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聚电解质生物材料相互作用为口服胰岛素递送提供纳米颗粒载体。

Polyelectrolyte biomaterial interactions provide nanoparticulate carrier for oral insulin delivery.

作者信息

Reis Catarina Pinto, Ribeiro António J, Veiga Francisco, Neufeld Ronald J, Damgé Christiane

机构信息

Laboratory of Pharmaceutical Technology, Faculty of Pharmacy, University of Coimbra, Portugal.

出版信息

Drug Deliv. 2008 Feb;15(2):127-39. doi: 10.1080/10717540801905165.

Abstract

Nanospheres are being developed for the oral delivery of peptide-based drugs such as insulin. Mucoadhesive, biodegradable, biocompatible, and acid-protective biomaterials are described using a combination of natural polyelectrolytes, with particles formulated through nanoemulsion dispersion followed by triggered in situ gel complexation. Biomaterials meeting these criteria include alginate, dextran, chitosan, and albumin in which alginate/dextran forms the core matrix complexed with chitosan and albumin coat. Smaller size and higher albumin-based acid-protective formulation was orally administered to diabetic rats and glucose reduction and physiological response analyzed. Insulin encapsulation efficiency was 90, 82, and 66% for uncoated, chitosan-coated, and albumin-chitosan-coated alginate nanospheres, respectively. The choice of coating polymer seems to influence insulin release profile and to be crucial to prevent peptic digestion. Physiological response following oral delivery showed that insulin albumin-chitosan-coated alginate nanospheres reduced glycemia approximately 72% of basal values. Albumin serves as an important enteric coating providing acid- and protease protection enabling uptake of active drug following oral dosage.

摘要

纳米球正在被开发用于口服递送基于肽的药物,如胰岛素。使用天然聚电解质的组合来描述具有粘膜粘附性、可生物降解、生物相容性和酸保护性能的生物材料,通过纳米乳液分散,随后引发原位凝胶络合来制备颗粒。符合这些标准的生物材料包括藻酸盐、葡聚糖、壳聚糖和白蛋白,其中藻酸盐/葡聚糖形成与壳聚糖和白蛋白包衣络合的核心基质。将较小尺寸且基于白蛋白的具有酸保护性能的制剂口服给予糖尿病大鼠,并分析血糖降低情况和生理反应。未包衣、壳聚糖包衣和白蛋白-壳聚糖包衣的藻酸盐纳米球的胰岛素包封率分别为90%、82%和66%。包衣聚合物的选择似乎会影响胰岛素释放曲线,并且对于防止胃蛋白酶消化至关重要。口服给药后的生理反应表明,白蛋白-壳聚糖包衣的藻酸盐纳米球使血糖降低至基础值的约72%。白蛋白作为一种重要的肠溶包衣,提供酸和蛋白酶保护,使口服给药后能够吸收活性药物。

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