El-Saadony Mohamed T, Saad Ahmed M, Alkafaas Samar Sami, Dladla Mthokozisi, Ghosh Soumya, Elkafas Sara Samy, Hafez Wael, Ezzat Salma Mohamed, Khedr Sohila A, Hussien Aya Misbah, Fahmy Mohamed A, Elesawi Ibrahim Eid, Salem Heba M, Mohammed Dina Mostafa, Abd El-Mageed Taia A, Ahmed Ahmed Ezzat, Mosa Walid F A, El-Tarabily Marwan K, AbuQamar Synan F, El-Tarabily Khaled A
Department of Agricultural Microbiology, Faculty of Agriculture, Zagazig University, Zagazig 44511, Egypt.
Biochemistry Department, Faculty of Agriculture, Zagazig University, Zagazig 44511, Egypt.
Int J Biol Macromol. 2025 Jun;313:142832. doi: 10.1016/j.ijbiomac.2025.142832. Epub 2025 Apr 3.
Chitosan, derived from the deacetylation of chitin, is the second most widely used natural polymer, valued for its nontoxic, biocompatible, and biodegradable properties. These attributes have driven extensive research into diverse applications of chitosan and various derivatives. The key characteristics of chitosan muco-adhesion, permeability enhancement, drug release modulation, and antimicrobial activity are primarily due to its amino and hydroxyl groups. However, the limited solubility of raw chitosan in water and most organic solvents has posed challenges for broader application. Numerous chemically modified derivatives have been developed to address these inadequacies with improved physical and chemical properties. Among these derivatives, chitosan nanoparticles have emerged as versatile drug carriers with precise release kinetics and the capacity for targeted delivery, greatly enhancing drug efficacy and safety profiles for therapeutic applications. Due to these unique physicochemical properties, chitosan and chitosan nanoparticles are promising for improved drug delivery, vaccine administration, transplantation, gene therapy, and diagnostics. This review examines the physicochemical properties and bioactivities of chitosan and chitosan nanoparticles, emphasizing their broad-ranging biomedical applications.
壳聚糖由几丁质脱乙酰化得到,是第二广泛使用的天然聚合物,因其无毒、生物相容性好和可生物降解的特性而受到重视。这些特性推动了对壳聚糖及其各种衍生物的广泛研究。壳聚糖的关键特性,如粘膜粘附性、通透性增强、药物释放调节和抗菌活性,主要归因于其氨基和羟基。然而,天然壳聚糖在水和大多数有机溶剂中的溶解度有限,这对其更广泛的应用提出了挑战。为了解决这些不足,人们开发了许多化学修饰的衍生物,以改善其物理和化学性质。在这些衍生物中,壳聚糖纳米颗粒已成为多功能药物载体,具有精确的释放动力学和靶向递送能力,大大提高了治疗应用中的药物疗效和安全性。由于这些独特的物理化学性质,壳聚糖和壳聚糖纳米颗粒在改善药物递送、疫苗接种、移植、基因治疗和诊断方面具有广阔前景。本文综述了壳聚糖和壳聚糖纳米颗粒的物理化学性质和生物活性,重点介绍了它们在生物医学领域的广泛应用。