首页> 外文期刊>ACS applied materials & interfaces >Virus-Mimicking Mesoporous Silica Nanoparticles with an Electrically Neutral and Hydrophilic Surface to Improve the Oral Absorption of Insulin by Breaking Through Dual Barriers of the Mucus Layer and the Intestinal Epithelium
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Virus-Mimicking Mesoporous Silica Nanoparticles with an Electrically Neutral and Hydrophilic Surface to Improve the Oral Absorption of Insulin by Breaking Through Dual Barriers of the Mucus Layer and the Intestinal Epithelium

机译:病毒模拟中孔二氧化硅纳米粒子,具有电中性和亲水表面,通过破坏粘液层的双屏障和肠上皮的双屏障来改善胰岛素的口服吸收

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摘要

Protein and peptide drugs orally suffer from extremely low bioavailability principally for the complicated gastrointestinal environment along with the difficulty of passing through the mucus layer and the underlying epithelium. In our work, we fabricated mesoporous silica nanoparticles with modification groups (MSN-NH2@COOH/CPP5) that effectively penetrated the mucus layer and passed through the intestinal epithelium by mimicking the virus surface. Naked nanoparticles were prepared with inner pores of 6 nm diameter to allow efficient insulin loading and coated with the cationic cell-penetrating KLPVM peptide and the anionic glutaric anhydride to yield hydrophilic MSN-NH2@COOH/CPP5 with a zeta-potential of -0.49 mV. The apparent permeability coefficient of virus-mimicking nanoparticles was 14.61 x 10(-5) cm/s. The virus-mimicking nanoparticles showed dramatically lower binding to mucin and faster penetration of the mucus layer than positively charged nanoparticles (MSN@NH2) with a zeta-potential of +35.00 mV. The KLPVM peptide enhanced the uptake of MSN-NH2@COOH/CPP5 by coculturing Caco-2 and E12 cells as an intestinal epithelium model. MSN-NH2@COOH/CPP5 enhanced apical-to-basal transcytosis for being internalized primarily through caveolae-mediated endocytosis. Indeed, for MSN-NH2@COOH/CPP5, the transepithelial transport of the Caco-2 cell monolayer was 2.4-fold higher than MSN@NH2 and 2.0-fold higher than MSN-NH2@ COOH. In vitro, loading insulin into nanoparticles maintained the bioactivity of the protein under simulated intestinal conditions. Insulin loaded into MSN-NH2@COOH/CPP5 reduced the diabetic rats' blood glucose level by nearly 50%. The bioavailability of insulin encapsulated in the MSN-NH2@COOH/CPP5 nanoparticles was 2.1-fold more than insulin when administered directly into the jejunum. Nanoparticles with modifications indicated no significant toxicity in in vitro or in vivo preliminary studies. The obstacles of the mucus layer and intestinal epithelium may be effectively conquered by these virus-mimicking nanoparticles for oral delivery of protein and peptide drugs.
机译:蛋白质和肽类药物口服生物利用度极低,主要是因为复杂的胃肠道环境以及难以通过粘液层和底层上皮。在我们的工作中,我们制备了带有修饰基团(MSN)的介孔二氧化硅纳米颗粒-NH2@COOH/CPP5)通过模拟病毒表面有效穿透粘液层并通过肠上皮。制备具有6 nm直径内孔的裸纳米颗粒以允许有效的胰岛素负载,并用阳离子细胞穿透KLPVM肽和阴离子戊二酸酐涂覆以产生亲水性MSN-NH2@COOH/zeta电位为-0.49 mV的CPP5。模拟病毒的纳米颗粒的表观渗透系数为14.61 x 10(-5)cm/s。与带正电的纳米颗粒相比,模拟病毒的纳米颗粒与粘蛋白的结合显著降低,粘液层的渗透速度更快(MSN@NH2)zeta电位为+35.00 mV。KLPVM肽增强了MSN的摄取-NH2@COOH/CPP5通过Caco-2和E12细胞共培养作为肠上皮模型。MSN-NH2@COOH/CPP5主要通过小窝介导的内吞作用,增强了顶端到基底部的跨细胞作用。的确,对于MSN来说-NH2@COOH/Caco-2细胞单层的跨上皮转运比CPP5高2.4倍MSN@NH2比MSN-NH2@COOH高2.0倍。在体外,在模拟肠道条件下,将胰岛素装载到纳米颗粒中保持蛋白质的生物活性。MSN中的胰岛素-NH2@COOH/CPP5使糖尿病大鼠的血糖水平降低了近50%。MSN中胰岛素的生物利用度-NH2@COOH/当直接注入空肠时,CPP5纳米粒比胰岛素高2.1倍。经过修饰的纳米颗粒在体外或体内初步研究中均未显示出明显毒性。这些模拟病毒的纳米颗粒可有效克服粘液层和肠上皮的障碍,用于口服蛋白质和肽药物。

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