National Engineering Lab for Textile Fiber Materials and Processing Technology, College of Textile Science and Engineering (International Institute of Silk), Zhejiang Sci-Tech University, 310018, China.
National Engineering Lab for Textile Fiber Materials and Processing Technology, College of Textile Science and Engineering (International Institute of Silk), Zhejiang Sci-Tech University, 310018, China.
Int J Biol Macromol. 2023 Jul 1;242(Pt 4):125141. doi: 10.1016/j.ijbiomac.2023.125141. Epub 2023 May 27.
Drug delivery systems (DDSs) based on micro-and nano- fibrous membrane have been developed for decades, in which great attention has been focused on achieving controlled drug release. However, the study on the integrated performance of these drug-loaded membranes in the use of in-vitro drug delivery dressing is lacking, as clinical medication also needs consideration from the perspectives of wound safety and patient convenience. Herein, a trilayered hierarchical porous ethyl cellulose (EC) fibrous membrane based DDS (EC-DDS) was developed by electro-centrifugal spinning. Significantly, the hierarchical porous structure of the EC-DDSs with high specific surface area (34.3 mg) and abundant long-regulative micro-and nano- channels demonstrated its merits in improving the hydrophobicity (long-term splash resistance (CA > 130°) and prolonging the drug release (the release time of ~80 % tetracycline hydrochloride (TCH) prolonged from 10 min to 24 h). Meanwhile, the trilayered EC-DDS also revealed excellent biocompatibility, antibacterial activity, air permeability, moisture permeability, water absorption capacity, mechanical strength, and flexibility. With these excellent integrated features, the EC-DDS could prevent external fluids, avoid infection, and provide comfort. Furthermore, this work also provides a new guide for the high-efficiency fabrication of porous fibrous membranes.
基于微纳纤维膜的药物传递系统(DDS)已经发展了几十年,其中很大的关注重点在于实现药物的控制释放。然而,对于这些载药膜在体外药物输送敷料应用中的综合性能的研究还很缺乏,因为临床用药还需要从伤口安全性和患者便利性的角度进行考虑。本文通过电纺离心法制备了一种具有三层分级多孔结构的乙基纤维素(EC)纤维膜基 DDS(EC-DDS)。显著的是,EC-DDS 的分级多孔结构具有高比表面积(34.3mg)和丰富的长调控微纳通道,这使其在提高疏水性(长期抗飞溅性(CA>130°)和延长药物释放(盐酸四环素(TCH)的释放时间从 10min 延长至 24h)方面具有优势。同时,三层 EC-DDS 还表现出优异的生物相容性、抗菌活性、透气性、透湿性、吸水性、机械强度和柔韧性。具有这些优异的综合特性,EC-DDS 可以防止外部液体、避免感染并提供舒适感。此外,这项工作还为高效制备多孔纤维膜提供了新的指导。