National Cell Bank of Iran, Pasteur Institute of Iran, Tehran, Iran.
Nanotechnology Research Centre, Faculty of Pharmacy, Tehran University of Medical Sciences, Tehran, Iran.
J Control Release. 2020 May 10;321:324-347. doi: 10.1016/j.jconrel.2020.02.022. Epub 2020 Feb 13.
Electrospinning is well thought of as the most potent nanofiber producing technique, which is applicable in biomedical fields. The generation of electrospun nanofibers as drug carriers has widely been shown much interest over the past years. Electrospun nanofibers meet various advantages as drug delivery platforms including high surface area, acceptable mechanical properties based on the choice of the polymer, high processability, and the possibilities for surface modifications. Silk fibroin protein has gained a great attention as a drug delivery carrier due to ease of purification, sterilization, processability without using chemical crosslinkers, good biocompatibility, tailorable biodegradability, low immunogenicity, and high capacity to stabilize the loaded drugs. These characteristics along with advantageous benefits of electrospinning provide opportunities for producing suitable nanofibers based on silk fibroin for drug delivery purposes. It is also possible to incorporate various functional moieties to the electrospun silk fibroin nanofibers to enhance its biological activities. This review covers the progress in electrospinning of silk fibroin as a drug carrier in recent years.
静电纺丝被认为是最有效的纳米纤维生产技术,适用于生物医学领域。近年来,作为药物载体的静电纺丝纳米纤维的应用受到了广泛关注。静电纺丝纳米纤维作为药物传递平台具有许多优点,包括高比表面积、可根据聚合物选择接受机械性能、高加工性能以及表面改性的可能性。丝素蛋白由于易于纯化、消毒、无需使用化学交联剂即可加工、良好的生物相容性、可定制的生物降解性、低免疫原性和高载药能力而作为药物载体受到了极大关注。这些特性以及静电纺丝的优势为基于丝素蛋白生产适合药物输送的纳米纤维提供了机会。也可以将各种功能基团掺入到静电纺丝的丝素蛋白纳米纤维中,以增强其生物活性。本文综述了近年来静电纺丝丝素蛋白作为药物载体的研究进展。