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海藻酸钠、壳聚糖和卵清蛋白的自组装聚电解质纳米复合物

Self-assembled Polyelectrolyte Nanocomplexes of Alginate, Chitosan and Ovalbumin.

作者信息

Cegnar Mateja, Kerč Janez

出版信息

Acta Chim Slov. 2010 Jun;57(2):431-41.

Abstract

Polyelectrolyte complex (PEC) nanoparticles for delivering model protein drug ovalbumin were prepared from two polysaccharide polymers, alginate and chitosan. The parameters influencing the complex formation were characterised using colloid titration in combination with dynamic light scattering. The polyelectrolyte interactions and morphology of the formed complexes were verified by differential scanning calorimetry and scanning electron microscopy, respectively. The PEC formation was predominantly pH- and concentration-dependent. The complexation of ovalbumin with a negatively charged alginate occurred only at a pH below the isoelectric point of the ovalbumin. After the complexation, negatively charged complexes of alginate and ovalbumin were further coated with chitosan. The optimal composition of the PEC, yielding 280 nm sized particles having a zeta potential -40 mV, was determined for alginate:ovalbumin:chitosan in a mass ratio 1: 1: 0.1, respectively, giving their final concentration 0.5: 0.5: 0.05mg/ml. The loading of ovalbumin in the PEC depended on the initial amount of ovalbumin used to produce the PEC, and ranged from 7-38% for different formulations, however, the association efficiency remained pretty similar for all formulations, i.e. 80-85%. Mild formulation conditions, nanometre-sized particles, and a high protein association efficiency are promising factors towards the development of a delivery system for proteins.

摘要

用于递送模型蛋白药物卵清蛋白的聚电解质复合物(PEC)纳米颗粒由两种多糖聚合物海藻酸盐和壳聚糖制备而成。使用胶体滴定结合动态光散射对影响复合物形成的参数进行了表征。分别通过差示扫描量热法和扫描电子显微镜对形成的复合物的聚电解质相互作用和形态进行了验证。PEC的形成主要取决于pH值和浓度。卵清蛋白与带负电荷的海藻酸盐的络合仅在低于卵清蛋白等电点的pH值下发生。络合后,海藻酸盐和卵清蛋白的带负电荷的复合物进一步用壳聚糖包被。确定了PEC的最佳组成,即海藻酸盐:卵清蛋白:壳聚糖的质量比分别为1:1:0.1,最终浓度为0.5:0.5:0.05mg/ml,可产生尺寸为280nm、zeta电位为-40mV的颗粒。PEC中卵清蛋白的负载量取决于用于制备PEC的卵清蛋白的初始量,不同配方的负载量范围为7-38%,然而,所有配方的结合效率保持相当相似,即80-85%。温和的配方条件、纳米尺寸的颗粒和高蛋白结合效率是开发蛋白质递送系统的有前景的因素。

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