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用于制备纤维状药物递送系统的交流电静电纺丝法。

Alternating current electrospinning for preparation of fibrous drug delivery systems.

作者信息

Balogh Attila, Cselkó Richárd, Démuth Balázs, Verreck Geert, Mensch Jürgen, Marosi György, Nagy Zsombor Kristóf

机构信息

Budapest University of Technology and Economics, Organic Chemistry and Technology Department, H-1111 Budapest, Hungary.

Budapest University of Technology and Economics, Department of Electric Power Engineering, H-1111 Budapest, Hungary.

出版信息

Int J Pharm. 2015 Nov 10;495(1):75-80. doi: 10.1016/j.ijpharm.2015.08.069. Epub 2015 Aug 28.

Abstract

Alternating current electrospinning (ACES) was compared to direct current electrospinning (DCES) for the preparation of drug-loaded nanofibrous mats. It is generally considered that DCES is the solely technique to produce nanofibers using the electrostatic force from polymer solutions, however, less studied and also capable ACES provides further advantages such as increased specific productivities. A poorly water-soluble drug (carvedilol) was incorporated into the fibers based on three different polymeric matrices (an acid-soluble terpolymer (Eudragit(®) E), a base-soluble copolymer (Eudragit(®) L 100-55) and a nonionic homopolymer (polyvinylpyrrolidone K90)) to improve the dissolution of the weak base drug under different pH conditions. Morphology and fiber diameter evaluation showed similar electrospun fibers regardless the type of the high voltage and the major differences in feeding rates. The amorphous ACES and DCES fibers provided fast and total drug dissolutions in all cases. The presented results show that ACES can be a more feasible novel alternative to formulate fibers for drug delivery purposes.

摘要

将交流电静电纺丝(ACES)与直流电静电纺丝(DCES)进行比较,用于制备载药纳米纤维垫。通常认为DCES是利用聚合物溶液的静电力生产纳米纤维的唯一技术,然而,研究较少但同样可行的ACES具有更多优势,如提高特定生产率。将一种难溶性药物(卡维地洛)掺入基于三种不同聚合物基质(酸溶性三元共聚物(尤特奇(®)E)、碱溶性共聚物(尤特奇(®)L 100 - 55)和非离子型均聚物(聚乙烯吡咯烷酮K90))的纤维中,以改善弱碱性药物在不同pH条件下的溶解情况。形态学和纤维直径评估表明,无论高压类型和进料速率的主要差异如何,静电纺丝纤维相似。在所有情况下,非晶态的ACES和DCES纤维都能实现药物的快速完全溶解。所呈现的结果表明,对于药物递送目的的纤维制剂,ACES可能是一种更可行的新型替代方法。

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