[1] SANG S M, CHU Y F. Whole grain oats, more than just a fiber: Role of unique phytochemicals[J]. Molecular Nutrition & Food Research, 2017, 61(7). DOI: 10.1002/mnfr.201600715.
[2] LI X P, ZHOU L Y, YU Y H, et al. The potential functions and mechanisms of oat on cancer prevention: A review[J]. Journal of Agricultural and Food Chemistry, 2022, 70(46):14588-14599.
[3] SUSHYTSKYI L, SYNYTSYA A, CˇOPÍKOVÁ J, et al. Perspectives in the application of high, medium, and low molecular weight oat β-d-glucans in dietary nutrition and food technology-a short overview[J]. Foods, 2023, 12(6):1121.
[4] PATEL P, MALIPATLOLLA D K, DEVARAKONDA S, et al. Dietary oat bran reduces systemic inflammation in mice subjected to pelvic irradiation[J]. Nutrients, 2020, 12(8):2172.
[5] CHEN Z W, MENSE A L, BREWER L R, et al. Wheat bran layers: Composition, structure, fractionation, and potential uses in foods[J]. Critical Reviews in Food Science and Nutrition, 2024, 64(19):6636-6659.
[6] MASOOD S B, MUHAMMAD T N, IQBAL K M K, et al. Oat: Unique among the cereals[J]. European Journal of Nutrition, 2008, 47(2): 68-79.
[7] SANGIAN H, PANGAU J R, TAMUNTUA G, et al. The structural analysis of the lignocellulose, champaca timber (elmerrilliaovalis) modified by the microwave[J]. Chemical Engineering Transactions (CET Journal), 2018, 65.DOI:10.3303/CET1865039.
[8] 周新, 唐世英, 杨贺棋, 等. 不溶性膳食纤维的提取、表征及改性研究进展[J]. 食品工业科技, 2021, 42(3):359-366; 372.
ZHOU X, TANG S Y, YANG H Q, et al. Research progress on isolation, characterization and modification of insoluble dietary fiber[J]. Science and Technology of Food Industry, 2021, 42(3):359-366; 372.
[9] LI R Q, CAO H W, WANG Y Q, et al. Improving physicochemical stability of highland barley-based milk by the addition of endogenous β-glucan[J]. Food Hydrocolloids, 2023, 143:108875.
[10] 孟彦彤,张东杰,薛勇,等.燕麦β-葡聚糖的功效研究进展[J]. 中国粮油学报,2024,39(2):196-205.
MENG Y T, ZHANG D J, XUE Y, et al. Research progress on the efficacy of oat β-glucan[J]. Journal of the Chinese Cereals and Oils Association, 2024,39(2):196-205.
[11] 陈中伟, 汪玲, 牛瑞, 等. 裸燕麦米和燕麦粉加工所得麸皮中β-葡聚糖和酚酸的分布[J]. 食品科学, 2018, 39(10):1-6.
CHEN Z W, WANG L, NIU R, et al. Distribution of β-glucan and phenolic acids in oat bran(Avena nuda) from the processing of oat rice and oat flour[J]. Food Science, 2018, 39(10):1-6.
[12] PÉREZ-LÓPEZ E, MATEOS-APARICIO I, RUPÉREZ P. Determination of soluble dietary fibre content of Okara treated with high hydrostatic pressure and enzymes: A comparative evaluation of two methods (AOAC and HPLC-ELSD)[J]. Journal of Food Science and Technology, 2017, 54(5):1333-1339.
[13] YANG Z, XIE C, BAO Y L, et al. Oat: Current state and challenges in plant-based food applications[J]. Trends in Food Science & Technology, 2023, 134:56-71.
[14] 张楠, 石琳, 孟继坤, 等. 不同处理技术对小麦胚芽钝酶效果及贮藏稳定性的影响[J]. 食品与机械, 2021, 37(8):140-145.
ZHANG N, SHI L, MENG J K, et al. Effects of different technologies on enzyme deactivation and storage stability of wheat germs[J]. Food & Machinery, 2021, 37(8):140-145.
[15] 罗舜菁, 胡迪, 黄克愁, 等. 过热蒸汽处理对米糠营养性质和储藏稳定性的影响[J]. 中国食品学报, 2020, 20(5):213-221.
LUO S J, HU D, HUANG K C, et al. Effects of superheated steam treatment on the nutritional properties and storage stability of rice bran[J]. Journal of Chinese Institute of Food Science and Technology, 2020, 20(5):213-221.
[16] 刘昕茹. 荞麦麸皮多酚的强化提取及其复合物的性质研究[D]. 天津: 天津科技大学, 2022.
