. Heat inactivation temperature-time relationships for pectinesterase inactivation in citrus juices[J]. J Food Sci, 1976, 41(6): 1396-1397. doi: 10.1111/j.1365-2621.1976.tb01180.x
    [16] Balaban M O, Arreola A G, Marshall M, et al. Inactivation of pectinesterase in orange juice by supercritical carbon dioxide[J]. Journal Food Sci, 1991, 56(3): 743-746. doi: 10.1111/j.1365-2621.1991.tb05372.x
    [17] Weemaes C, Ludikhuyze L, van den Broeck I, et al. High pressure inactivation of polyphenoloxidases[J]. J Food Sci, 1998, 63(5): 873-877. doi: 10.1111/j.1365-2621.1998.tb17917.x
    [18] Javeri H, Wicker L. Partial purification and characterization of peach pectinesterase[J]. J Food Biochem, 1991, 15(4): 241-252. doi: 10.1111/j.1745-4514.1991.tb00159.x
    [19] Ly-Nguyen B, van Loey A M, Fachin D, et al. Partial purification, characterization, and thermal and high-pressure inactivation of pectin methylesterase from carrots(Daucu carrota L.)[J]. J Agric Food Chem, 2002, 50(19): 5437-5444. doi: 10.1021/jf011666v
    [20] Ly-Nguyen B, van Loey A M, Fachin D, et al. Purification, characterization, thermal, and high-pressure inactivation of pectin methylesterase from bananas(cv Cavendish)[J]. Biotechnol Bioeng, 2002, 78(6): 683-691. http://www.ncbi.nlm.nih.gov/pubmed/11992533
    [21] Alonso J, Rodrguez M T, Canet W. Purification and characterization of four pectinesterases from sweet cherry(Prunus avium L.)[J]. J Agric Food Chem, 1996, 44(11): 3416-3422. doi: 10.1021/jf960204s
    [22] Alonso J, Howell N, Canet W. Purification and characterization of two pectinmethylesterase from persimmon(Diospyros kaki)[J]. J Sci Food Agric, 1997, 75(3): 352-358. doi: 10.1002/(SICI)1097-0010(199711)75:3<352::AID-JSFA885>3.0.CO;2-G
    [23] Nunes C S, Castro S M, Saraiva J A, et al. Thermal and high-pressure stability of purified pectin methylesterase from plums(Prunus Domestica)[J]. J Food Biochem, 2006, 30(2): 138-154. doi: 10.1111/j.1745-4514.2006.00057.x
    [24] Viar-Vera M A, Salazar-Montoya J A, Calva-Calva G, et al. Extraction, thermal stability and kinetic behavior of pectinmethylesterase from hawthorn(Crataegus pubescens)fruit[J]. LWT-Food Sci Technol, 2007, 40(2): 278-284. doi: 10.1016/j.lwt.2005.10.005
    [25] Zhang Y, Wang Y Y, Zhou L Y, et al. A comparative study of inactivation of peach polyphenol oxidase and carrot polyphenol oxidase induced by high-pressure carbon dioxide[J]. Int J Food Sci Tech, 2010, 45(11): 2297-2305. doi: 10.1111/j.1365-2621.2010.02403.x
    [26] 刘野, 张超, 许勇, 等.高压二氧化碳对西瓜汁中过氧化物酶钝化动力学的研究[J].食品工业科技, 2011, 34(11): 160-163. http://www.cqvip.com/QK/92916X/20117/38429900.html

    Liu Y, Zhang C, Xu Y, et al. Research of the inactivation kinetics of peroxidase in watermelon juice by high pressure carbon dioxide[J]. Science and Technology of Food Industry, 2011, 34(11): 160-163. (in Chinese) http://www.cqvip.com/QK/92916X/20117/38429900.html
    [27] Katsaros G, Apseridis I, Taoukis P. Modelling of high hydrostatic pressure inactivation of pectinmethylesterase from persimmon fruit[C]//IUFOST 13th World Congress of Food Science & Technology. Nantes, France, 2006.
    [28] Balogh T, Smout C, Ly-Nguyen B, et al. Thermal and high-pressure inaavtivation kinetics of carrot pectinmethylesterase: From model system to real foods[J]. Innov Food Sci Emerg, 2004, 5(4): 429-436. doi: 10.1016/j.ifset.2004.06.002
    [29] Gui F, Chen F, Wu J, et al. Inactivation and structural change of horseradish peroxidase treated with supercritical carbon dioxide[J]. Food Chem, 2006, 97(3): 480-489. doi: 10.1016/j.foodchem.2005.05.028
    [30] Gui F, Wu J, Chen F, et al. Inactivation of polyphenol oxidases in cloudy apple juice exposed to supercritical carbon dioxide[J]. Food Chem, 2007, 100(4): 1678-1685. doi: 10.1016/j.foodchem.2005.12.048
    [31] Liao X J, Zhang Y, Bei J, et al. Alterations of molecular properties of lipoxygenase induced by Dense Phase Carbon Dioxide[J]. Innov Food Sci Emerg, 2009, 10(1): 47-53. doi: 10.1016/j.ifset.2008.06.007
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  • 收稿日期:  2012-08-21
  • 修回日期:  2012-10-08

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