Structure, physicochemical properties and adsorption function of insoluble dietary fiber from ginseng residue: A potential functional ingredient

被引:171
作者
Hua, Mei [1 ]
Lu, Jiaxi [2 ]
Qu, Di [1 ]
Liu, Chang [1 ]
Zhang, Lei [1 ]
Li, Shanshan [1 ]
Chen, Jianbo [1 ]
Sun, Yinshi [1 ]
机构
[1] Chinese Acad Agr Sci, Inst Special Anim & Plant Sci, Changchun 130112, Jilin, Peoples R China
[2] Hague Univ Appl Sci, Inst Chem Technol, NL-2521 EN The Hague, Netherlands
关键词
Ginseng residues; Insoluble dietary fiber; Composition; Structure; Physicochemical properties; Adsorption function; PARTICLE-SIZE; CORN STOVER; CELLULOSE; EXTRACTION; FRACTIONATION; LIGNIN;
D O I
10.1016/j.foodchem.2019.01.114
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
The insoluble dietary fiber from ginseng residue (ginseng-IDF) was extracted using the AOAC (Association of Official Analytical Chemists) method with content of 68.61%. Ginseng-IDF had a polysaccharide content of 18.87%, uronic acid content of 7.85%, protein content of 6.52%, and had ideal water-holding capacity (17.66 g/g), swelling ability (15.05 mL/g), and oil-holding capacity (1.78 g/g). Scanning electron microscope, Fourier transform infrared spectroscopy, and X-ray diffraction analyses suggested that ginseng-IDF had the typical structures of hydrolysis fiber, polysaccharide functional groups, and crystal structure of cellulose. Different fiber components give ginseng-IDF a specified range of pyrolysis temperature, and it is suitable for application in food processing lower than 300 degrees C. In addition, ginseng-IDF exhibited notable glucose and sodium cholate adsorption, significantly improved nitrite adsorption at pH 2.0 and cholesterol adsorption at pH 7.0. The above results show that ginseng-IDF could be used as an ideal functional ingredient in food processing.
引用
收藏
页码:522 / 529
页数:8
相关论文
共 39 条
[1]   Fractionation and characterisation of dietary fibre from blackcurrant pomace [J].
Alba, K. ;
MacNaughtan, W. ;
Laws, A. P. ;
Foster, T. J. ;
Campbell, G. M. ;
Kontogiorgos, V. .
FOOD HYDROCOLLOIDS, 2018, 81 :398-408
[2]   Thermal degradation of cellulose derivatives/starch blends and sisal fibre biocomposites [J].
Alvarez, VA ;
Vázquez, A .
POLYMER DEGRADATION AND STABILITY, 2004, 84 (01) :13-21
[3]  
[Anonymous], 2002, AOAC GUID SINGL LAB
[4]   Physicochemical properties and in vitro antidiabetic potential of fibre concentrates from onion by-products [J].
Benitez, Vanesa ;
Molla, Esperanza ;
Martin-Cabrejas, Maria A. ;
Aguilera, Yolanda ;
Esteban, Rosa M. .
JOURNAL OF FUNCTIONAL FOODS, 2017, 36 :34-42
[5]   Isolation of hemicelluloses from sugarcane bagasse at different temperatures: Structure and properties [J].
Bian, Jing ;
Peng, Feng ;
Peng, Xiao-Peng ;
Xu, Feng ;
Sun, Run-Cang ;
Kennedy, John F. .
CARBOHYDRATE POLYMERS, 2012, 88 (02) :638-645
[6]   NEW METHOD FOR QUANTITATIVE-DETERMINATION OF URONIC ACIDS [J].
BLUMENKR.N ;
ASBOEHAN.G .
ANALYTICAL BIOCHEMISTRY, 1973, 54 (02) :484-489
[7]   Isolation and characterization of cellulose nanofibrils from arecanut husk fibre [J].
Chandra, Julie C. S. ;
George, Neena ;
Narayanankutty, Sunil K. .
CARBOHYDRATE POLYMERS, 2016, 142 :158-166
[8]   Elemental analysis, chemical composition, cellulose crystallinity, and FT-IR spectra of Toona sinensis wood [J].
Chen, Congjin ;
Luo, Jianju ;
Qin, Wen ;
Tong, Zhangfa .
MONATSHEFTE FUR CHEMIE, 2014, 145 (01) :175-185
[9]   Revalorization of selected municipal solid wastes as new precursors of "green" nanocellulose via a novel one-pot isolation system: A source perspective [J].
Chen, You Wei ;
Lee, Hwei Voon .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2018, 107 :78-92
[10]   Mechanisms of liquefaction and pyrolysis reactions of biomass [J].
Demirbas, A .
ENERGY CONVERSION AND MANAGEMENT, 2000, 41 (06) :633-646