LIU X R. Enhanced extraction of polyphenols from buckwheat bran and study on the properties of its complex[D]. Tianjin: Tianjin University of Science & Technology, 2022.
[17] BAI X, ZHANG M L, ZHANG Y Y, et al. Effects of steaming, microwaving, and hot-air drying on the physicochemical properties and storage stability of oat bran[J]. Journal of Food Quality, 2021, 2021:4058645.
[18] 肖志刚, 王依凡, 段玉敏, 等. 挤压膨化技术对不同谷物蛋白功能性质影响的研究进展[J]. 粮食与油脂, 2020, 33(9):18-20.
XIAO Z G, WANG Y F, DUAN Y M, et al. Advances in the effects of extrusion technology on the functional properties of different cereal proteins[J]. Cereals & Oils, 2020, 33(9):18-20.
[19] LIU J, JIN S Y, SONG H D, et al. Effect of extrusion pretreatment on extraction, quality and antioxidant capacity of oat (Avena Sativa L.) bran oil[J]. Journal of Cereal Science, 2020, 95:102972.
[20] 郭新月, 张美莉, 霍瑞. 微粉碎协同挤压膨化处理燕麦麸皮的综合评价及应用[J]. 中国粮油学报, 2022, 37(9):117-123.
GUO X Y, ZHANG M L, HUO R. Comprehensive evaluation and application of combined processing of micro-pulverization and extrusion[J]. Journal of the Chinese Cereals and Oils Association, 2022, 37(9):117-123.
[21] 栗红瑜, 马晓凤, 许光映, 等. 不同加工工艺对燕麦麸显微结构及有效成分溶出影响[J]. 食品科学, 2007, 28(10):261-263.
LI H Y, MA X F, XU G Y, et al. Effects of different processing ways on microscopic structure and effective composites of oat bran[J]. Food Science, 2007, 28(10):261-263.
[22] ZHANG M, BAI X, ZHANG Z S. Extrusion process improves the functionality of soluble dietary fiber in oat bran[J]. Journal of Cereal Science, 2011, 54(1):98-103.
[23] NATHAKARANAKULE A, PAENGKANYA S, SOPONRONNARIT S. Durian chips drying using combined microwave techniques with step-down microwave power input[J]. Food and Bioproducts Processing, 2019, 116:105-117.
[24] 吴丽萍, 董康珍, 楚文靖, 等. 微波改性对燕麦麸膳食纤维结构及功能性质的影响[J]. 中国食品学报, 2021, 21(9):30-37.
WU L P, DONG K Z, CHU W J, et al. Effects of microwave modification on the structure and functional properties of oat bran dietary fiber[J]. Journal of Chinese Institute of Food Science and Technology, 2021, 21(9):30-37.
[25] KHASI R E, AZIZKHANI M. Evaluating the physicochemical properties of barley, oat, and Iranian rice bran treated by microwave[J]. Journal of Food Measurement and Characterization, 2022, 16(6):4573-4583.
[26] ALVIRA P, TOMÁS-PEJÓ E, BALLESTEROS M, et al. Pretreatment technologies for an efficient bioethanol production process based on enzymatic hydrolysis: A review[J]. Bioresource Technology, 2010, 101(13):4851-4861.
[27] WAN F C, FENG C F, LUO K Y, et al. Effect of steam explosion on phenolics and antioxidant activity in plants: A review[J]. Trends in Food Science & Technology, 2022, 124:13-24.
[28] 何晓琴, 李苇舟, 李富华, 等. 蒸汽爆破预处理在农产品加工副产物综合利用中的应用[J]. 食品与发酵工业, 2019, 45(8):252-257.
HE X Q, LI W Z, LI F H, et al. Application of steam-explosion pretreatment in utilizing agricultural by-products[J]. Food and Fermentation Industries, 2019, 45(8):252-257.
[29] MA C, NI L Y, GUO Z B, et al. Principle and application of steam explosion technology in modification of food fiber[J]. Foods, 2022, 11(21):3370.
[30] HELENO S A, MARTINS A, QUEIROZ M J R P, et al. Bioactivity of phenolic acids: Metabolites versus parent compounds: A review[J]. Food Chemistry, 2015, 173:501-513.
[31] LIU C Y, SUN Y Y, JIA Y Q, et al. Effect of steam explosion pretreatment on the structure and bioactivity of Ampelopsis grossedentata polysaccharides[J]. International Journal of Biological Macromolecules, 2021, 185:194-205.
