Kedir Welela Meka, Deresa Ebisa Mirete, Diriba Tamiru Fayisa
Department of Chemistry, College of Natural and Computational Sciences, Mattu University, Mattu, Ethiopia.
Department of Chemistry, College of Natural Sciences, Jimma University, Jimma, Ethiopia.
Heliyon. 2022 Sep 16;8(9):e10654. doi: 10.1016/j.heliyon.2022.e10654. eCollection 2022 Sep.
Due to their natural availability, biocompatibility, biodegradability, nontoxicity, flexibility, as well as improved structural and functional characteristics, pectin and pectin-based nanocomposites have become an interesting area of numerous researchers. Pectin is a polysaccharide that comes from plants and is used in a variety of products. The significance of pectin polysaccharide and its modified nanocomposites in a number of applications has been shown in numerous reviews. On their uses in pharmaceutical and medication delivery, there are, however, few review publications. The majority of papers on pectin polysaccharide do not structure their explanations of drug distribution and medicinal application. The biological application of pectin nanocomposite is also explained in this review, along with a recent publication. As a result, the goal of this review was in-depth analysis to summarize biological application of pectin and its modified nanocomposites. Due to their exceptional physicochemical and biological characteristics, pectin and its nanocomposites are remarkable materials for medicinal applications. In addition to enhancing the immune system, controlling blood cholesterol, and other things, they have been shown to have anticancer, antidiabetic, antioxidant, anti-inflammatory, immunomodulatory, and antibacterial properties. Because of their biocompatibility and properties that allow for regulated release, they have also received a lot of interest as drug carriers in targeted drug delivery systems. They have been used to administer medications to treat cancer, inflammation, pain, Alzheimer's, bacteria, and relax muscles. This review found that pectin and its derivatives have better drug delivery efficiency and are viable candidates for a wide range of medicinal applications. It has been advised to conduct further research on the subject of toxicity in order to produce commercial formulations that can serve as both therapeutic agents and drug carriers.
由于果胶和果胶基纳米复合材料具有天然可得性、生物相容性、生物降解性、无毒性、柔韧性以及改善的结构和功能特性,它们已成为众多研究人员感兴趣的领域。果胶是一种来自植物的多糖,用于多种产品。许多综述已经表明了果胶多糖及其改性纳米复合材料在许多应用中的重要性。然而,关于它们在药物和药物递送方面的用途,综述性出版物较少。大多数关于果胶多糖的论文在解释药物分布和医学应用时缺乏条理。本综述还解释了果胶纳米复合材料的生物学应用以及最近的一篇出版物。因此,本综述的目的是深入分析,总结果胶及其改性纳米复合材料的生物学应用。由于其特殊的物理化学和生物学特性,果胶及其纳米复合材料是用于医学应用的卓越材料。除了增强免疫系统、控制血液胆固醇等外,它们还被证明具有抗癌、抗糖尿病、抗氧化、抗炎、免疫调节和抗菌特性。由于它们的生物相容性和允许控释的特性,它们作为靶向药物递送系统中的药物载体也受到了广泛关注。它们已被用于给药治疗癌症、炎症、疼痛、阿尔茨海默病、细菌感染以及放松肌肉。本综述发现,果胶及其衍生物具有更好的药物递送效率,是广泛医学应用的可行候选物。建议对毒性问题进行进一步研究,以生产可作为治疗剂和药物载体的商业制剂。