Department Applied Chemistry and Chemical Engineering, Faculty of Engineering and Technology, University of Dhaka, Dhaka 1000, Bangladesh.
Department Applied Chemistry and Chemical Engineering, Faculty of Engineering and Technology, University of Dhaka, Dhaka 1000, Bangladesh.
Carbohydr Polym. 2025 Jan 15;348(Pt A):122838. doi: 10.1016/j.carbpol.2024.122838. Epub 2024 Oct 11.
Electrospinning has become a revolutionized technique for nanofiber fabrication by offering versatile procedures to precisely regulate the nanofibers' properties suitable for a wide range of advanced applications. Nanofibers are utilized as carriers for delivering medications and other health supplements as well as their ability to discharge their contents can be easily programmed and tailored in a specific manner, while serving as tissue engineering scaffolds or medical devices. Cellulose nanocrystals (CNC) are one of the most significant natural biopolymers incorporated as reinforcing agents for nanostructured fibrous frameworks. The integration of electrospinning technology and CNC offers a viable method for manufacturing nanostructured porous substances with favorable functionality, a high ratio of surface area to volume, a tunable crystal structure along with non-toxicity and cytocompatibility, outstanding mechanical properties, flexibility, sustainability, and biodegradable properties. This article offers a thorough summary of the latest progress in the application of CNC based electrospun nanofibers in various biomedical fields such as drug delivery, tissue engineering, and wound healing. It covers the techniques and parameters used for their fabrication, the different types of raw materials employed, and their application criteria. The review concludes by discussing the prospects and challenges in this rapidly evolving research domains.
静电纺丝技术通过提供多种可精确调控纳米纤维性能的方法,已经成为纳米纤维制造的一项革命性技术,这些性能适合广泛的先进应用。纳米纤维可用作输送药物和其他健康补充剂的载体,并且其释放内容物的能力可以以特定方式轻松编程和定制,同时还可用作组织工程支架或医疗设备。纤维素纳米晶体 (CNC) 是最显著的天然生物聚合物之一,被用作增强纳米结构纤维框架的添加剂。静电纺丝技术与 CNC 的结合为制造具有有利功能的纳米多孔物质提供了一种可行的方法,这些物质具有高的表面积与体积比、可调节的晶体结构、无毒和细胞相容性、出色的机械性能、灵活性、可持续性和可生物降解性。本文全面总结了基于 CNC 的静电纺纳米纤维在药物输送、组织工程和伤口愈合等各个生物医学领域中的最新应用进展。涵盖了用于制造它们的技术和参数、使用的不同类型的原材料以及它们的应用标准。最后,本文讨论了这个快速发展的研究领域的前景和挑战。