[32] ZHU L, YU B, CHEN H, et al. Comparisons of the micronization, steam explosion, and gamma irradiation treatment on chemical composition, structure, physicochemical properties, and in vitro digestibility of dietary fiber from soybean hulls[J]. Food Chemistry, 2022, 366:130618.
[33] CHEN Y S, SHAN S R, CAO D M, et al. Steam flash explosion pretreatment enhances soybean seed coat phenolic profiles and antioxidant activity[J]. Food Chemistry, 2020, 319:126552.
[34] 田晓红, 谭斌, 翟小童, 等. 蒸汽爆破技术在全谷物食品加工中的应用[J]. 中国粮油学报, 2022, 37(5):16-23.
TIAN X H, TAN B, ZHAI X T, et al. Application of steam explosion technology in whole grain food processing[J]. Journal of the Chinese Cereals and Oils Association, 2022, 37(5):16-23.
[35] KONG F, WANG L, CHEN H Z, et al. Improving storage property of wheat bran by steam explosion[J]. International Journal of Food Science & Technology, 2021, 56(1):287-292.
[36] GONG P, HUANG Z H, GUO Y X, et al. The effect of superfine grinding on physicochemical properties of three kinds of mushroom powder[J]. Journal of Food Science, 2022, 87(8):3528-3541.
[37] 胡龙彪, 翟晓娜, 李媛媛, 等. 超微粉碎技术在农副产品中的应用进展[J]. 食品科技, 2023, 48(2):92-99.
HU L B, ZHAI X N, LI Y Y, et al. Application progress of superfine grinding in agricultural and sideline prouducts: A review[J]. Food Science and Technology, 2023, 48(2):92-99.
[38] 程敏, 刘保国, 王攀, 等. 小麦麸皮超微粉碎技术研究进展[J]. 河南工业大学学报(自然科学版), 2017, 38(6):123-130.
CHENG M, LIU B G, WANG P, et al. Research progress on superfine grinding technology of wheat bran[J]. Journal of Henan University of Technology (Natural Science Edition), 2017, 38(6):123-130.
[39] 申瑞玲, 程珊珊, 张勇. 微粉碎对燕麦麸皮营养成分及物理特性的影响[J]. 粮食与饲料工业, 2008(3):17-18.
SHEN R L, CHENG S S, ZHANG Y. Effects of fine grinding on nutrient components and physical characteristics of oat bran[J]. Cereal & Feed Industry, 2008(3):17-18.
[40] ZHANG Y K, ZHANG M L, GUO X Y, et al. Improving the adsorption characteristics and antioxidant activity of oat bran by superfine grinding[J]. Food Science & Nutrition, 2022, 11(1):216-227.
[41] GAO W J, CHEN F, WANG X, et al. Recent advances in processing food powders by using superfine grinding techniques: A review[J]. Comprehensive Reviews in Food Science and Food Safety, 2020, 19(4):2222-2255.
[42] 黄晟. 亚微米级小麦麸皮不溶性膳食纤维的研究[D]. 无锡: 江南大学, 2009.
HUANG S. Study on insoluble dietary fiber from submicron wheat bran[D]. Wuxi: Jiangnan University, 2009.
[43] 黄晟, 朱科学, 钱海峰, 等. 超微及冷冻粉碎对麦麸膳食纤维理化性质的影响[J]. 食品科学, 2009, 30(15):40-44.
HUANG S, ZHU K X, QIAN H F, et al. Effects of ultrafine comminution and freeze-grinding on physico-chemical properties of dietary fiber prepared from wheat bran[J]. Food Science, 2009, 30(15):40-44.
[44] PULIDO R, BRAVO L, SAURA-CALIXTO F. Antioxidant activity of dietary polyphenols as determined by a modified ferric reducing/antioxidant power assay[J]. Journal of Agricultural and Food Chemistry, 2000, 48(8):3396-3402.
[45] 李治. 不同处理方式对小麦麸皮理化性质影响的研究[D]. 天津: 天津科技大学, 2018.
LI Z. Effects of different treatments on physicochemical properties of wheat bran[D]. Tianjin: Tianjin University of Science & Technology, 2018.
[46] WANG H, HUANG T, TU Z, et al. The adsorption of lead(II) ions by dynamic high pressure micro-fluidization treated insoluble soybean dietary fiber[J]. Journal of Food Science and Technology, 2016, 53(6):2532-2539.
[47] GUO X J, CHEN M S, LI Y T, et al. Modification of food macromolecules using dynamic high pressure microfluidization: A review[J]. Trends in Food Science & Technology, 2020, 100:223-234.
