水凝胶中生物大分子在中枢神经系统控制药物释放中的应用:综述。
Harnessing the power of biological macromolecules in hydrogels for controlled drug release in the central nervous system: A review.
机构信息
GloNeuro, Sector 107, Vishwakarma Road, Noida, Uttar Pradesh 201301, India; ICMR - National Institute of Nutrition, Tarnaka, Hyderabad, Telangana 500007, India.
GloNeuro, Sector 107, Vishwakarma Road, Noida, Uttar Pradesh 201301, India.
出版信息
Int J Biol Macromol. 2024 Jan;254(Pt 1):127708. doi: 10.1016/j.ijbiomac.2023.127708. Epub 2023 Nov 1.
Hydrogels have immense potential in revolutionizing central nervous system (CNS) drug delivery, improving outcomes for neurological disorders. They serve as promising tools for controlled drug delivery to the CNS. Available hydrogel types include natural macromolecules (e.g., chitosan, hyaluronic acid, alginate), as well as hybrid hydrogels combining natural and synthetic polymers. Each type offers distinct advantages in terms of biocompatibility, mechanical properties, and drug release kinetics. Design and engineering considerations encompass hydrogel composition, crosslinking density, porosity, and strategies for targeted drug delivery. The review emphasizes factors affecting drug release profiles, such as hydrogel properties and formulation parameters. CNS drug delivery applications of hydrogels span a wide range of therapeutics, including small molecules, proteins and peptides, and nucleic acids. However, challenges like limited biodegradability, clearance, and effective CNS delivery persist. Incorporating 3D bioprinting technology with hydrogel-based CNS drug delivery holds the promise of highly personalized and precisely controlled therapeutic interventions for neurological disorders. The review explores emerging technologies like 3D bioprinting and nanotechnology as opportunities for enhanced precision and effectiveness in hydrogel-based CNS drug delivery. Continued research, collaboration, and technological advancements are vital for translating hydrogel-based therapies into clinical practice, benefiting patients with CNS disorders. This comprehensive review article delves into hydrogels for CNS drug delivery, addressing their types, design principles, applications, challenges, and opportunities for clinical translation.
水凝胶在改变中枢神经系统(CNS)药物输送、改善神经疾病治疗结果方面具有巨大潜力。它们是向中枢神经系统进行控制药物输送的有前途的工具。可利用的水凝胶类型包括天然大分子(例如壳聚糖、透明质酸、海藻酸盐),以及将天然和合成聚合物结合在一起的混合水凝胶。每种类型在生物相容性、机械性能和药物释放动力学方面都具有独特的优势。设计和工程考虑因素包括水凝胶组成、交联密度、孔隙率以及靶向药物输送策略。综述强调了影响药物释放曲线的因素,如水凝胶性质和配方参数。水凝胶在中枢神经系统药物输送中的应用涵盖了广泛的治疗药物,包括小分子、蛋白质和肽以及核酸。然而,仍存在一些挑战,如有限的生物降解性、清除率和有效的中枢神经系统输送。将 3D 生物打印技术与基于水凝胶的中枢神经系统药物输送相结合,有望为神经疾病提供高度个性化和精确控制的治疗干预措施。综述探讨了 3D 生物打印和纳米技术等新兴技术,它们为提高基于水凝胶的中枢神经系统药物输送的精确性和有效性提供了机会。持续的研究、合作和技术进步对于将基于水凝胶的治疗方法转化为临床实践至关重要,使患有中枢神经系统疾病的患者受益。本文全面综述了用于中枢神经系统药物输送的水凝胶,探讨了其类型、设计原则、应用、挑战以及临床转化的机遇。