Asadnia Milad, Sadat-Shojai Mehdi
Department of Chemistry, College of Sciences, Shiraz University, Shiraz, Iran.
Department of Chemistry, College of Sciences, Shiraz University, Shiraz, Iran.
Int J Biol Macromol. 2025 Mar;293:139409. doi: 10.1016/j.ijbiomac.2024.139409. Epub 2024 Dec 31.
Outstanding properties of nanocellulose provide opportunities for novel applications in various fields, particularly tissue engineering. Despite of numerous useful characteristics of nanocellulose, its production methods suffer from the lack of control of morphology, high cost, and the use of organic solvents. On the other hand, hydrophilicity of nanocellulose is a significant challenge for its dispersion as a reinforcement in hydrophobic polymers matrix. Therefore, sustainable production methods and well-tuning interfacial characteristics of nanocellulose have been identified as critical steps in their development. This review article discusses the numerous preparation methods and surface modification strategies of cellulose nanocrystals (CNCs) and cellulose nanofibrils (CNFs) to help nanocellulose users obtain the appropriate material for their desired application. We also cover various polymer/nanocellulose scaffolds that are reported in the literature and investigate the effect of CNC and CNF on their mechanical, thermal and biological properties. Moreover, we provide several scientific figures and tables for a better understanding of the explored topics. Finally, we evaluate the opportunities and challenges of nanocellulose industrialization in the field of tissue engineering. Overall, this review guides researchers towards a deeper understanding of nanocellulose production processes, changing their properties using surface modification methods, and subsequently their performance in scaffold-based tissue engineering.
纳米纤维素的优异性能为其在各个领域的新应用提供了机会,尤其是在组织工程领域。尽管纳米纤维素具有许多有用的特性,但其生产方法存在形态控制不足、成本高以及使用有机溶剂等问题。另一方面,纳米纤维素的亲水性是其作为增强剂分散在疏水性聚合物基体中的一个重大挑战。因此,可持续的生产方法和对纳米纤维素界面特性的良好调控已被确定为其发展的关键步骤。这篇综述文章讨论了纤维素纳米晶体(CNC)和纤维素纳米纤维(CNF)的众多制备方法和表面改性策略,以帮助纳米纤维素使用者获得适合其所需应用的材料。我们还涵盖了文献中报道的各种聚合物/纳米纤维素支架,并研究了CNC和CNF对其机械、热学和生物学性能的影响。此外,我们提供了一些科学图表,以便更好地理解所探讨的主题。最后,我们评估了纳米纤维素在组织工程领域产业化的机遇和挑战。总体而言,这篇综述引导研究人员更深入地了解纳米纤维素的生产过程,利用表面改性方法改变其性能,以及随后其在基于支架的组织工程中的性能。