The Engineering Technology Research Center for Functional Textiles in Higher Education of Guangdong Province, College of Textiles and Clothing, Wuyi University, Jiangmen, Guangdong 529020, China.
The Engineering Technology Research Center for Functional Textiles in Higher Education of Guangdong Province, College of Textiles and Clothing, Wuyi University, Jiangmen, Guangdong 529020, China.
Int J Pharm. 2014 Jul 20;469(1):17-22. doi: 10.1016/j.ijpharm.2014.04.045. Epub 2014 Apr 18.
A novel core/sheath fiber preparation method, which included the processes of blend electrospinning to produce the core fiber and UV-induced graft polymerization to fabricate the outer polymeric shell, was presented to provide designated fibers with different shell thicknesses. A hydrophilic drug, salicylic acid (SA), was loaded in the representative poly(ϵ-caprolactone) (PCL)/polyethylene glycol (PEG) core/sheath fibers, performed according to this combined technique. FTIR analysis indicated that the existence of hydrogen bonds between SA and the PCL matrix improved drug compatibility. Field emission scanning electron microscopy (FESEM) images indicated that the morphology and the diameter distribution of fibers changed significantly after the graft polymerization procedure. All the core/sheath fibers became more flexible and thicker compared with the core fiber. The water contact angle (WCA) test also noted the differences of these two fibers: PCL/PEG core/sheath fibers with cross-linked PEG surface exhibited more hydrophilic property. Moreover, in vitro SA release tests were conducted to explore the relationship between the PEG shell thickness and the drug release rate. A typical biphasic release mechanism was observed for the PCL/PEG core/sheath fibers, and their sustained release rates were controlled by the PEG shell thickness in a linear correlation.
一种新颖的核/鞘纤维制备方法,包括共混静电纺丝以制备核纤维和紫外光诱导接枝聚合以制备外聚合物壳的过程,旨在为具有不同壳厚度的指定纤维提供便利。采用该组合技术,将亲水性药物水杨酸(SA)载入代表性的聚(ε-己内酯)(PCL)/聚乙二醇(PEG)核/鞘纤维中。FTIR 分析表明,SA 与 PCL 基体之间氢键的存在提高了药物相容性。场发射扫描电子显微镜(FESEM)图像表明,接枝聚合后纤维的形态和直径分布发生了显著变化。与核纤维相比,所有核/鞘纤维都变得更加柔软和厚实。水接触角(WCA)测试也注意到了这两种纤维的差异:交联 PEG 表面的 PCL/PEG 核/鞘纤维表现出更好的亲水性。此外,进行了体外 SA 释放试验以探索 PEG 壳厚度与药物释放速率之间的关系。PCL/PEG 核/鞘纤维呈现典型的两相释放机制,其持续释放速率与 PEG 壳厚度呈线性相关,从而得到控制。