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Development of Acid-Resistant Alginate/Trimethyl Chitosan Nanoparticles Containing Cationic β-Cyclodextrin Polymers for Insulin Oral Delivery

机译:含阳离子β-环糊精聚合物的耐酸藻酸盐/三甲基壳聚糖纳米粒子的胰岛素口服给药研究

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摘要

In this study, the use of trimethylchitosan (TMC), by higher solubility in comparison with chitosan, in alginate/chitosan nanoparticles containing cationic β-cyclodextrin polymers (CPβCDs) has been studied, with the aim of increasing insulin uptake by nanoparticles. Firstly, TMCs were synthesized by iodomethane, and CPβCDs were synthesized within a one-step polycondensation reaction using choline chloride (CC) and epichlorohydrine (EP). Insulin–CβCDPs complex was prepared by mixing 1:1 portion of insulin and CPβCDs solutions. Then, nanoparticles prepared in a three-step procedure based on the iono-tropic pregelation method. Nanoparticles screened using experimental design and Placket Burman methodology to obtain minimum size and polydispercity index (pdI) and the highest entrapment efficiency (EE). CPβCDs and TMC solution concentration and pH and alginate and calcium chloride solution concentrations are found as the significant parameters on size, PdI, and EE. The nanoparticles with proper physicochemical properties were obtained; the size, PdI, and EE% of optimized nanoparticles were reported as 150.82 ± 21 nm, 0.362 ± 0.036, and 93.2% ± 4.1, respectively. The cumulative insulin release in intestinal condition achieved was 50.2% during 6 h. By SEM imaging, separate, spherical, and nonaggregated nanoparticles were found. In the cytotoxicity studies on Caco-2 cell culture, no significant cytotoxicity was observed in 5 h of incubation, but after 24 h of incubation, viability was decreased to 50% in 0.5 mμ of TMC concentration. Permeability studies across Caco-2 cells had been carried out, and permeability achieved in 240 min was 8.41 ± 0.39%, which shows noticeable increase in comparison with chitosan nanoparticles. Thus, according to the results, the optimized nanoparticles can be used as a new insulin oral delivery system.
机译:在这项研究中,已经研究了与壳聚糖相比溶解度更高的三甲基壳聚糖(TMC)在含有阳离子β-环糊精聚合物(CPβCD)的藻酸盐/壳聚糖纳米颗粒中的用途,目的是增加纳米颗粒对胰岛素的吸收。首先,通过碘甲烷合成TMC,并使用氯化胆碱(CC)和表氯醇(EP)在一步缩聚反应中合成CPβCD。通过将1:1的胰岛素和CPβCDs溶液混合制备胰岛素-CβCDPs复合物。然后,基于离子型预凝胶化方法以三步法制备纳米颗粒。使用实验设计和Placket Burman方法筛选纳米颗粒,以获得最小尺寸和多分散指数(pdI)和最高包封率(EE)。发现CPβCDs和TMC溶液浓度以及pH值,藻酸盐和氯化钙溶液浓度是尺寸,PdI和EE的重要参数。获得了具有适当理化性质的纳米粒子。据报道,优化后的纳米粒子的大小,PdI和EE%分别为150.82±21纳米,0.362±0.036和93.2%±4.1。在6小时内,肠道条件下的累积胰岛素释放率为50.2%。通过SEM成像,发现了分离的,球形的和非聚集的纳米颗粒。在Caco-2细胞培养物的细胞毒性研究中,在孵育5小时后未观察到明显的细胞毒性,但在孵育24小时后,在0.5mμTMC浓度下存活力降低至50%。已经对Caco-2细胞进行了渗透性研究,在240分钟内达到的渗透率为8.41±0.39%,与壳聚糖纳米颗粒相比显示出明显的增加。因此,根据结果,优化的纳米颗粒可以用作新的胰岛素口服递送系统。

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