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Modification of pea protein isolate for ultrasonic encapsulation of functional liquids

机译:豌豆蛋白分离物用于超声封装功能液体的改性

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摘要

This study reports on the ultrasonic processing of pea protein isolate (PPI) in phosphate-buffered saline (PBS, pH 7.4) and Tris/HCl (pH 8) buffer systems in order to modify its properties for use in the encapsulation of functional liquids. Tetradecane-filled microspheres were synthesized using ultrasonically-modified PPI as a shell material under high intensity 20 kHz ultrasound irradiation. Tetradecane was used as a model liquid, which could in principle be replaced by functional liquids such as vitamins, fish oil, etc. The solubility of water-insoluble globulin present in PPI was significantly improved in the first sonication step, which was confirmed by solubility measurements and sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) analysis. The hydrodynamic diameter measurements indicated that the dissolved pea proteins formed soluble aggregates. The size, size distribution, shell thickness, mechanical strength and yield of PPI microspheres were controlled by the variation of ultrasonic parameters in the first step. In terms of stability, the microspheres maintained a core-shell structure and their size remained unchanged after one-month storage at 4 degrees C. Most of the microspheres had a spherical shape with a smooth surface morphology. The shell thickness varied with the surface activity and solubility of PPI, which in turn were affected by sonication time. Average stiffness ranging from 9.5 to 22 mN m(-1) and average Young's modulus from 0.58 to 2.35 MPa were obtained by using atomic force microscopy (AFM). Disulphide crosslinking and noncovalent interactions played a role in the shell formation, also facilitating the storage stability of PPI microspheres.
机译:本研究报告了磷酸盐缓冲盐水(PPI)在磷酸盐缓冲盐水(PPI)和Tris / HCl(pH8)缓冲体系中的超声处理,以便改变其用于封装功能液体的性质。在高强度20kHz超声照射下,使用超声改性的PPI作为壳材料合成四癸烷填充的微球。四癸烷用作模型液体,原则上可能由维生素,鱼油等功能液体代替。在第一个超声处理步骤中,PPI中存在的水不溶性球蛋白存在的溶解度显着改善,其通过溶解度证实了这一超声处理步骤测量和十二烷基硫酸钠 - 聚丙烯酰胺凝胶电泳(SDS-PAGE)分析。流体动力学直径测量表明溶解的豌豆蛋白形成可溶性聚集体。通过第一步中的超声参数的变化来控制PPI微球的尺寸,尺寸分布,壳体厚度,机械强度和产率。在稳定性方面,微球保持核心壳结构,并且在4摄氏度的1个月储存后,它们的尺寸保持不变。大多数微球具有具有光滑表面形态的球形形状。壳体厚度随着PPI的表面活性和溶解度而变化,其又受超声时间的影响。通过使用原子力显微镜(AFM)获得的平均刚度为9.5至22mN m(-1)和平均杨氏模量,得到0.58至2.35MPa。二硫化物交联和非共价相互作用在壳体形成中发挥作用,还促进了PPI微球的储存稳定性。

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  • 来源
    《RSC Advances》 |2016年第108期|共11页
  • 作者单位

    Univ Melbourne Sch Chem Melbourne Vic 3010 Australia;

    Univ Melbourne Dept Biomol &

    Chem Engn Melbourne Vic 3010 Australia;

    Univ Melbourne Dept Biomol &

    Chem Engn Melbourne Vic 3010 Australia;

    Univ Melbourne Sch Chem Melbourne Vic 3010 Australia;

    Univ Melbourne Dept Biomol &

    Chem Engn Melbourne Vic 3010 Australia;

    Univ Melbourne Sch Chem Melbourne Vic 3010 Australia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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