Enzymatic hydrolysis of soy proteins and the hydrolysates utilisation

文献类型: 外文期刊

第一作者: Sun, Xiang Dong

作者: Sun, Xiang Dong

作者机构:

关键词: Aglycones;debittering;degree of hydrolysis;enzymatic hydrolysis;glycosides;soy proteins

期刊名称:INTERNATIONAL JOURNAL OF FOOD SCIENCE AND TECHNOLOGY ( 影响因子:3.713; 五年影响因子:3.408 )

ISSN: 0950-5423

年卷期: 2011 年 46 卷 12 期

页码:

收录情况: SCI

摘要: Soy proteins are very important protein source for human being and livestock. Enzymatic hydrolysis of soy protein can enhance or reduce its functional properties and improve its nutritious value. Soy protein hydrolysates were primarily used as functional food ingredients, flavour and nutritious enhancers, protein substitute, and clinical products. Conditions for hydrolysis were usually mild, whereas recently high pressure treatment attracted more interest. Degree of hydrolysis (DH) was usually between 1% and 39.5%. The main problem associated with proteolytic hydrolysis of soy protein was production of bitter taste, hydrolysates coagulation and high cost of enzymes. Bitterness reduction can be achieved by control of DH, selective separation of bitter peptides from hydrolysates, treatment of hydrolysates with exo-peptidases, addition of various components [adenosine monophosphate (AMP), some amino acids, monosodium glutamate (MSG), etc.] to block or mask the bitter taste, and modification of taste signalling. Hydrolysates coagulation can be resolved by selecting appropriate enzymes and by applying immobilisation technology the production cost can be reduced. Enzymatic hydrolysis also enhances bioactivity of soy proteins through conversion of glycosides to aglycones, increasing antioxidant and immunoregulatory properties. Finally, future works have been discussed.

分类号:

  • 相关文献

[1]An efficient synthesis of a dimer of the tetrasaccharide present in motif B of the Mycobacterium tuberculosis cell wall. Ning, J.

[2]FTIR spectroscopic characterization of soy proteins obtained through AOT reverse micelles. Chen, Xiangyan,Ru, Yi,Chen, Fengliang,Wang, Xianchang,Zhao, Xiaoyan,Ao, Qiang.

[3]Influence of hydrolysis behaviour and microfluidisation on the functionality and structural properties of collagen hydrolysates. Zhang, Yehui,Zhang, Yousheng,Liu, Xueming,Chen, Zhiyi,Cheng, Jingrong,Huang, Lihua.

[4]Effect of ultrasound pre-treatment on the characterization and properties of collagen extracted from soft-shelled turtle (Pelodiscus sinensis). Zou, Ye,Li, Pengpeng,Zhang, Muhan,Sun, Zhilan,Sun, Chong,Xu, Weimin,Wang, Daoying,Xu, Pingping,Cai, Panpan,Wang, Daoying.

[5]Hydrolysis of glycosidically bound volatiles from apple leaves (cv. Anna) by Aspergillus niger beta-glucosidase affects the behavior of codling moth (Cydia pomonella L.). Wei, S,Reuveny, H,Bravdo, BA,Shoseyov, O. 2004

[6]Chemical Constituents and Biological Activities of Plants from the Genus Ligustrum. She, Gai-Mei,Gao, Bei-Bei,She, Dong-Mei. 2013

[7]Preparative Separation and Purification of Four Glycosides from Gentianae radix by High-Speed Counter-Current Chromatography and Comparison of Their Anti-NO Production Effects. Chen, Bao,Peng, Yinghua,Wang, Xinhui,Li, Zhiman,Sun, Yinshi,Chen, Bao. 2017

[8]Convenient synthesis of alkyl and phenylalkyl beta-D-glucopyranosides using facile and novel biocatalysts of plant origin. Yang, Rongling,Wang, Zhaoyu,Bi, Yanhong,Jia, Jianbo,Zhao, Xiangjie,Du, Wenying,Liu, Xueming.

[9]Manipulating volatile emission in tobacco leaves by expressing Aspergillus niger beta-glucosidase in different subcellular compartments. Wei, S,Marton, I,Dekel, M,Shalitin, D,Lewinsohn, E,Bravdo, BA,Shoseyov, O.

[10]Preparation of Antioxidant Peptides from Salmon Byproducts with Bacterial Extracellular Proteases. Wu, Ribang,Liu, Dan,Huang, Jiafeng,Zhang, Jiang,Xiao, Xiao,Lei, Ming,Chen, Yuelin,He, Hailun,Chen, Leilei,Chen, Leilei. 2017

[11]High pressure assist-alkali pretreatment of cotton stalk and physiochemical characterization of biomass. Du, Shuang-kui,Zhu, Xinna,Wang, Hua,Zhou, Dayun,Yang, Weihua,Xu, Hongxia.

[12]Enhanced Enzymatic Hydrolysis of Poplar after Combined Dilute NaOH and Fenton Pretreatment. Zhang, Chunyan,Wang, Shanshan,Cui, Zhongyi,Liu, Ping,Pei, Haisheng. 2016

[13]Development of the cuticular membrane and biomechanical properties in Hupingzao (Ziziphus jujuba Mill. 'Hupingzao'). Li, Na,Song, Yuqin,Chen, Yuanyuan,Li, Liulin,Li, Jie,Xue, Xiaofang. 2018

[14]Properties of Klebsiella phage P13 and associated exopolysaccharide depolymerase. Liu Yang,Chai Zihan,Shang Anqi,Mou Haijin,Li Guiyang,Mo Zhaolan. 2014

[15]ENZYMATIC-HYDROLYSIS OF WHEAT-STRAW IRRADIATED BY ELECTRON-BEAM IN PRESENCE OF PERACETIC-ACID SOLUTION. LU, ZX,KUMAKURA, M. 1995

[16]Effects of different enzymatic hydrolysis methods on the bioactivity of peptidoglycan in Litopenaeus vannamei. Song Xiaoling,Zhang Yue,Wei Song,Huang Jie,Zhang Yue. 2013

[17]Effect of Ionic Liquid Pretreatment on the Structure and Enzymatic Saccharification of Cassava Stillage Residues. Cui, Lihong,Li, Jihua,Wang, Qinghuang,Wang, Meng. 2014

[18]Preliminary evaluation of five elephant grass cultivars harvested at different time for sugar production. Li, Yuanyuan,Zhang, Yelong,Zheng, Hongbo,Zhang, Hongman,Du, Jian,Huang, He,Wu, Juanzi. 2015

[19]Production of xylooligosaccharides from the steam explosion liquor of corncobs coupled with enzymatic hydrolysis using a thermostable xylanase. Teng, Chao,Jiang, Zhengqiang,Fan, Guangsen,Yan, Qiaojuan,Shi, Bo. 2010

[20]Optimization of butanol production from corn straw hydrolysate by Clostridium acetobutylicum using response surface method. Lin YouSheng,Wang XuMing,Sun XiaoHong,Lin YouSheng,Wang Jing. 2011

作者其他论文 更多>>