| Literature DB >> 26616937 |
Kaiqiang Wang1, Shuizhong Luo2, Jing Cai2, Qiaoqiao Sun1, Yanyan Zhao2, Xiyang Zhong2, Shaotong Jiang2, Zhi Zheng3.
Abstract
The rheological behavior and thermal properties of wheat gluten following partial hydrolysis using Alcalase and subsequent microbial transglutaminase (MTGase) cross-linking were investigated. The wheat gluten storage modulus (G') and thermal denaturation temperature (Tg) were significantly increased from 2.26 kPa and 54.43°C to 7.76 kPa and 57.69°C, respectively, by the combined action of partial hydrolysis (DH 0.187%) and cross-linking. The free SH content, surface hydrophobicity, and secondary structure analysis suggested that an appropriate degree of Alcalase-based hydrolysis allowed the compact wheat gluten structure to unfold, increasing the β-sheet content and surface hydrophobicity. This improved its molecular flexibility and exposed additional glutamine sites for MTGase cross-linking. SEM images showed that a compact 3D network formed, while SDS-PAGE profiles revealed that excessive hydrolysis resulted in high-molecular-weight subunits degrading to smaller peptides, unsuitable for cross-linking. It was also demonstrated that the combination of Alcalase-based partial hydrolysis with MTGase cross-linking might be an effective method for modifying wheat gluten rheological behavior and thermal properties.Entities:
Keywords: Cross-linking; Partial hydrolysis; Physicochemical properties; Structure; Wheat gluten
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Year: 2015 PMID: 26616937 DOI: 10.1016/j.foodchem.2015.10.123
Source DB: PubMed Journal: Food Chem ISSN: 0308-8146 Impact factor: 7.514