Chickpea peptide as a plant-based cryoprotectant in frozen dough: Insight into the water states, gluten structures, and storage stabilities

低温保护剂 面筋 食品科学 氨基酸 化学 冷冻干燥 生物 色谱法 生物化学 低温保存 细胞生物学 胚胎
作者
Xiangwei Zhu,Yingying Chen,Nan Zhang,Yufan Luo,Ruihao Peng,Lei Chen,Jianteng Xu,Yongxin Teng,Bin Li,Wenping Ding,Xi Chen
出处
期刊:Lebensmittel-Wissenschaft & Technologie [Elsevier BV]
卷期号:200: 116172-116172 被引量:21
标识
DOI:10.1016/j.lwt.2024.116172
摘要

The potentials of pulse peptides as cryoprotectants remain less exploited than other well-known applications, e.g., nutrient supplements, stabilizers, antioxidants etc. Thus, for the first time, this study screened a number of widely-used pulse peptides (pea, chickpea, lentil, mung bean, and white kidney bean) by evaluating their ice recrystallization inhibition (IRI) and thermal hysteresis (TH) activities. Then, chickpea peptide (CP) with the most prominent anti-freezing performance was selected for systematical evaluation of its cryoprotective effects on frozen dough in terms of water state, gluten structure, and storage stability. CP reduced the content of freezable water to 60% and unified the water distributions of frozen dough in a dose-dependent manner (0 to 6 g peptide per 100 g wheat flour). Freezing-induced changes on gluten disulfide bonds, secondary structures, and dough microstructures were also restrained. Accordingly, dumpling wrappers prepared from CP-added frozen dough manifested the reduced cracking rates (31% to 5%), increased toughness (68% to 79%), extensibility (82% to 92%), and cooking stabilities. CP was rich in basic amino acids (arginine, lysine, and histidine), accounting for 27% of total amino acids, which were responsible for its outstanding cryoprotective activity. Chickpea peptide might therefore be a good candidate for development of high-performance dough cryoprotectants.
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