4.6 Article

Tuning alginate β-lactoglobulin complex coacervation by modulating pH and temperature

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SOFT MATTER
卷 19, 期 8, 页码 1549-1559

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ROYAL SOC CHEMISTRY
DOI: 10.1039/d2sm01435a

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The complex coacervation between alginate and beta-lactoglobulin can be controlled by pH and temperature, making it suitable for different purposes. Detailed characterization of the coacervation process and particles provides insights into molecular interactions and the effects of external factors. These findings have implications for microencapsulation and drug delivery.
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 beta-lactoglobulin (beta-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 beta-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 < pK(a,alginate) and an uptake of protons at pH > pK(a,alginate) 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 beta-Lg molecule, respectively. By increasing the temperature to 65 degrees C, we discovered a secondary beta-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.

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