凯里米酸汤挥发性成分HS-SPME-GC-MS和HS-GC-IMS分析

  • 严红光 ,
  • 张建炀 ,
  • 林莉 ,
  • 袁华伟
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  • 1(宜宾学院 质量管理与检验检测学部,四川 宜宾,644001)
    2(黔东南苗族侗族自治州食品药品检验检测中心,贵州 凯里,556011)
    3(凯里学院 大健康学院,贵州 凯里,556011)
第一作者:博士,教授(袁华伟研究员为通信作者,E-mail:843204747@qq.com)

收稿日期: 2021-12-18

  修回日期: 2022-01-24

  网络出版日期: 2022-05-26

基金资助

贵州省“千”层次创新型人才项目(黔千层人才[2021]201604);黔东南州科技项目(黔东南科合J字[2020]050号);贵州省科技厅平台项目(黔科合平台人才[2020]1003号);贵州省教育厅省级特色重点实验室项目(黔教合KY字[2017]011)

Volatile component analysis in Kaili rice sour soup using HS-SPME-GC-MS and HS-GC-IMS

  • YAN Hongguang ,
  • ZHANG Jianyang ,
  • LIN Li ,
  • YUAN Huawei
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  • 1(Faculty of Quality Management and Inspection Quarantine, Yibin University, Yibin 644001, China)
    2(Qiandongnan Testing Center of Food and Drug Control, Kaili 556011, China)
    3(School of Life and Health Science, Kaili University, Kaili 556011, China)

Received date: 2021-12-18

  Revised date: 2022-01-24

  Online published: 2022-05-26

摘要

采用顶空固相微萃取-气相色谱-质谱联用和顶空气相色谱-离子迁移谱技术协同分析凯里米酸汤3个代表性企业产品MC、NH和YM挥发性风味成分。采用气质联用技术鉴定出10种醇类、10种酯类、3种酸类、1种酮类、1种呋喃类、2种醚类、1种酚类,共28种挥发性成分。气味活度值分析结果表明:与米酸汤MC样品比较,YM样品中丁酸、乙酸丁酯、丁酸丙酯和丁酸丁酯含量较低,而丙酸、丙酸乙酯和丙酸丙酯含量较高。顶空气相色谱-离子迁移谱技术分析出33种挥发性成分,其中13种挥发性成分为2种技术手段共同检出;指纹谱图直观显示出3种米酸汤样品挥发性成分组成的差异;主成分分析能够有效区分每种米酸汤样品。采用2种技术手段协同分析,获得3种凯里米酸汤更加全面的挥发性风味成分信息。研究结果为改进凯里米酸汤风味特征提供参考依据。

本文引用格式

严红光 , 张建炀 , 林莉 , 袁华伟 . 凯里米酸汤挥发性成分HS-SPME-GC-MS和HS-GC-IMS分析[J]. 食品与发酵工业, 2022 , 48(9) : 245 -252 . DOI: 10.13995/j.cnki.11-1802/ts.030507

Abstract

Kaili rice sour soup (RSS) products from three representative enterprises were selected to analyze the volatile components using headspace-solid phase microextraction-gas chromatography-mass spectrometry (HS-SPME-GC-MS) and gas chromatography-ion mobility spectrometry (HS-GC-IMS). Using GC-MS technology, ten alcohols, ten esters, three acids, one ketone, two furans, two ethers, one phenol were identified. Compared with the MC sample, the results of OAV analysis showed that the contents of butyric acid, butyl acetate, propyl butyrate and butyl butyrate were low and the contents of propionic acid, ethyl propionate and propyl propionate were high in YM sample. GC-IMS detected 33 volatile components, of which 13 volatile components were also detected by HS-SPME-GC-MS. The fingerprint spectrum of the volatile components visually showed the difference among the three kinds of RSS samples. Principal component analysis could effectively distinguish each RSS sample. Synergistic analysis of two technical methods was used to obtain more comprehensive information on volatile flavor components of three RSS samples. The research results provide a reference for improving the flavor characteristics of Kaili RSS.

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