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中国精品科技期刊2020 食品青年科学家峰会

响应面法优化西洋参果多糖的提取工艺及其体外抗氧化活性

赵丽明 郭煦遥 毛英民 赵大庆 黄宝泰 李佳奇 刘莉 齐滨

赵丽明,郭煦遥,毛英民,等. 响应面法优化西洋参果多糖的提取工艺及其体外抗氧化活性[J]. 新宝登录入口(中国)有限公司,2023,44(13):160−166. doi:  10.13386/j.issn1002-0306.2022070318
引用本文: 赵丽明,郭煦遥,毛英民,等. 响应面法优化西洋参果多糖的提取工艺及其体外抗氧化活性[J]. 新宝登录入口(中国)有限公司,2023,44(13):160−166. doi:  10.13386/j.issn1002-0306.2022070318
ZHAO Liming, GUO Xuyao, MAO Yingmin, et al. Optimization of Extraction Process and Antioxidant Activity of Polysaccharide from Panax quinquefolium Fruit by Response Surface Methodology[J]. Science and Technology of Food Industry, 2023, 44(13): 160−166. (in Chinese with English abstract). doi:  10.13386/j.issn1002-0306.2022070318
Citation: ZHAO Liming, GUO Xuyao, MAO Yingmin, et al. Optimization of Extraction Process and Antioxidant Activity of Polysaccharide from Panax quinquefolium Fruit by Response Surface Methodology[J]. Science and Technology of Food Industry, 2023, 44(13): 160−166. (in Chinese with English abstract). doi:  10.13386/j.issn1002-0306.2022070318

响应面法优化西洋参果多糖的提取工艺及其体外抗氧化活性

doi: 10.13386/j.issn1002-0306.2022070318
基金项目: 国家重点研发计划(2021YFD1600903);吉林省科技厅重点研发项目(20210204062YY);吉林省大学生创新创业训练计划项目(S202110199138X)。
详细信息
    作者简介:

    赵丽明(1998−),女,硕士研究生,研究方向:中药有效成分发现、生物转化及健康产品研究与开发,E-mail:2139994228@qq.com

    通讯作者:

    刘莉(1978−),女,博士,副教授,研究方向:中药活性物质分析研究,E-mail:68734263@qq.com

    齐滨(1978−),男,博士,教授,研究方向:天然产物开发与研究,E-mail:qibin88@126.com

  • 中图分类号: TS201.2

Optimization of Extraction Process and Antioxidant Activity of Polysaccharide from Panax quinquefolium Fruit by Response Surface Methodology

  • 摘要: 目的:对西洋参果实中的多糖进行提取,结合响应面法对提取工艺进行优化,并对西洋参果多糖是否具有体外抗氧化活性进行研究。方法:本研究以新鲜的西洋参果实为原料,采用了水提醇沉法提取其中的多糖。用单因素实验以及响应面法对提取工艺进行了优化。从DPPH自由基清除率、羟基自由基清除率以及还原能力三个方面进行果多糖的体外抗氧化活性研究。结果:最佳工艺参数为:提取时间为2.5 h,乙醇浓度为80%,料液比为1:16 g/mL,此时的多糖得率为29.47%±0.65%,与模型预测值相当。在以下三方面考察了西洋参果多糖的体外抗氧化活性:多糖浓度为3.4 mg/mL时,其DPPH自由基清除率达75.14%±0.65%,IC50值为0.71 mg/mL;多糖浓度为3.4 mg/mL时,其羟基自由基的清除率可达71.82%±1.43%,IC50值为0.87 mg/mL;多糖的浓度为1.0 mg/mL时,其总还原力达到了0.730,并且其体外抗氧化能力随西洋参果多糖浓度的增加而增强。结论:抗氧化活性的实验结果说明了西洋参果多糖具有较好的抗氧化活性。本研究可以为西洋参果多糖进一步开发利用奠定理论基础,确保中药资源能够被充分利用。
  • 图  1  提取时间对西洋参果多糖得率的影响

    Figure  1.  Effect of extraction time on the yield of polysaccharides from American ginseng fruits

    图  2  乙醇浓度对西洋参果多糖得率的影响

    Figure  2.  Effect of ethanol concentration on the yield of polysaccharides from American ginseng fruits

    图  3  料液比对西洋参果多糖得率的影响

    Figure  3.  Effect of ratio of solid to liquid on polysaccharide yield of American ginseng fruits

    图  4  AB、AC、BC对西洋参果多糖得率影响的响应面图和等高线图

    Figure  4.  Response surface plots and contour plots of the effects of AB, AC and BC on polysaccharide yield of American ginseng fruit

    图  5  西洋参果多糖对DPPH自由基清除率

    Figure  5.  Scavenging rate of American ginseng fruit polysaccharide on DPPH radical

    图  6  西洋参果多糖对·OH清除率

    Figure  6.  Scavenging rate of American ginseng fruit polysaccharide on hydroxyl radical

    图  7  西洋参果多糖总还原力

    Figure  7.  Total reduction force of American ginseng fruit polysaccharide

    表  1  试验因素水平表

    Table  1.   Table of experimental factor levels

    水平因素
    A提取时间(h)B乙醇浓度(%)C料液比(g/mL)
    −11751:10
    02801:15
    13851:20
    下载: 导出CSV

    表  2  Box-Behnken试验设计方案及结果

    Table  2.   Design and test results of Box-Behnken test

    试验号提取时间乙醇浓度料液比西洋参果多糖得率(%)
    111025.43±0.63
    200027.54±0.93
    301126.72±0.80
    410−126.65±0.57
    510126.28±0.40
    60−1124.83±1.72
    700027.75±0.63
    80−1−122.03±1.17
    9−10−114.64±1.91
    1001−123.45±0.86
    111−1024.83±0.90
    1200028.75±0.59
    13−10115.24±0.84
    1400028.62±0.75
    1500027.58±1.07
    16−11015.15±0.40
    17−1−1014.35±0.63
    下载: 导出CSV

    表  3  回归模型方差分析

    Table  3.   Variance analysis of response surface quadratic regression

    方差来源平方和自由度均方FP
    模型437.07948.5651.00<0.0001**
    A-提取时间240.901240.90252.99<0.0001**
    B-乙醇浓度2.7612.762.900.1324
    C-料液比5.1215.125.380.0535
    AB1.2111.210.0110.9213
    AC0.2010.200.210.6587
    BC0.06310.0630.0660.8052
    A2143.361143.36150.55<0.0001**
    B221.98121.9823.090.0020**
    C29.6019.6010.080.0156*
    残差6.6770.95
    失拟项5.3231.775.260.0713
    纯误差1.3540.34
    总离差443.7416
    注:**表示差异极显著P<0.01,*表示差异显著P<0.05。
    下载: 导出CSV
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