Obeidat Wasfy M, Lahlouh Ishraq K
Jordan University of Science and Technology, 3030, Irbid, 22110, Jordan.
AAPS PharmSciTech. 2025 Apr 17;26(5):108. doi: 10.1208/s12249-025-03100-z.
The integration of nanotechnology into drug delivery systems holds great promise for enhancing pharmaceutical effectiveness. This approach enables precise targeting, controlled release, improved patient compliance, reduced side effects, and increased bioavailability. Nanoparticles are vital for transporting biomolecules-such as proteins, enzymes, genes, and vaccines-through various administration routes, including oral, intranasal, vaginal, buccal, and pulmonary. Among biodegradable polymers, chitosan, a linear polysaccharide derived from chitin, stands out due to its biocompatibility, safety, biodegradability, mucoadhesive properties, and ability to enhance permeation. Its cationic nature supports strong molecular interactions and provides antimicrobial, anti-inflammatory, and hemostatic benefits. However, its solubility, influenced by pH and ionic sensitivity, poses challenges requiring effective solutions. This review explores chitosan, its modified derivatives and chitosan nanoparticles mainly, focusing on nanoparticles physicochemical properties, drug release mechanisms, preparation methods, and factors affecting their mean hydrodynamic diameter (particle size). It highlights their application in drug delivery systems and disease treatments across various routes. Key considerations include drug loading capacity, zeta potential, and stability, alongside the impact of molecular weight, degree of deacetylation, and drug solubility on nanoparticle properties. Recent advancements and studies underscore chitosan's potential, emphasizing its modified derivatives'versatility in improving therapeutic outcomes.
将纳米技术整合到药物递送系统中,对于提高药物疗效具有巨大的潜力。这种方法能够实现精准靶向、控释、提高患者依从性、减少副作用并提高生物利用度。纳米颗粒对于通过各种给药途径(包括口服、鼻内、阴道、口腔和肺部)运输生物分子(如蛋白质、酶、基因和疫苗)至关重要。在可生物降解的聚合物中,壳聚糖是一种由甲壳素衍生而来的线性多糖,因其生物相容性、安全性、可生物降解性、粘膜粘附特性以及增强渗透的能力而脱颖而出。其阳离子性质支持强烈的分子相互作用,并具有抗菌、抗炎和止血作用。然而,其溶解度受pH值和离子敏感性的影响,带来了需要有效解决方案的挑战。本综述主要探讨壳聚糖、其改性衍生物和壳聚糖纳米颗粒,重点关注纳米颗粒的物理化学性质、药物释放机制、制备方法以及影响其平均流体动力学直径(粒径)的因素。它强调了它们在各种给药途径的药物递送系统和疾病治疗中的应用。关键考虑因素包括载药量、zeta电位和稳定性,以及分子量、脱乙酰度和药物溶解度对纳米颗粒性质的影响。最近的进展和研究强调了壳聚糖的潜力,强调了其改性衍生物在改善治疗效果方面的多功能性。