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Enhanced Transport of Shape and Rigidity-Tuned alpha-Lactalbumin Nanotubes across Intestinal Mucus and Cellular Barriers

机译:在肠道粘液和细胞屏障中增强形状和刚性调谐的α-乳蛋白纳米管的运输

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Mucus is a viscoelastic biological hydrogel that protects the epithelial surface from penetration by most nanoparticles, which limits the efficiency of oral drug delivery. Pursuing highly efficient, biocompatible, and biodegradable oral drug vehicles is of central importance to the development of promising nanomedicine. Here, we prepared five peptosomes (PSs) with various sizes, shapes, and rigidities based on self-assembly of amphiphilic alpha-lactalbumin (alpha-lac) peptides from partial enzymolysis and cross-linking. The mucus permeation of alpha-lac PSs and release of curcumin (Cur) encapsulated in these PSs were evaluated. Compared with a long nanotube, big nanosphere, small nanosphere, and cross-linked short nanotube, we demonstrated that a short nanotube (SNT) exhibits excellent permeability in mucus, which enables it to arrive at epithelial cells quickly. Besides, SNT exhibits the highest cellular uptake and transmembrane permeability on Caco-2/HT29-MTX (E12) 3D coculture model. In vivo pharmacokinetic evaluation revealed that SNT formulation shows the highest curcumin bioavailability, which is 6.85-folds higher than free Cur. Most importantly, Cur loaded in SNT exhibits the optimum therapeutic efficacy for in vivo treatment of dextran sulfate sodium (DSS)-induced ulcerative colitis. In the end, the mechanism of the high permeability of SNTs through mucus was explained by coarse-grained molecular dynamics simulations, which indicated that short time scale jiggling and flying across pores of mucus network played key roles. These findings revealed the tubular alpha-lac PSs could be a promising oral drug delivery system targeted to mucosal for improving absorption and bioavailability of hydrophobic bioactive ingredients.
机译:粘液是一种粘弹性生物水凝胶,可保护上皮表面免受大多数纳米颗粒的渗透,这限制了口服药物递送的效率。追求高效,生物相容性和可生物降解的口腔毒品车辆对有前途的纳米医生的发展具有核心性。在这里,我们制备了基于部分酶解和交联的两亲α-乳白蛋白(α-LAC)肽的自组装和交联的各种尺寸,形状和刚性的五种Peptosomes(PSS)。评价α-LAC PSS和包封在这些PSS中的悬浮蛋白(Cur)的粘液渗透。与长纳米管,大纳米圈,小纳米和交联短纳米管相比,我们证明了短纳米管(SNT)在粘液中表现出优异的渗透性,这使得它能够快速地到达上皮细胞。此外,SNT在Caco-2 / HT29-MTX(E12)3D共培养模型上表现出最高的细胞摄取和跨膜渗透性。体内药代动力学评估显示,SNT配方显示出最高的姜黄素生物利用度,其比自由Cur高6.85倍。最重要的是,加载SNT中的CUR表现出在体内处理葡聚糖硫酸钠(DSS)的溃疡性结肠炎的最佳治疗效果。最后,通过粗粒化的分子动力学模拟解释了通过粘液通过粘液的高渗透性的机制,这表明短时间突出和飞过粘液网络孔的孔隙伴随着关键作用。这些发现显示,管状α-LAC PSS可以是靶向粘膜的有前途的口服药物递送系统,用于提高疏水性生物活性成分的吸收和生物利用度。

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