Haider Md Kaiser, Ullah Azeem, Gopiraman Mayakrishnan, Kim Ick Soo
Nano Fusion Technology Research Group, Institute for Fiber Engineering and Science (IFES), Interdisciplinary Cluster for Cutting Edge Research (ICCER), Shinshu University, Tokida 3-15-1, Ueda, Nagano 386-8567, Japan.
Nano Fusion Technology Research Group, Institute for Fiber Engineering and Science (IFES), Interdisciplinary Cluster for Cutting Edge Research (ICCER), Shinshu University, Tokida 3-15-1, Ueda, Nagano 386-8567, Japan.
Int J Biol Macromol. 2025 Mar;294:139366. doi: 10.1016/j.ijbiomac.2024.139366. Epub 2024 Dec 30.
Modern science focuses on sustainability-oriented innovation. Structurally sophisticated lignin is a sustainable alternative to non-renewable resources. Over the last several years, a tremendous scientific effort has been made to innovate lignin-based sustainable materials for numerous advanced applications. The lignin's phenolic, methoxyl and aliphatic hydroxyl functional groups are biologically and chemically active, making it conducive to developing state-of-the-art biomedicine, food packaging, crop protection, and catalyst materials. The biocidal effect of lignin rests on the phenolic compounds, specifically the double bond in α, β positions of the side chain, and a methyl group in the γ position. Also, depending on the biomass source and the pulping method, lignins possess different biocidal and antioxidant properties. The abundant hydroxyl groups in lignin are metal reductants and possess capping ability for the nanoparticles (NPs). This review focused on lignin's bioactivity mechanism, including antimicrobial efficacy and antioxidant properties. Lignin-based micro/nanocomposites and their application on food packaging, plant protection, and growth will also be explored. We will also review the application of lignin as a reducing and capping agent for the synthesis of metal NPs.
现代科学专注于以可持续发展为导向的创新。结构复杂的木质素是不可再生资源的可持续替代品。在过去几年中,人们付出了巨大的科学努力,致力于创新基于木质素的可持续材料,以用于众多先进应用。木质素的酚羟基、甲氧基和脂肪族羟基官能团具有生物和化学活性,有利于开发最先进的生物医学、食品包装、作物保护和催化剂材料。木质素的杀菌作用取决于酚类化合物,特别是侧链α、β位的双键以及γ位的甲基。此外,根据生物质来源和制浆方法的不同,木质素具有不同的杀菌和抗氧化性能。木质素中丰富的羟基是金属还原剂,并且对纳米颗粒(NPs)具有封端能力。本综述聚焦于木质素的生物活性机制,包括抗菌功效和抗氧化性能。还将探讨基于木质素的微/纳米复合材料及其在食品包装、植物保护和生长方面的应用。我们还将综述木质素作为金属纳米颗粒合成的还原剂和封端剂的应用。