[48] WANG T, RADDATZ J, CHEN G B. Effects of microfluidization on antioxidant properties of wheat bran[J]. Journal of Cereal Science, 2013, 58(3):380-386.
[49] WANG L, WU J, LUO X H, et al. Dynamic high-pressure microfluidization treatment of rice bran: Effect on Pb(II) ions adsorption in vitro[J]. Journal of Food Science, 2018, 83(7):1980-1989.
[50] 宋伟, 温瑞雪, 罗卓婷, 等. 微生物发酵提升燕麦营养品质研究进展[J]. 中国粮油学报, 2023, 38(7):228-237.
SONG W, WEN R X, LUO Z T, et al. Advances in fermentation derived improvements of nutritional function of oats[J]. Journal of the Chinese Cereals and Oils Association, 2023, 38(7):228-237.
[51] 王宝石, 谭凤玲, 李林波, 等. 生物处理策略改善麸皮酚类化合物的生物可及性[J]. 中国生物工程杂志, 2020, 40(12):88-94.
WANG B S, TAN F L, LI L B, et al. Biological treatment strategy improves the bio-accessibility of bran phenols[J]. China Biotechnology, 2020, 40(12):88-94.
[52] WANG M, LEI M, SAMINA N, et al. Impact of Lactobacillus plantarum 423 fermentation on the antioxidant activity and flavor properties of rice bran and wheat bran[J]. Food Chemistry, 2020, 330:127156.
[53] LIU G D, QU Y B. Engineering of filamentous fungi for efficient conversion of lignocellulose: Tools, recent advances and prospects[J]. Biotechnology Advances, 2019, 37(4):519-529.
[54] CĂLINOIU L F, CĂTOI A F, VODNAR D C. Solid-state yeast fermented wheat and oat bran as A route for delivery of antioxidants[J]. Antioxidants, 2019, 8(9):372.
[55] 张玉良, 田晶, 徐龙权, 等. 黑曲霉固体发酵法提取燕麦麸中β-葡聚糖[J]. 大连工业大学学报, 2013, 32(3):173-175.
ZHANG Y L, TIAN J, XU L Q, et al. Extraction of β-glucan from oat bran by Aspergillus niger solid-state fermentation[J]. Journal of Dalian Polytechnic University, 2013, 32(3):173-175.
[56] TU J, ZHAO J, LIU G H, et al. Solid state fermentation by Fomitopsis pinicola improves physicochemical and functional properties of wheat bran and the bran-containing products[J]. Food Chemistry, 2020, 328:127046.
[57] PROSEKOV A, BABICH O, KRIGER O, et al. Functional properties of the enzyme-modified protein from oat bran[J]. Food Bioscience, 2018, 24:46-49.
[58] LIU X, SUO K K, WANG P, et al. Modification of wheat bran insoluble and soluble dietary fibers with snail enzyme[J]. Food Science and Human Wellness, 2021, 10(3):356-361.
[59] XUE Y M, CUI X B, ZHANG Z H, et al. Effect of β-endoxylanase and α-arabinofuranosidase enzymatic hydrolysis on nutritional and technological properties of wheat brans[J]. Food Chemistry, 2020, 302:125332.
[60] ZHUANG M, LI G H, WANG X Y, et al. Structural property of extractable proteins and polysaccharides in wheat bran following a dual-enzymatic pretreatment and corresponding functionality[J]. International Journal of Biological Macromolecules, 2024, 255:128100.
[61] LIU L, WEN W, ZHANG R F, et al. Complex enzyme hydrolysis releases antioxidative phenolics from rice bran[J]. Food Chemistry, 2017, 214:1-8.
[62] 李璐, 甘露, 王永祥, 等. 一种燕麦麸皮的制备方法: CN115428889A[P]. 2022-12-06.
LI L, GAN L, WANG Y X, et al.The invention relates to a preparation method of oat bran:CN115428889A[P]. 2022-12-06.
[63] 刘静雪, 李凤林, 王英臣, 等. 燕麦麸膳食纤维挤出改性工艺[J]. 食品工业, 2019, 40(5):21-24.
LIU J X, LI F L, WANG Y C, et al. Extrusion modification of oat bran dietary fiber[J]. The Food Industry, 2019, 40(5):21-24.
[64] 舒恒, 蒋旭, 王新康, 等. 白燕2号燕麦的双螺杆挤出物的理化特性分析[J]. 食品科学, 2016, 37(15):83-87.
SHU H, JIANG X, WANG X K, et al. Analysis of physicochemical properties of twin-screw extruded oats of the cultivar ‘baiyan No. 2’[J]. Food Science, 2016, 37(15):83-87.
