Key Laboratory of Dairy Science, Ministry of Education, Northeast Agricultural University, Harbin150030, China.
College of Food Science, Heilongjiang Bayi Agricultural University, Daqing163319, China.
J Dairy Res. 2020 Feb;87(1):103-109. doi: 10.1017/S0022029919000876. Epub 2020 Feb 3.
We compared the electrical conductivity from two different aggregates of whey protein concentrates (WPC) film: conventional amorphous aggregation at natural pH (pH 6.5) and amyloid fibrils at a low pH (pH 2.0) far away from the isoelectric point. The two types of film fabricated by these solutions with different aggregate structures showed large variations in electrical conductivity and other properties. The WPC fibril film (pH 2.0) exhibited higher electrical conductivity than that of the conventional WPC film (pH 6.5), improved mechanical properties and oil resistance, due to varying morphology, higher surface hydrophobicity and more (absolute value) surface charge of film-forming solutions. The evidence from this study suggests that fibrilized WPC with high-ordered and β-sheets-rich structures fabricated high electrical conductivity film, which broadens the potential application of fibrils as functional bio-nanomaterials.
我们比较了两种不同乳清蛋白浓缩物(WPC)聚集物的电导率:自然 pH 值(6.5)下的常规无定形聚集和远离等电点的低 pH 值(2.0)下的淀粉样纤维。由这些具有不同聚集结构的溶液制成的两种类型的薄膜在电导率和其他性能上表现出很大的差异。由于形态不同、更高的表面疏水性和更多(绝对值)的薄膜形成溶液表面电荷,WPC 纤维薄膜(pH 2.0)的电导率高于常规 WPC 薄膜(pH 6.5),机械性能和耐油性得到改善。这项研究的证据表明,具有高有序性和富含β-折叠结构的纤维状 WPC 可制造高电导率薄膜,这拓宽了纤维作为功能性生物纳米材料的潜在应用。