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用于口服递送胰岛素的载药胶束核靶向杯状细胞的纳米颗粒。

Goblet cell targeting nanoparticle containing drug-loaded micelle cores for oral delivery of insulin.

机构信息

Key Laboratory of Drug Targeting and Drug Delivery System (Ministry of Education), West China School of Pharmacy, Sichuan University, No. 17, Block 3, Southern Renmin Road, Chengdu 610041,China; People' Hospital of Deyang City, No. 173, Northern Taishan Road, Deyang 618000, China.

Key Laboratory of Drug Targeting and Drug Delivery System (Ministry of Education), West China School of Pharmacy, Sichuan University, No. 17, Block 3, Southern Renmin Road, Chengdu 610041,China.

出版信息

Int J Pharm. 2015 Dec 30;496(2):993-1005. doi: 10.1016/j.ijpharm.2015.10.078. Epub 2015 Nov 2.

Abstract

Oral administration of insulin remains a challenge due to its poor enzymatic stability and inefficient permeation across epithelium. We herein developed a novel self-assembled polyelectrolyte complex nanoparticles by coating insulin-loaded dodecylamine-graft-γ-polyglutamic acid micelles with trimethyl chitosan (TMC). The TMC material was also conjugated with a goblet cell-targeting peptide to enhance the affinity of nanoparticles with epithelium. The developed nanoparticle possessed significantly enhanced colloid stability, drug protection ability and ameliorated drug release profile compared with graft copolymer micelles or ionic crosslinked TMC nanoparticles. For in vitro evaluation, Caco-2/HT29-MTX-E12 cell co-cultures, which composed of not only enterocyte-like cells but also mucus-secreting cells and secreted mucus layer, were applied to mimic the epithelium. Intracellular uptake and transcellular permeation of encapsulated drug were greatly enhanced for NPs as compared with free insulin or micelles. Goblet cell-targeting modification further increased the affinity of NPs with epithelium with changed cellular internalization mechanism. The influence of mucus on the cell uptake was also investigated. Ex vivo performed with rat mucosal tissue demonstrated that the nanoparticle could facilitate the permeation of encapsulated insulin across the intestinal epithelium. In vivo study preformed on diabetic rats showed that the orally administered nanoparticles elicited a prolonged hypoglycemic response with relative bioavailability of 7.05%.

摘要

由于胰岛素的酶稳定性差且跨上皮渗透效率低,口服给药仍然具有挑战性。我们通过用三甲基壳聚糖(TMC)包被负载胰岛素的十二烷基胺接枝-γ-聚谷氨酸胶束来开发一种新型的自组装聚电解质复合纳米粒。TMC 材料还与杯状细胞靶向肽缀合,以增强纳米颗粒与上皮的亲和力。与接枝共聚物胶束或离子交联 TMC 纳米颗粒相比,开发的纳米颗粒具有显著增强的胶体稳定性、药物保护能力和改善的药物释放特性。在体外评估中,应用了由不仅具有肠细胞样细胞而且还具有分泌粘液的细胞和分泌的粘液层组成的 Caco-2/HT29-MTX-E12 细胞共培养物来模拟上皮。与游离胰岛素或胶束相比,包封药物的细胞内摄取和跨细胞渗透能力大大增强。杯状细胞靶向修饰进一步增加了纳米颗粒与上皮的亲和力,并改变了细胞内化机制。还研究了粘液对细胞摄取的影响。在大鼠粘膜组织上进行的离体研究表明,纳米颗粒可以促进包封胰岛素穿过肠上皮的渗透。在糖尿病大鼠上进行的体内研究表明,口服给予的纳米颗粒引起了延长的降血糖反应,相对生物利用度为 7.05%。

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