面向生物医学的纳米纤维素基复合材料:差异化设计与应用进展

Nanocellulose-Based Composites for Biomedicine: Differential Design and Application Progress

  • 摘要: 纳米纤维素以其优异的力学性能、高比表面积、良好的生物相容性及易于表面修饰等特点,在生物医学领域展现出广阔的应用前景。本文系统综述了纤维素纳米晶(CNC)、纤维素纳米纤维(CNF)及细菌纤维素(BC)的制备方法、表面修饰策略及其复合材料的构建途径,重点评述了三者在组织工程、智能/响应性药物递送、伤口敷料与止血、生物传感等领域的差异化应用策略与研究进展。在此基础上,本文凝练了“修饰策略→理化性质变化→生物学性能→应用场景”的构效关系分析框架,系统介绍了表面化学改性对纳米纤维素分散性、界面相容性及环境响应性的调控规律,归纳了三类材料因形态、尺寸、结晶度及表面电荷特性的差异而形成的差异化应用的优势。同时,本文总结了当前纳米纤维素复合材料在生物医药领域应用中面临的主要挑战,包括规模化生产成本高、批次一致性差,以及体内外生物相容性与安全性评价标准与体系尚未完善等问题,并指出了未来研究应聚焦于开发绿色高效制备工艺、构建多功能集成平台,以及建立标准化安全性评价体系。本文旨在为纳米纤维素复合材料在生物医药领域的研究与应用提供参考,以推动其临床转化与产业化进程。

     

    Abstract: Nanocellulose, which exhibits exceptional mechanical strength, high specific surface area, remarkable biocompatibility, and versatile surface chemistry, has emerged as a promising biomaterial platform. This review provides a comprehensive overview of the preparation methods, surface modification strategies, and composite engineering approaches for cellulose nanocrystals (CNCs), cellulose nanofibers (CNFs), and bacterial cellulose (BC). Particular attention is given to their distinct application strategies and recent advances in tissue engineering, smart/responsive drug delivery, wound dressings and hemostasis, and biosensing. We further propose a structure–property–function framework structured along the logical continuum of “modification strategy → physicochemical changes → biological performance → application scenario”. This framework systematically introduces how surface chemical modifications govern key properties such as dispersibility, interfacial compatibility, and environmental responsiveness, and highlights how the differentiated application advantages of CNCs, CNFs, and BC emerge from their inherent differences in morphology, dimensions, crystallinity, and surface charge characteristics. In addition, this review outlines several critical challenges impede clinical translation, including high production costs, insufficient batch-to-batch reproducibility, and the absence of standardized safety assessment systems. Looking forward, the development of green and scalable manufacturing processes, construction of multifunctional integrated platforms, and establishment of robust safety evaluation protocols will be essential. This review aims to provide a strategic roadmap for advancing nanocellulose-based composites toward biomedical applications and eventual clinical practice.

     

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