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利用纳米纤维素在组织工程高级应用中的当前范式与未来挑战:生物医学的关键技术现状综述

Current Paradigms and Future Challenges in Harnessing Nanocellulose for Advanced Applications in Tissue Engineering: A Critical State-of-the-Art Review for Biomedicine.

作者信息

Dar Mudasir A, Xie Rongrong, Liu Jun, Ali Shehbaz, Pawar Kiran D, Sudiana I Made, Sun Jianzhong

机构信息

Biofuels Institute, School of the Environment and Safety Engineering, Jiangsu University, Zhenjiang 212013, China.

Department of Zoology, Savitribai Phule Pune University, Ganeshkhind, Pune 411007, India.

出版信息

Int J Mol Sci. 2025 Feb 9;26(4):1449. doi: 10.3390/ijms26041449.

Abstract

Nanocellulose-based biomaterials are at the forefront of biomedicine, presenting innovative solutions to longstanding challenges in tissue engineering and wound repair. These advanced materials demonstrate enhanced mechanical properties and improved biocompatibility while allowing for precise tuning of drug release profiles. Recent progress in the design, fabrication, and characterization of these biomaterials underscores their transformative potential in biomedicine. Researchers are employing strategic methodologies to investigate and characterize the structure and functionality of nanocellulose in tissue engineering and wound repair. In tissue engineering, nanocellulose-based scaffolds offer transformative opportunities to replicate the complexities of native tissues, facilitating the study of drug effects on the metabolism, vascularization, and cellular behavior in engineered liver, adipose, and tumor models. Concurrently, nanocellulose has gained recognition as an advanced wound dressing material, leveraging its ability to deliver therapeutic agents via precise topical, transdermal, and systemic pathways while simultaneously promoting cellular proliferation and tissue regeneration. The inherent transparency of nanocellulose provides a unique advantage, enabling real-time monitoring of wound healing progress. Despite these advancements, significant challenges remain in the large-scale production, reproducibility, and commercial viability of nanocellulose-based biomaterials. This review not only underscores these hurdles but also outlines strategic directions for future research, including the need for bioengineering of nanocellulose-based wound dressings with scalable production and the incorporation of novel functionalities for clinical translation. By addressing these key challenges, nanocellulose has the potential to redefine biomedical material design and offer transformative solutions for unmet clinical needs in tissue engineering and beyond.

摘要

基于纳米纤维素的生物材料处于生物医学的前沿,为组织工程和伤口修复中长期存在的挑战提供了创新解决方案。这些先进材料展现出增强的机械性能和改善的生物相容性,同时能够精确调节药物释放曲线。这些生物材料在设计、制造和表征方面的最新进展突显了它们在生物医学中的变革潜力。研究人员正在采用策略性方法来研究和表征纳米纤维素在组织工程和伤口修复中的结构和功能。在组织工程中,基于纳米纤维素的支架为复制天然组织的复杂性提供了变革性机遇,有助于研究药物对工程化肝脏、脂肪和肿瘤模型中新陈代谢、血管生成和细胞行为的影响。与此同时,纳米纤维素已被公认为一种先进的伤口敷料材料,它能够通过精确的局部、透皮和全身途径递送治疗剂,同时促进细胞增殖和组织再生。纳米纤维素固有的透明度提供了独特优势,能够实时监测伤口愈合进程。尽管取得了这些进展,但基于纳米纤维素的生物材料在大规模生产、可重复性和商业可行性方面仍面临重大挑战。本综述不仅强调了这些障碍,还概述了未来研究的战略方向,包括对具有可扩展生产能力的基于纳米纤维素的伤口敷料进行生物工程设计的必要性,以及为临床转化引入新功能。通过应对这些关键挑战,纳米纤维素有潜力重新定义生物医学材料设计,并为组织工程及其他领域未满足的临床需求提供变革性解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7d44/11855852/3027c1dd87bf/ijms-26-01449-g001.jpg

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