Sakpal Darshana, Gharat Sankalp, Momin Munira
Department of Pharmaceutics, SVKM's Dr. Bhanuben Nanavati College of Pharmacy, University of Mumbai, Maharashtra, India.
Department of Pharmaceutics, SVKM's Dr. Bhanuben Nanavati College of Pharmacy, University of Mumbai, Maharashtra, India; SVKM's Shri C B Patel Research Center for Chemistry and Biological Sciences, Mumbai, Maharashtra, India.
Biomater Adv. 2022 Oct;141:213124. doi: 10.1016/j.bioadv.2022.213124. Epub 2022 Sep 17.
Nanofibers due to their unique properties such as high surface-to-volume ratio, porous structure, mechanical strength, flexibility and their resemblance to the extracellular matrix, have been researched extensively in the field of ocular drug delivery and tissue engineering. Further, different modifications considering the formulation and process parameters have been carried out to alter the drug release profile and its interaction with the surrounding biological environment. Electrospinning is the most commonly used technique for preparing nanofibers with industrial scalability. Advanced techniques such as co-axial electrospinning and combined system such as embedding nanoparticles in nanofiber provide an alternative approach to enhance the performance of the scaffold. Electrospun nanofibers offers a matrix like structure for cell regeneration. Nanofibers have been used for ocular delivery of various drugs like antibiotics, anti-inflammatory and various proteins. In addition, lens-coated medical devices provide new insights into the clinical use of nanofibers. Through fabricating the nanofibers researchers have overcome the issues of low bioavailability and compatibility with ocular tissue. Therefore, nanofibers have great potential in ocular drug delivery and tissue engineering and have the capacity to revolutionize these therapeutic areas in the field of ophthalmology. This review is mainly focused on the recent advances in the preparation of nanofibers and their applications in ocular drug delivery and tissue engineering. The authors have attempted to emphasize the processing challenges and future perspectives along with an overview of the safety and toxicity aspects of nanofibers.
纳米纤维因其具有高比表面积、多孔结构、机械强度、柔韧性以及与细胞外基质相似等独特性质,在眼部药物递送和组织工程领域得到了广泛研究。此外,还针对制剂和工艺参数进行了不同的改性,以改变药物释放曲线及其与周围生物环境的相互作用。静电纺丝是制备具有工业可扩展性的纳米纤维最常用的技术。诸如同轴静电纺丝等先进技术以及诸如将纳米颗粒嵌入纳米纤维中的组合系统,为提高支架性能提供了另一种方法。静电纺纳米纤维为细胞再生提供了类似基质的结构。纳米纤维已被用于多种药物的眼部递送,如抗生素、抗炎药和各种蛋白质。此外,涂覆晶状体的医疗设备为纳米纤维的临床应用提供了新的见解。通过制造纳米纤维,研究人员克服了生物利用度低以及与眼部组织相容性差的问题。因此,纳米纤维在眼部药物递送和组织工程中具有巨大潜力,并有能力彻底改变眼科领域的这些治疗领域。本综述主要关注纳米纤维制备的最新进展及其在眼部药物递送和组织工程中的应用。作者试图强调加工挑战和未来前景,并概述纳米纤维的安全性和毒性方面。