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通过同轴静电纺丝制备的核壳型聚丙烯酸树脂S100纳米纤维用于结肠靶向的长效药物释放。

Core-Shell Eudragit S100 Nanofibers Prepared via Triaxial Electrospinning to Provide a Colon-Targeted Extended Drug Release.

作者信息

Ding Yanfei, Dou Cheng, Chang Shuyue, Xie Zhengming, Yu Deng-Guang, Liu Yanan, Shao Jun

机构信息

School of Materials Science & Engineering, University of Shanghai for Science & Technology, 516 Jungong Road, Shanghai 200093, China.

Shanghai Institute of Technical Physics, Chinese Academy of Sciences, 500 Yutian Road, Shanghai 200083, China.

出版信息

Polymers (Basel). 2020 Sep 7;12(9):2034. doi: 10.3390/polym12092034.

Abstract

In this study, a new modified triaxial electrospinning is implemented to generate an Eudragit S100 (ES100)-based core-shell structural nanofiber (CSF), which is loaded with aspirin. The CSFs have a straight line morphology with a smooth surface, an estimated average diameter of 740 ± 110 nm, and a clear core-shell structure with a shell thickness of 65 nm, as disclosed by the scanning electron microscopy and transmission electron microscopy results. Compared to the monolithic composite nanofibers (MCFs) produced using traditional blended single-fluid electrospinning, aspirin presented in both of them amorously owing to their good compatibility. The CSFs showed considerable advantages over the MCFs in providing the desired drug-controlled-release profiles, although both of them released the drug in an erosion mechanism. The former furnished a longer time period of time-delayed-release and a smaller portion released during the first two-hour acid condition for protecting the stomach membranes, and also showed a longer time period of aspirin-extended-release for avoiding possible drug overdose. The present protocols provide a polymer-based process-nanostructure-performance relationship to optimize the reasonable delivery of aspirin.

摘要

在本研究中,实施了一种新的改进型三轴静电纺丝法,以制备负载阿司匹林的基于Eudragit S100(ES100)的核壳结构纳米纤维(CSF)。扫描电子显微镜和透射电子显微镜结果显示,CSF具有直线形态、表面光滑、估计平均直径为740±110 nm,以及清晰的核壳结构,壳厚度为65 nm。与使用传统共混单流体静电纺丝制备的整体复合纳米纤维(MCF)相比,由于两者具有良好的相容性,阿司匹林在其中均呈无定形状态。尽管两者均以侵蚀机制释放药物,但CSF在提供所需的药物控释曲线方面比MCF具有显著优势。前者提供了更长的延迟释放时间,并且在前两小时酸性条件下释放的部分较小,以保护胃膜,还显示出更长的阿司匹林延长释放时间,以避免可能的药物过量。本方案提供了一种基于聚合物的工艺-纳米结构-性能关系,以优化阿司匹林的合理递送。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2325/7565919/a5badfcabab8/polymers-12-02034-g001.jpg

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