4.6 Article

Purification of Polyphenols from Distiller's Grains by Macroporous Resin and Analysis of the Polyphenolic Components

期刊

MOLECULES
卷 24, 期 7, 页码 -

出版社

MDPI
DOI: 10.3390/molecules24071284

关键词

distiller's grains; polyphenols; macroporous resin; purification

资金

  1. Doctoral Science Research Foundation by Zhengzhou University of Light Industry [2015BSJJ034]
  2. Key Program of He'nan Educational Committee [18A550015]
  3. Science and Technology Innovation Team of Education Department of Henan Province [C20150024]
  4. Earmarked Fund for the National Natural Science Foundation of China [U1504305]

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We aimed to purify polyphenols from distiller's grain extract using macroporous resins and to identify its polyphenolic components. The influence of operational parameters on purification efficiency was investigated. The polyphenolic composition was analyzed by ultra-performance liquid chromatography tandem mass spectrometry (UPLC-MS/MS) and then quantified by UPLC-MS using authenticated standards. The results showed that the optimal purifying conditions were D101 resin with a dosage of 3 g, four hours adsorption, three hours desorption time, and 60% ethanol as the eluent, producing the highest purification rate of 51%. The purified distiller's grain extract exhibited stronger antioxidant activity than the unpurified extracts, which was assessed using DPPH and ABTS methods (IC50 DPPH = 34.03 and 16.21 mu g/mL, respectively; IC50 ABTS = 20.31 and 5.73 mu g/mL, respectively). UPLC-MS results indicated that (-)-epicatechin is the major compound found in distiller's grain extract which was quantified as 562.7 mu g/g extract, followed by ferulic acid (518.2 mu g/g), p-hydroxybenzoic acid (417.7 mu g/g), caffeic acid (217.1 mu g/g), syringic acid (158.0 mu g/g) and quercetin (147.8 mu g/g). Two compounds, vanillic acid (66.5 mu g/g) and gallic acid (41.4 mu g/g), were found in lower concentrations. The findings of this study suggest that purification of polyphenolic compounds from distiller's grain by macroporous resins is feasible, providing a new and effective method for the secondary use of distiller's grain resources.

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