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通过双分子层囊泡提高胰岛素的口服生物利用度:电荷和链长对顶端钠依赖性胆汁酸转运体(ASBT)摄取的影响。

Enhancing oral bioavailability of insulin through bilosomes: Implication of charge and chain length on apical sodium-dependent bile acid transporter (ASBT) uptake.

机构信息

Centre for Pharmaceutical Nanotechnology, Department of Pharmaceutics, National Institute of Pharmaceutical Education and Research (NIPER), Sector 67, S.A.S. Nagar (Mohali), Punjab, India.

Centre for Pharmaceutical Nanotechnology, Department of Pharmaceutics, National Institute of Pharmaceutical Education and Research (NIPER), Sector 67, S.A.S. Nagar (Mohali), Punjab, India.

出版信息

Int J Biol Macromol. 2023 Dec 1;252:126565. doi: 10.1016/j.ijbiomac.2023.126565. Epub 2023 Aug 26.

Abstract

This study investigates the impact of charge and chain length of bile salts in the bilosomes on the oral bioavailability of insulin (IN) by examining their uptake via the apical sodium-dependent bile acid transporter (ASBT). Deoxycholic acid bile salt was conjugated with different amino acids to create conjugates with varying charge and chain length, which were then embedded in liposomes. The resulting bilosomes had a particle size <400 nm, a PDI of 0.121 ± 0.03, and an entrapment efficiency of ∼70 %, while maintaining the chemical and conformational integrity of the loaded IN. Bilosomes also provided superior protection in biological fluids without compromising their biophysical attributes. Quantitative studies using the Caco-2 cell line demonstrated that anionic bilosomes were taken up more efficiently through ASBT than cationic bilosomes with 4- and 1.3-fold increase, respectively. Ex-vivo permeability studies corroborated these findings. In-vivo efficacy studies revealed a 1.6-fold increase in the AUC of IN with bilosomes compared to subcutaneous IN. The developed bilosomes were able to reduce blood glucose levels by ∼65 % at 6 h, with a cumulative hypoglycemic value of 35 % and a BAR of ∼30 %. These results suggest that ASBT can be a suitable target for improving the oral bioavailability of bilosomes containing IN.

摘要

本研究通过考察通过顶端钠依赖性胆汁酸转运体(ASBT)摄取来研究胆汁盐的电荷和链长对胰岛素(IN)口服生物利用度的影响。将脱氧胆酸胆汁盐与不同的氨基酸缀合,以创建具有不同电荷和链长的缀合物,然后将其嵌入脂质体中。所得的双体纳米囊泡的粒径<400nm,PDI 为 0.121±0.03,包封效率约为 70%,同时保持了负载 IN 的化学和构象完整性。双体纳米囊泡在生物流体中提供了卓越的保护,而不会影响其生物物理特性。使用 Caco-2 细胞系进行的定量研究表明,阴离子双体纳米囊泡通过 ASBT 的摄取效率高于阳离子双体纳米囊泡,分别提高了 4 倍和 1.3 倍。离体通透性研究证实了这些发现。体内功效研究表明,与皮下 IN 相比,IN 的双体纳米囊泡 AUC 增加了 1.6 倍。所开发的双体纳米囊泡能够将血糖水平降低约 65%,在 6 小时时具有 35%的累积降血糖值和 30%的 BAR。这些结果表明,ASBT 可以成为提高包含 IN 的双体纳米囊泡口服生物利用度的合适靶标。

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