Madsen Mikkel, Mohammad-Beigi Hossein, Westh Peter, Aachmann Finn L, Svensson Birte
Enzyme and Protein Chemistry, Technical University of Denmark, DK-2800 Kgs, Lyngby, Denmark.
Interfacial Enzymology, Department of Biotechnology and Biomedicine, Technical University of Denmark, DK-2800 Kgs, Lyngby, Denmark.
Soft Matter. 2023 Feb 22;19(8):1549-1559. doi: 10.1039/d2sm01435a.
The use of biomolecules in food matrices and encapsulation systems is, as in other areas, moving towards greener solutions and a center piece here is the complex coacervation between natural anionic polysaccharides and proteins. Both alginate and β-lactoglobulin (β-Lg) are used in different sectors and have been shown to coacervate at pH < 5.2. Albeit with increased interest, complex coacervation has almost exclusively been studied from a macromolecular perspective, and described as an interaction based on charge-charge attraction. Here, we show that through changes in pH and temperature, alginate β-Lg complex coacervation can be tuned to purpose. By detailed biophysical and chemical characterization of coacervation and coacervate particles, insights into the molecular interaction and effect of external factors are obtained. We find that carboxylate resonance stabilization causes a release of protons at pH < p and an uptake of protons at pH > p upon coacervation. Proton release and uptake were quantified at pH 2.65 and 4.00 by isothermal titration calorimetry to be 4 and 2 protons per β-Lg molecule, respectively. By increasing the temperature to 65 °C, we discovered a secondary β-Lg concentration dependent coacervation step, where the formed particles change into large assemblies driven by entropy. These findings bring new insights to complex coacervation and its applicability in microencapsulation and drug delivery.
与其他领域一样,食品基质和包封系统中生物分子的应用正朝着更绿色的解决方案发展,其中一个核心是天然阴离子多糖与蛋白质之间的复合凝聚。海藻酸盐和β-乳球蛋白(β-Lg)都在不同领域得到应用,并且已证明在pH < 5.2时会发生复合凝聚。尽管人们对此的兴趣日益增加,但复合凝聚几乎完全是从大分子角度进行研究的,并被描述为基于电荷-电荷吸引的相互作用。在此,我们表明通过改变pH值和温度,可以对海藻酸盐-β-Lg复合凝聚进行有针对性的调控。通过对凝聚和凝聚颗粒进行详细的生物物理和化学表征,我们获得了对分子相互作用以及外部因素影响的深入了解。我们发现,羧酸盐共振稳定作用导致在凝聚过程中pH < p时质子释放,pH > p时质子吸收。通过等温滴定量热法在pH 2.65和4.00下对质子释放和吸收进行定量,结果表明每个β-Lg分子分别释放4个和2个质子。将温度升高到65°C时,我们发现了一个二级β-Lg浓度依赖性凝聚步骤,在此过程中形成的颗粒会转变为由熵驱动的大聚集体。这些发现为复合凝聚及其在微胶囊化和药物递送中的应用带来了新的见解。