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采用 pH 循环策略制备豌豆蛋白/羧甲基纤维素复合物作为高内相乳液的稳定剂用于 3D 打印。

Pea protein/carboxymethyl cellulose complexes prepared using a pH cycle strategy as stabilizers of high internal phase emulsions for 3D printing.

机构信息

State Key Laboratory of Food Science and Technology, Jiangnan University, Wuxi, Jiangsu Province 214122, China; School of Food Science and Technology, Jiangnan University, Wuxi, Jiangsu Province 214122, China.

School of Food Science and Technology, Jiangnan University, Wuxi, Jiangsu Province 214122, China.

出版信息

Int J Biol Macromol. 2024 Jun;269(Pt 2):131967. doi: 10.1016/j.ijbiomac.2024.131967. Epub 2024 Apr 29.

Abstract

The development of food-grade high internal phase emulsions (HIPEs) for 3D printing and the replacement of animal fats have attracted considerable attention. In this study, in order to improve the rheological properties and stability of pea protein to prepare HIPE, pea protein/carboxymethyl cellulose (pH-PP/CMC) was prepared and subjected to pH cycle treatment to produce HIPEs. The results showed that pH cycle treatment and CMC significantly reduced the droplet size of HIPEs (from 143.33 to 12.10 μm). At higher CMC concentrations, the interfacial tension of the PP solution decreased from 12.84 to 11.71 mN/m without pH cycle treatment and to 10.79 mN/m with pH cycle treatment. The HIPEs with higher CMC concentrations subjected to pH cycle treatment showed shear thinning behavior and higher viscoelasticity and recovered their solid-like properties after being subjected to 50 % strain, indicating that they could be used for 3D printing. The 3D printing results showed that the pH-PP/CMC HIPE with 0.3 % CMC had the finest structure. Our work provides new insights into developing food-grade HIPEs and facilitating their use in 3D printing inks as nutrient delivery systems and animal fat substitutes.

摘要

为了改善豌豆蛋白的流变性和稳定性以制备 HIPE,本研究制备了豌豆蛋白/羧甲基纤维素(pH-PP/CMC)并进行 pH 循环处理以制备 HIPE。结果表明,pH 循环处理和 CMC 显著降低了 HIPE 的液滴尺寸(从 143.33 降至 12.10 μm)。在较高 CMC 浓度下,未经 pH 循环处理时,PP 溶液的界面张力从 12.84 降至 11.71 mN/m,经 pH 循环处理时降至 10.79 mN/m。经 pH 循环处理的具有较高 CMC 浓度的 HIPE 表现出剪切变稀行为和更高的粘弹性,并在经受 50%应变后恢复其固态特性,表明其可用于 3D 打印。3D 打印结果表明,0.3%CMC 的 pH-PP/CMC HIPE 具有最精细的结构。我们的工作为开发食品级 HIPE 并促进其在作为营养传递系统和动物脂肪替代品的 3D 打印油墨中的应用提供了新的思路。

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