Liu Qingye, Duan Bingchao, Xu Xiaojuan, Zhang Lina
College of Chemistry and Molecular Sciences, Wuhan University, Wuhan 430072, China.
J Mater Chem B. 2017 Aug 7;5(29):5690-5713. doi: 10.1039/c7tb01065f. Epub 2017 Jun 29.
Polysaccharides are naturally occurring biological macromolecules that are envisaged as promising substitutes of non-degradable polymers due to their outstanding inherent properties of biodegradability, biocompatibility, low-cost, and availability. Their utilization in the development of nanostructured hybrid materials has numerous advantages in theranostics, the integrated approach of therapeutics and diagnostics. In particular, some rigid polysaccharides occur in nature, which can self-assemble into ordered hierarchical structures, facilitating the controllable fabrication of various nanocomposites. These rigid polysaccharides, including Lentinan, Curdlan, Schizophyllan, Scleroglucan, Auricularian, and yeast glucan, possess the linear β-(1→3)-d-glucan as the backbone with or without β-(1→6)-linked glucose as the branch, having diverse biological activities. This review focuses on the incorporation of nanoparticles, such as gold (AuNPs), silver (AgNPs), selenium (SeNPs), silica, carbon nanotubes, homo-polynucleotides, bio-imaging probes, and drugs, into different rigid polysaccharide matrices through self-assembly and summarizes their biological functions as well as the correlation to their conformations. Additionally, we addressed the use of the as-engineered polysaccharide nanocomposites as effective therapeutic agents, and the challenges or ambiguity issues concerning further practical clinic therapeutic applications.
多糖是天然存在的生物大分子,由于其具有生物可降解性、生物相容性、低成本和易获得性等突出的固有特性,被视为不可降解聚合物的有前途的替代品。它们在纳米结构杂化材料开发中的应用在治疗诊断学(治疗与诊断的综合方法)方面具有诸多优势。特别是,自然界中存在一些刚性多糖,它们可以自组装成有序的层次结构,有利于可控地制备各种纳米复合材料。这些刚性多糖,包括香菇多糖、凝胶多糖、裂褶菌多糖、硬葡聚糖、木耳多糖和酵母葡聚糖,以线性β-(1→3)-d-葡聚糖为主链,有或没有β-(1→6)-连接的葡萄糖作为分支,具有多种生物活性。本综述重点介绍了通过自组装将纳米颗粒,如金纳米颗粒(AuNPs)、银纳米颗粒(AgNPs)、硒纳米颗粒(SeNPs)、二氧化硅、碳纳米管、同聚核苷酸、生物成像探针和药物,掺入不同的刚性多糖基质中,并总结了它们的生物学功能以及与它们构象的相关性。此外,我们还讨论了工程化多糖纳米复合材料作为有效治疗剂的应用,以及进一步实际临床治疗应用中存在的挑战或模糊问题。