Department of Biotechnology, School of Advanced Technologies in Medicine, Shahid Beheshti University of Medical Sciences, Tehran, Iran.
Immunology Research Center, Tabriz University of Medical Sciences, Tabriz, Iran.
Curr Pharm Des. 2018 Feb 12;23(39):6019-6032. doi: 10.2174/1381612823666170505124927.
Polymeric drug delivery systems in the form of nanocarriers are the most interesting vehicles in anticancer therapy. Among different types of biocompatible polymers, carbohydrate-based polymers or polysaccharides are the most common natural polymers with complex structures consisting of long chains of monosaccharide or disaccharide units bound by glycosidic linkages. Their appealing properties such as availability, biocompatibility, biodegradability, low toxicity, high chemical reactivity, facile chemical modification and low cost led to their extensive applications in biomedical and pharmaceutical fields including development of nano-vehicles for delivery of anti-cancer therapeutic agents. Generally, reducing systemic toxicity, increasing short half-lives and tumor localization of agents are the top priorities for a successful cancer therapy. Polysaccharide-based or - coated nanosystems with respect to their advantageous features as well as accumulation in tumor tissue due to enhanced permeation and retention (EPR) effect can provide promising carrier systems for the delivery of noblest impressive agents. Most challenging factor in cancer therapy was the toxicity of anti-cancer therapeutic agents for normal cells and therefore, targeted delivery of these drugs to the site of action can be considered as an interesting therapeutic strategy. In this regard, several polysaccharides exhibited selective affinity for specific cell types, and so they can act as a targeting agent in drug delivery systems. Accordingly, different aspects of polysaccharide applications in cancer treatment or diagnosis were reviewed in this paper. In this regard, after a brief introduction of polysaccharide structure and its importance, the pharmaceutical usage of carbohydrate-based polymers was considered according to the identity of accompanying active pharmaceutical agents. It was also presented that the carbohydrate based polymers have been extensively considered as promising materials in the design of efficient nanocarriers for anti-cancer biopharmaceuticals including peptide and proteins or nucleic acid-based therapeutics. Then, the importance of various polysaccharide co-polymers in the drug delivery approaches was illustrated.
高分子药物递送系统以纳米载体的形式是抗癌治疗中最有趣的载体。在不同类型的生物相容性聚合物中,基于碳水化合物的聚合物或多糖是最常见的天然聚合物,具有由糖苷键连接的单糖或二糖单元组成的复杂结构。它们吸引人的特性,如可用性、生物相容性、可生物降解性、低毒性、高化学反应性、易于化学修饰和低成本,导致它们在生物医学和制药领域的广泛应用,包括开发纳米载体来递送抗癌治疗剂。一般来说,降低系统毒性、增加药物的短半衰期和肿瘤定位是成功癌症治疗的首要任务。基于多糖的或包裹的纳米系统由于其有利的特性以及由于增强的渗透和保留(EPR)效应在肿瘤组织中的积累,可以为递送电中性药物提供有前途的载体系统。癌症治疗中最具挑战性的因素是抗癌治疗剂对正常细胞的毒性,因此,将这些药物靶向递送到作用部位可以被认为是一种有趣的治疗策略。在这方面,几种多糖对特定细胞类型表现出选择性亲和力,因此它们可以作为药物递送系统中的靶向剂。因此,本文综述了多糖在癌症治疗或诊断中的不同应用方面。在简要介绍多糖的结构及其重要性之后,根据伴随的活性药物成分的身份考虑了基于碳水化合物的聚合物的药物用途。还提出了碳水化合物聚合物已被广泛认为是设计基于肽和蛋白质或核酸的治疗剂的有效抗癌生物制药的纳米载体的有前途的材料。然后,说明了各种多糖共聚物在药物传递方法中的重要性。