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基于纳米纤维的药物递送系统:应用、挑战及未来展望综述

Nanofiber-Based Drug Delivery Systems: A Review on Its Applications, Challenges, and Envisioning Future Perspectives.

作者信息

Alfadhel Munerah

机构信息

Prince Sattam Bin Abdulaziz University, Saudi Arabia.

出版信息

Curr Drug Deliv. 2024 Sep 10. doi: 10.2174/0115672018325012240902122946.

Abstract

Nanomaterials, especially nanofibers, hold considerable promise as drug delivery systems (DDS) by providing targeted administration of drugs due to their unique properties, such as large surface area, high porosity, and mechanical robustness. Nanofibers can be fabricated using various techniques like electrospinning, self-assembly, phase separation, and template synthesis, offering properties such as adjustable size, shape, high precision, and biodegradability. Additionally, features such as multiple target functionalization, controlled release of the drug, and prolonged circulation of the drug make nanofibers particularly suitable for biomedical applications, including drug delivery, tissue regeneration, and biosensing. This comprehensive review explores the characteristics, types, fabrication methods, and applications of nanofibers. Diverse types of polymer nanofibers are used in drug delivery, such as blended nanofibers, core-shell nanofibers, and layer-by-layer assembly, each demonstrating their own advantages in controlled drug release and targeted therapy. Electrospun nanofibers are extensively utilized in biomedical applications due to their superior mechanical performance and high porosity and advancements in coaxial electrospinning enabling the fabrication of core-shell nanofibers, offering controlled drug release kinetics and protection of loaded molecules. These nanofibers demonstrate enhanced bioactivity and biocompatibility and can find application in tissue engineering. Furthermore, this review addresses the challenges associated with nanofiber production, including reproducibility and scalability. Nanofibers exhibit the potential to revolutionize medical treatment across diverse therapeutic areas. Future research directions and challenges in nanofiber-based drug delivery discussed in this review offer guidance for further advancements in this rapidly evolving field.

摘要

纳米材料,尤其是纳米纤维,由于其具有诸如大表面积、高孔隙率和机械强度高等独特性质,在作为药物递送系统(DDS)进行靶向给药方面具有巨大潜力。纳米纤维可以通过多种技术制备,如静电纺丝、自组装、相分离和模板合成,这些技术可赋予纳米纤维尺寸可调、形状可控、精度高和可生物降解等特性。此外,纳米纤维具有多靶点功能化、药物控释和延长药物循环时间等特点,使其特别适用于生物医学应用,包括药物递送、组织再生和生物传感。这篇综述全面探讨了纳米纤维的特性、类型、制备方法及应用。多种类型的聚合物纳米纤维被用于药物递送,如共混纳米纤维、核壳纳米纤维和层层组装纳米纤维,它们在药物控释和靶向治疗方面各有优势。静电纺纳米纤维因其优异的机械性能和高孔隙率而广泛应用于生物医学领域,并且同轴静电纺丝技术的发展使得核壳纳米纤维的制备成为可能,实现了药物释放动力学的控制和对负载分子的保护。这些纳米纤维表现出增强的生物活性和生物相容性,可应用于组织工程。此外,本综述还讨论了纳米纤维生产中存在的挑战,包括可重复性和可扩展性。纳米纤维有潜力在不同治疗领域彻底改变医疗治疗方式。本综述中讨论的基于纳米纤维的药物递送的未来研究方向和挑战为这一快速发展领域的进一步进展提供了指导。

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