Center for Drug Delivery and Nanomedicine, Department of Pharmaceutical Sciences, University of Nebraska Medical Center, Omaha, NE, 68198, USA.
Formulation R&D, Biological E. Limited, IKP Knowledge Park, Hyderabad, Telangana State, 500078, India.
Int J Nanomedicine. 2021 Mar 26;16:2419-2441. doi: 10.2147/IJN.S303462. eCollection 2021.
Lignin is an abundant renewable natural biopolymer. Moreover, a significant development in lignin pretreatment and processing technologies has opened a new window to explore lignin and lignin-based bionanomaterials. In the last decade, lignin has been widely explored in different applications such as drug and gene delivery, tissue engineering, food science, water purification, biofuels, environmental, pharmaceuticals, nutraceutical, catalysis, and other interesting low-value-added energy applications. The complex nature and antioxidant, antimicrobial, and biocompatibility of lignin attracted its use in various biomedical applications because of ease of functionalization, availability of diverse functional sites, tunable physicochemical and mechanical properties. In addition to it, its diverse properties such as reactivity towards oxygen radical, metal chelation, renewable nature, biodegradability, favorable interaction with cells, nature to mimic the extracellular environment, and ease of nanoparticles preparation make it a very interesting material for biomedical use. Tremendous progress has been made in drug delivery and tissue engineering in recent years. However, still, it remains challenging to identify an ideal and compatible nanomaterial for biomedical applications. In this review, recent progress of lignin towards biomedical applications especially in drug delivery and in tissue engineering along with challenges, future possibilities have been comprehensively reviewed.
木质素是一种丰富的可再生天然生物聚合物。此外,木质素预处理和加工技术的显著发展为探索木质素和木质素基生物纳米材料开辟了新的途径。在过去的十年中,木质素在不同的应用领域得到了广泛的探索,如药物和基因传递、组织工程、食品科学、水净化、生物燃料、环境、制药、营养保健品、催化以及其他有趣的低附加值能源应用。木质素的复杂性质、抗氧化、抗菌和生物相容性因其易于功能化、具有多种功能基团、可调节的物理化学和机械性能而吸引了其在各种生物医学应用中的应用。此外,它的各种性质,如对氧自由基的反应性、金属螯合性、可再生性、可生物降解性、与细胞的良好相互作用、模拟细胞外环境的能力以及易于制备纳米粒子,使其成为生物医学应用的一种非常有趣的材料。近年来,在药物输送和组织工程方面取得了巨大的进展。然而,仍然难以确定一种理想的、适合生物医学应用的纳米材料。本综述全面综述了木质素在生物医学应用,特别是在药物输送和组织工程方面的最新进展,以及所面临的挑战和未来的可能性。