Casali Institute of Applied Chemistry, The Institute of Chemistry, The Hebrew University of Jerusalem, Edmond J. Safra Campus, Givat Ram, Jerusalem 91904, Israel.
Colloids Surf B Biointerfaces. 2010 Sep 1;79(2):377-83. doi: 10.1016/j.colsurfb.2010.04.021. Epub 2010 Apr 29.
In this study we have attempted to understand the nature of "charge interactions" between two negatively charged biopolymers (whey protein isolate, WPI and gum Arabic, GA) and, consequently, why their mixture exhibits better interfacial activity. Surface tension (gamma(0)) measurements indicated that at ca. 1 wt.% of the biopolymer mixture (3:1 wt. ratio) the air/water surface is saturated. At 5 wt.% the gamma(0) of the mixture is lower than the calculated co-operative value. The zeta-potential measurements revealed that the isoelectric point of the WPI:GA 3:1 wt. ratio mixture is 3.8. The zeta-potential values up to pH 6 are below those calculated. Similarly, the electrical conductivities of the mixture are lower than those calculated. All these measurements indicate: (1) partial charge neutralization in spite of the fact that both biopolymers are negative or (2) partial charge-charge interactions between the two biopolymers. The thermal heating behavior of the frozen water in the aqueous mixture studied by DSC (heating cycle of the frozen sample) clearly indicates that the two biopolymers are interacting. We calculated the enthalpy, the free energy and the chemical potential of the interactions. We found that the interactions of the biopolymers are rather weak. They are likely derived from some local positively charged domains (pH 7) on the protein that neutralize some of the negatively charged GA. These interactions form weak charge adducts. These charge adducts are sufficient to improve its adsorption into the oil-water interface and enhance the emulsion stability.
在这项研究中,我们试图了解两种带负电荷的生物聚合物(乳清蛋白分离物(WPI)和阿拉伯胶(GA))之间的“电荷相互作用”的性质,以及为什么它们的混合物表现出更好的界面活性。表面张力(γ(0))测量表明,在约 1wt.%的生物聚合物混合物(3:1wt.比)时,空气/水表面饱和。在 5wt.%时,混合物的γ(0)低于计算的协同值。ζ-电位测量表明,WPI:GA 3:1wt.比混合物的等电点为 3.8。ζ-电位值在 pH 6 以下低于计算值。同样,混合物的电导率也低于计算值。所有这些测量表明:(1)尽管两种生物聚合物都是负电荷,但部分电荷中和,或者(2)两种生物聚合物之间存在部分电荷-电荷相互作用。通过 DSC(冷冻样品的加热循环)研究水相混合物中冷冻水的热加热行为清楚地表明,两种生物聚合物在相互作用。我们计算了相互作用的焓、自由能和化学势。我们发现生物聚合物之间的相互作用相当弱。它们可能源自蛋白质上的一些局部带正电荷的域(pH 7),这些域中和了一些带负电荷的 GA。这些相互作用形成了弱电荷加合物。这些电荷加合物足以改善其在油-水界面上的吸附并增强乳液稳定性。