[65] KONG F, WANG L, GAO H F, et al. Process of steam explosion assisted superfine grinding on particle size, chemical composition and physico-chemical properties of wheat bran powder[J]. Powder Technology, 2020, 371:154-160.
[66] LIU L Y, ZHAO M L, LIU X X, et al. Effect of steam explosion-assisted extraction on phenolic acid profiles and antioxidant properties of wheat bran[J]. Journal of the Science of Food and Agriculture, 2016, 96(10):3484-3491.
[67] 张亚琨, 张美莉, 郭新月. 微粉碎对燕麦麸皮功能性成分及抗氧化性的影响[J]. 中国食品学报, 2021, 21(11):22-28.
ZHANG Y K, ZHANG M L, GUO X Y. Effect of micronization on the functional components and antioxidant properties in oat bran[J]. Journal of Chinese Institute of Food Science and Technology, 2021, 21(11):22-28.
[68] DE BONDT Y, LIBERLOO I, ROYE C, et al. The effect of wet milling and cryogenic milling on the structure and physicochemical properties of wheat bran[J]. Foods, 2020, 9(12):1755.
[69] CĂLINOIU L F, CĂTOI A F, VODNAR D C. Solid-state yeast fermented wheat and oat bran as A route for delivery of antioxidants[J]. Antioxidants, 2019, 8(9):372.
[70] LI Y Q, ZHANG Y Z, DONG L Z, et al. Fermentation of Lactobacillus fermentum NB02 with feruloyl esterase production increases the phenolic compounds content and antioxidant properties of oat bran[J]. Food Chemistry, 2024, 437:137834.
[71] CHAKRABORTY P, WITT T, HARRIS D, et al. Texture and mouthfeel perceptions of a model beverage system containing soluble and insoluble oat bran fibres[J]. Food Research International, 2019, 120:62-72.
[72] 顾笑笑, 张茂龙, 赵龙, 等. 全谷物冲调粉高效加工技术研究[J]. 食品与机械, 2013, 29(6):207-210.
GU X X, ZHANG M L, ZHAO L, et al. Study on high efficient processing technology of whole grain powder[J]. Food & Machinery, 2013, 29(6):207-210.
[73] 李雪帆. 燕麦麸皮杂粮冲调粉的研制[D]. 太谷: 山西农业大学, 2016.
LI X F. Development of oat bran mixed grain blending powder[D]. Taigu: Shanxi Agricultural University, 2016.
[74] 郭新月, 张美莉. 挤压膨化对燕麦麸皮物理特性的影响[J]. 食品科技, 2021, 46(8):134-140.
GUO X Y, ZHANG M L. Effect of extrusion on the physical properties of oat bran[J]. Food Science and Technology, 2021, 46(8):134-140.
[75] 王海林. 改性燕麦粉在发酵型燕麦乳中的应用及机理研究[D]. 福州: 福建师范大学, 2018.
WANG H L. Study on the application and mechanism of modified oat flour in fermented oat milk[D]. Fuzhou: Fujian Normal University, 2018.
[76] PATRA T, OLSEN K, RINNAN Å. A multivariate perspective on the stability of oat-based drinks assessed by spectroscopy[J]. Food Hydrocolloids, 2022, 131:107831.
[77] 吴丽萍, 孙虹, 董康珍, 等. 改性燕麦麸水溶性膳食纤维对发酵乳品质及抗氧化活性的影响[J]. 食品与生物技术学报, 2021, 40(9):40-49.
WU L P, SUN H, DONG K Z, et al. Effects of modified oat bran soluble dietary fiber on quality and antioxidant activity of fermented milk[J]. Journal of Food Science and Biotechnology, 2021, 40(9):40-49.
[78] 《2023中国燕麦奶行业白皮书》正式发布[J]. 餐饮世界, 2023(7):73.
The White Paper on Oat Milk Industry in China in 2023 was officially released[J]. World Cuisine, 2023(7):73.
[79] 陶欣然. 燕麦奶的开发、功能性及货架期研究[D]. 武汉: 华中农业大学, 2022.
TAO X R. Study on development, functionality and shelf life of oat milk[D]. Wuhan: Huazhong Agricultural University, 2022.
[80] ROSA-SIBAKOV N, DE OLIVEIRA CARVALHO M J, LILLE M, et al. Impact of enzymatic hydrolysis and microfluidization on the techno-functionality of oat bran in suspension and acid milk gel models[J]. Foods, 2022, 11(2):228.