Hasannezhad Hossein, Bakhshi Ali, Mozafari M R, Naghib Seyed Morteza
Biomaterials and Tissue Engineering Research Group, Interdisciplinary Technologies Department, Breast Cancer Research Center, Motamed Cancer Institute, ACECR, Tehran, Iran; Department of Food Science and Technology, Faculty of Agriculture and Food Science, Science and Research Branch, Islamic Azad University, Tehran, Iran.
Biomaterials and Tissue Engineering Research Group, Interdisciplinary Technologies Department, Breast Cancer Research Center, Motamed Cancer Institute, ACECR, Tehran, Iran; Nanotechnology Department, School of Advanced Technologies, Iran University of Science and Technology (IUST), Tehran, Iran.
Int J Biol Macromol. 2025 Mar;294:139248. doi: 10.1016/j.ijbiomac.2024.139248. Epub 2024 Dec 29.
Chitosan, a versatile biopolymer derived from chitin, is increasingly recognized in the milk industry for its multifunctional applications in drug delivery, smart packaging, and biosensor development. This review provides a comprehensive analysis of recent advances in chitosan production techniques. These include chemical, biological, and novel methods such as deep eutectic solvents (DES), microwave-assisted approaches, and laser-assisted processes. Surface modification strategies to enhance its functional properties are also discussed. The review highlights the development of various chitosan-based nanocarriers, including nanoparticles, nanofibers, nanogels, and nanocomposites. It emphasizes their stability when combined with milk bioactive ingredients like lipids, peptides, lactose, and minerals. The gastrointestinal fate and safety of chitosan nanoparticles are critically evaluated, showcasing their potential for safe consumption in dairy-related applications. In drug delivery systems, chitosan exhibits excellent compatibility with milk-derived carbohydrates, proteins, and minerals, enabling the development of innovative drug delivery platforms. Additionally, its incorporation into smart packaging materials enhances the shelf-life and quality of dairy products. Chitosan-based biosensors offer precise contaminant detection in the milk industry by enabling precise detection of contaminants such as Bisphenol A, melamine, bacteria, drugs, antibiotics, toxins, heavy metals, and allergens, thus ensuring food safety and quality. Emerging trends, including the integration of artificial intelligence, advanced gene editing, and multifunctional chitosan, are discussed, offering insights into future personalized delivery systems and merging food and drug technologies. The review concludes by highlighting gaps in current research and offering recommendations for future exploration. These suggestions aim to optimize chitosan's unique properties to address key challenges in the milk industry. This article serves as a valuable resource for researchers, industry professionals, and policymakers aiming to innovate within the dairy sector using chitosan-based technologies.
壳聚糖是一种由几丁质衍生而来的多功能生物聚合物,在牛奶行业中,其在药物递送、智能包装和生物传感器开发等多方面的应用日益受到认可。本综述全面分析了壳聚糖生产技术的最新进展。这些技术包括化学法、生物法以及诸如深共熔溶剂(DES)、微波辅助法和激光辅助法等新方法。还讨论了增强其功能特性的表面改性策略。该综述重点介绍了各种基于壳聚糖的纳米载体的发展,包括纳米颗粒、纳米纤维、纳米凝胶和纳米复合材料。强调了它们与脂质、肽、乳糖和矿物质等牛奶生物活性成分结合时的稳定性。对壳聚糖纳米颗粒在胃肠道中的命运和安全性进行了严格评估,展示了它们在乳制品相关应用中安全食用的潜力。在药物递送系统中,壳聚糖与源自牛奶的碳水化合物、蛋白质和矿物质具有出色的相容性,有助于开发创新的药物递送平台。此外,将其纳入智能包装材料可延长乳制品的保质期并提高其质量。基于壳聚糖的生物传感器通过能够精确检测双酚A、三聚氰胺、细菌、药物、抗生素、毒素、重金属和过敏原等污染物,在牛奶行业中实现了精确的污染物检测,从而确保了食品安全和质量。讨论了包括人工智能整合、先进基因编辑和多功能壳聚糖在内的新兴趋势,为未来的个性化递送系统以及融合食品和药物技术提供了见解。综述最后强调了当前研究中的差距,并为未来的探索提供了建议。这些建议旨在优化壳聚糖的独特性能,以应对牛奶行业的关键挑战。本文为旨在利用基于壳聚糖的技术在乳制品领域进行创新的研究人员、行业专业人士和政策制定者提供了宝贵的资源。