具有抗氧化特性的生物聚合物纳米给药系统最新发展综述:对过去五年的洞察

Magdalena M Stevanović, Nenad Filipović
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引用次数: 0

摘要

近年来,基于生物聚合物的具有抗氧化特性的纳米给药系统在药物研究领域备受关注。这些系统为靶向和可控给药提供了前景广阔的策略,同时还具有抗氧化作用,可减轻与氧化应激相关的疾病。总体而言,医疗保健领域在不断发展,因此需要不断开发创新的治疗方法和给药系统(DDS)。DDS 在提高疗效、减少不良反应和优化患者依从性方面发挥着举足轻重的作用。其中,纳米技术驱动的给药方法因其独特的特性,如更好的溶解性、控释性和靶向给药性,而备受关注。纳米材料,包括纳米颗粒、纳米胶囊、纳米管等,为药物输送和组织工程应用提供了多功能平台。此外,基于生物聚合物的 DDS 前景广阔,可利用天然或合成生物聚合物包裹药物,实现定向和控制释放。这些系统具有众多优势,包括生物相容性、生物可降解性和低免疫原性。利用多糖、多核苷酸、蛋白质和聚酯作为生物聚合物基质,进一步增强了 DDSs 的多功能性和适用性。此外,具有抗氧化特性的物质已成为抗击氧化应激相关疾病的关键因素,可防止细胞损伤和慢性疾病。基于生物聚合物的具有抗氧化特性的纳米制剂的开发是一个新兴的研究领域,近年来发表的论文数量大幅增加。本综述全面概述了过去五年中该领域的最新进展。它讨论了各种生物聚合物材料、制造技术、稳定剂、影响降解的因素以及药物释放。此外,它还重点介绍了这一快速发展领域的新兴趋势、挑战和前景。
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A Review of Recent Developments in Biopolymer Nano-Based Drug Delivery Systems with Antioxidative Properties: Insights into the Last Five Years
In recent years, biopolymer-based nano-drug delivery systems with antioxidative properties have gained significant attention in the field of pharmaceutical research. These systems offer promising strategies for targeted and controlled drug delivery while also providing antioxidant effects that can mitigate oxidative stress-related diseases. Generally, the healthcare landscape is constantly evolving, necessitating the continual development of innovative therapeutic approaches and drug delivery systems (DDSs). DDSs play a pivotal role in enhancing treatment efficacy, minimizing adverse effects, and optimizing patient compliance. Among these, nanotechnology-driven delivery approaches have garnered significant attention due to their unique properties, such as improved solubility, controlled release, and targeted delivery. Nanomaterials, including nanoparticles, nanocapsules, nanotubes, etc., offer versatile platforms for drug delivery and tissue engineering applications. Additionally, biopolymer-based DDSs hold immense promise, leveraging natural or synthetic biopolymers to encapsulate drugs and enable targeted and controlled release. These systems offer numerous advantages, including biocompatibility, biodegradability, and low immunogenicity. The utilization of polysaccharides, polynucleotides, proteins, and polyesters as biopolymer matrices further enhances the versatility and applicability of DDSs. Moreover, substances with antioxidative properties have emerged as key players in combating oxidative stress-related diseases, offering protection against cellular damage and chronic illnesses. The development of biopolymer-based nanoformulations with antioxidative properties represents a burgeoning research area, with a substantial increase in publications in recent years. This review provides a comprehensive overview of the recent developments within this area over the past five years. It discusses various biopolymer materials, fabrication techniques, stabilizers, factors influencing degradation, and drug release. Additionally, it highlights emerging trends, challenges, and prospects in this rapidly evolving field.
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