Laboratoire d'Ingénierie des Biomolécules (LIBio), ENSAIA-UniversitédeLorraine, 2 avenue de la forêt de Haye, TSA 40602, 54518 Vandœuvre-lès-Nancy Cedex, France.
Laboratoire d'Ingénierie des Biomolécules (LIBio), ENSAIA-UniversitédeLorraine, 2 avenue de la forêt de Haye, TSA 40602, 54518 Vandœuvre-lès-Nancy Cedex, France.
J Colloid Interface Sci. 2015 Feb 15;440:1-8. doi: 10.1016/j.jcis.2014.10.042. Epub 2014 Nov 1.
Alginate capsules have several applications. Their functionality depends considerably on their permeability, chemical and mechanical stability. Consequently, the creation of composite system by addition of further components is expected to control mechanical and release properties of alginate capsules.
Alginate and alginate-sodium caseinate composite liquid-core capsules were prepared by a simple extrusion. The influence of the preparation pH and sodium caseinate concentration on capsules physico-chemical properties was investigated.
Results showed that sodium caseinate influenced significantly capsules properties. As regards to the membrane mechanical stability, composite capsules prepared at pH below the isoelectric point of sodium caseinate exhibited the highest surface Young's modulus, increasing with protein content, explained by potential electrostatic interactions between sodium caseinate amino-groups and alginate carboxylic group. The kinetic of cochineal red A release changed significantly for composite capsules and showed a pH-responsive release. Sodium caseinate-dye mixture studied by absorbance and fluorescence spectroscopy confirmed complex formation at pH 2 by electrostatic interactions between sodium caseinate tryptophan residues and cochineal red sulfonate-groups. Consequently, the release mechanism was explained by membrane adsorption process. This global approach is useful to control release mechanism from macro and micro-capsules by incorporating guest molecules which can interact with the entrapped molecule under specific conditions.
海藻酸盐胶囊有多种应用。其功能很大程度上取决于其渗透性、化学和机械稳定性。因此,通过添加其他成分来创建复合体系有望控制海藻酸盐胶囊的机械性能和释放性能。
通过简单的挤压法制备了海藻酸钠和海藻酸钠-酪蛋白酸钠复合液芯胶囊。研究了制备 pH 值和酪蛋白酸钠浓度对胶囊理化性质的影响。
结果表明,酪蛋白酸钠显著影响胶囊的性质。就膜的机械稳定性而言,在低于酪蛋白酸钠等电点的 pH 值下制备的复合胶囊表现出最高的表面杨氏模量,随着蛋白质含量的增加而增加,这可以解释为酪蛋白酸钠氨基基团和海藻酸钠羧酸基团之间的潜在静电相互作用。胭脂红 A 的释放动力学对复合胶囊发生了显著变化,并显示出 pH 响应性释放。通过吸收和荧光光谱研究了酪蛋白酸钠-染料混合物,证实了在 pH 2 时通过静电相互作用形成了复合物,其中酪蛋白酸钠色氨酸残基与胭脂红磺酸基团相互作用。因此,通过膜吸附过程解释了释放机制。这种整体方法可用于通过掺入可以在特定条件下与包封分子相互作用的客体分子来控制宏观和微观胶囊的释放机制。