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参考文献: conditions of radish (Raphanus sativus L.) anthocyanin-rich extracts
using chitosan[J]. LWT-Food Science and Technology, 2011, 44(10):
[1] Su X, Xu J, Rhodes D, et al. Identification and quantification of
2097-2103.
anthocyanins in transgenic purple tomato[J]. Food Chemistry, 2016,
[15] Sarkis J R, Jaeschke D P, Tessaro I C, et al. Effects of ohmic and
202: 184-188.
conventional heating on anthocyanin degradation during the
[2] Sarkis J R, Jaeschke D P, Tessaro I C, et al. Effects of ohmic and
processing of blueberry pulp[J]. LWT-Food Science and Technology,
conventional heating on anthocyanin degradation during theprocessing
2013, 51(1): 79-85.
of blueberry pulp[J]. LWT-Food Science and Technology, 2013,
[16] Hou Xiujuan (侯秀娟), Shen Yonggen (沈勇根), Xu Mingsheng (徐
51(1): 79-85.
明生), et al. Optimization of the microwave extraction condition of
[3] Tan C X, Chong G H, Hamzah H, et al. Comparison of subcritical
exocarpium citri grandis polysaccharide using response surface
CO 2 and ultrasound-assisted aqueous methods with the conventional
analysis[J]. Journal of Chinese Institute of Food Science and
solvent method in the extraction of avocado oil[J]. Journal of
Technology (中国食品学报), 2013, 13(3): 101-109.
Supercritical Fluids, 2018, 135: 45-51.
[17] Zheng X Z, Xu X W, Liu C H, et al. Extraction characteristics and
[4] He Chuanbo (何传波), Wei Haocheng (魏好程), Xiong Hejian (熊何
optimal parameters of anthocyanin from blueberry powder under
健), et al. Extraction and antioxidant activities of polysaccharides
microwave-assisted extraction conditions[J]. Separation and
from laminaria japonica as affected by enzymatic hydrolysis and
Purification Technology, 2013, 104: 17-25.
microwave[J]. Food Science (食品科学), 2013, 34(18): 51-55.
[18] Ahmadian-Kouchaksaraie Z, Niazmand R, Najafi M N. Optimization
[5] Zheng X, Wang X, Lan Y, et al. Application of response surface
of the subcritical water extraction of phenolic antioxidants from
methodology to optimize microwave-assisted extraction of silymarin
Crocus sativus petals of saffron industry residues: Box-Behnken
from milk thistle seeds[J]. Separation & Purification Technology,
design and principal component analysis[J]. Innovative Food Science
2010, 70(1): 34-40.
& Emerging Technologies, 2016, 36: 234-244.
[6] Wang Xian (王先), Yang Kun (杨坤), Wang Zhaoshou (王兆守), et
[19] Chan C H, Lim J J, Yusoff R, et al. A generalized energy-based
al. Separation and purification of flavonoids from cinnamomum
kinetic model for microwave-assisted extraction of bioactive
camphora leaves via microwave-assisted extraction and macroporous
compounds from plants[J]. Separation & Purification Technology,
resin adsorption[J]. Transactions of the CSAE (农业工程学报),
2015, 143: 152-160.
2009, 25(1): 138-141.
[20] Li Qiaoling ( 李巧 玲 ), Li Lin ( 李琳 ). Mechanism study on
[7] Ai Zhilu (艾志录), Guo Juan (郭娟), Wang Yuhong (王育红), et al.
microwave extraction of natural pigment from pomelo peels[J]. Food
Microwave-assisted extraction technique of apple polyphenols in
Science (食品科学), 2005, 26(6): 78-80.
apple pomace[J]. Transactions of the CSAE (农业工程学报), 2006,
[21] Nicoué E E, Savard S, Belkacemi K. Anthocyanins in wild
22(6): 188-191.
blueberries of Quebec: extraction and identification[J]. Journal of
[8] Wu Xiaoju ( 吴晓 菊 ), Xu Xiaosheng ( 徐效 圣 ). Process of
Agricultural & Food Chemistry, 2007, 55(14): 5626-5635.
microwave-assisted extraction of essential oil from hyssopus
[22] Liu L, Cao S, Xie B, et al. Degradation of cyanidin-3-rutinoside in
officinalis[J]. Food Research and Development (食品研究与开发),
the presence of (-)-epicatechin and litchi pericarp polyphenol
2017, 38(16): 51-53.
oxidase[J]. Journal of Agricultural & Food Chemistry, 2007, 55(22):
[9] Fan G, Han Y, Gu Z, et al. Optimizing conditions for anthocyanins 9074-9078.
extraction from purple sweet potato using response surface [23] Eguchi K, Sato T. Differences in the ratios of cyanidin-3-glucoside
methodology(RSM)[J]. LWT-Food Science and Technology, 2008, and cyanidin-3-rutinocide to total anthocyanin under UV and
41(1): 155-160. non-UV conditions in tartary buckwheat(Garten)[J]. Plant Production
[10] Meng Xianjun (孟宪军), Li Dongnan (李冬男), Wang Yanqun (汪艳 Science, 2015, 12(2): 150-155.
群), et al. Response surface methodology as an approach for [24] Li D, Meng X, Li B. Profiling of anthocyanins from blueberries
optimization of extraction of water-soluble polysaccharides from produced in China using HPLC-DAD-MS and exploratory analysis
schisandra chinensis (Turcz.) baill[J]. Food Science (食品科学), by principal component analysis[J]. Journal of Food Composition &
2010, 31(4): 111-115. Analysis, 2016, 47(6): 1-7.
[11] Yu Zeyuan (于泽源), Zhao Jianhui (赵剑辉), Li Xingguo (李兴国), [25] Wang Y, Zhu J, Meng X, et al. Comparison of polyphenol,
et al. Isolation and purification of anthocyanin from blueberry by anthocyanin and antioxidant capacity in four varieties of Lonicera
sequential medium pressure column chromatography on caerulea berry extracts[J]. Food Chemistry, 2016, 197(Part A): 522-
macroporous resin and Sephadex LH-20[J]. Food Science (食品科 529.
学), 2018, (1): 118-123. [26] An Xiaoqi (安小琦), Wang Yuehua (王月华), Meng Xianjun (孟宪
[12] Koyu H, Kazan A, Demir S, et al. Optimization of microwave 军). Identification and comparative analysis of antioxidant ability of
assisted extraction of Morus nigra L. fruits maximizing tyrosinase anthocyanins in Lonicera caerulea berry extracts[J]. Food Science
inhibitory activity with isolation of bioactive constituents[J]. Food (食品科学), 2016, 37(19): 82-87.
Chemistry, 2018, 248: 183-191. [27] De Pascual-Teresa S, Santos-Buelga C, Rivas-Gonzalo J C. LC-MS
[13] Sookjitsumran W, Devahastin S, Mujumdar A S, et al. Comparative analysis of anthocyanins from purple corn cob[J]. Journal of the
evaluation of microwave-assisted extraction and preheated solvent Science of Food & Agriculture, 2002, 82(9): 1003-1006.
extraction of bioactive compounds from a plant material: a case study [28] Yang Z, Zhai W. Optimization of microwave-assisted extraction of
with cabbages[J]. International Journal of Food Science & anthocyanins from purple corn (Zea mays L.) cob and identification
Technology, 2016, 51(11): 2440-2449. with HPLC-MS[J]. Innovative Food Science & Emerging
[14] Jing P, Ruan S Y, Dong Y, et al. Optimization of purification Technologies, 2010, 11(3): 470-476.