Sun Wanying, Hu Yuxiao, Pandi Ananthi, Yi Guohui, Tan Zhijian
Public Research Laboratory, Hainan Medical University, Haikou 571199, China.
Institute of Bast Fiber Crops & Center of Southern Economic Crops, Chinese Academy of Agricultural Sciences, Changsha 410205, China.
Food Chem X. 2025 Jul 14;29:102763. doi: 10.1016/j.fochx.2025.102763. eCollection 2025 Jul.
The urgent need for sustainable food packaging solutions has propelled research into biopolymer-based materials enhanced with natural phenolic compounds. Caffeic acid (CA), a plant-derived polyphenol, stands out as a multifunctional modifier capable of addressing key limitations of biopolymers, such as mechanical fragility, moisture sensitivity, and insufficient antimicrobial activity. This review comprehensively explores CA's dual capacity to stabilize colloids and crosslink polymer chains in polysaccharide- and protein-based films, alongside advanced strategies like enzymatic grafting and nanocomposite design to optimize structural integrity, barrier performance, and active functionalities such as UV-blocking and pH-responsive release. Applications in preserving perishable foods-including meats, fruits, and seafood-demonstrate that CA-functionalized films significantly enhance mechanical strength, moisture resistance, and oxidative stability while delivering robust antimicrobial and antioxidant effects. Although covalent grafting outperforms physical blending in sustaining efficacy, challenges persist in thermal stability and scalable manufacturing. Active food packaging combined with CA will focus on release control optimization, material compatibility improvement, cost reduction and regulatory improvement in the future, to promote the expansion of natural and safe preservation technology to multiple food categories.
对可持续食品包装解决方案的迫切需求推动了对以天然酚类化合物增强的生物聚合物基材料的研究。咖啡酸(CA)是一种植物来源的多酚,作为一种多功能改性剂脱颖而出,能够解决生物聚合物的关键局限性,如机械脆性、湿度敏感性和抗菌活性不足等问题。本综述全面探讨了CA在多糖和蛋白质基薄膜中稳定胶体和交联聚合物链的双重能力,以及诸如酶接枝和纳米复合材料设计等先进策略,以优化结构完整性、阻隔性能以及诸如紫外线阻隔和pH响应释放等活性功能。在保存易腐食品(包括肉类、水果和海鲜)方面的应用表明,CA功能化薄膜显著提高了机械强度、防潮性和氧化稳定性,同时具有强大的抗菌和抗氧化作用。尽管共价接枝在维持功效方面优于物理共混,但在热稳定性和可扩展制造方面仍存在挑战。未来,结合CA的活性食品包装将专注于释放控制优化、材料兼容性改善、成本降低和监管改进,以促进天然安全保鲜技术向多种食品类别扩展。
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