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多糖的多功能化通过聚合物接枝:从设计到生物医学应用。

Versatile Functionalization of Polysaccharides via Polymer Grafts: From Design to Biomedical Applications.

机构信息

Beijing Advanced Innovation Center for Soft Matter Science and Engineering, State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology , Beijing 100029, China.

Key Laboratory of Carbon Fiber and Functional Polymers (Beijing University of Chemical Technology), Ministry of Education , Beijing 100029, China.

出版信息

Acc Chem Res. 2017 Feb 21;50(2):281-292. doi: 10.1021/acs.accounts.6b00477. Epub 2017 Jan 9.

Abstract

Because of their biocompatibility, biodegradability, and unique bioactive properties, polysaccharides have been recognized and directly applied as excellent candidates for various biomedical applications. In order to introduce more functionalities onto polysaccharides, various modification methods were applied to improve the physical-chemical and biochemical properties. Grafting polysaccharides with functional polymers with limited reaction sites maximizes the structural integrity. To the best of our knowledge, great efforts have been made by scientists across the world, including our research group, to explore different strategies for the synthesis and design of controllable polymer-grafted polysaccharides. By the application of some reasonable strategies, a series of polymer-grafted polysaccharides with satisfactory biocharacteristics were obtained. The first strategy involves facile modification of polysaccharides with living radical polymerization (LRP). Functionalized polysaccharides with diverse grafts can be flexibly and effectively achieved. The introduced grafts include cationic components for nuclei acid delivery, PEGylated and zwitterionic moieties for shielding effects, and functional species for bioimaging applications as well as bioresponsive drug release applications. The second synthetic model refers to biodegradable polymer-grafted polysaccharides prepared by ring-opening polymerization (ROP). Inspired by pathways to introduce initiation sites onto polysaccharides, the use of amine-functionalized polysaccharides was explored in-depth to trigger ROP of amino acids. A series of poly(amino acid)-grafted polysaccharides with advanced structures (including linear, star-shaped, and comb-shaped copolymers) were developed to study and optimize the structural effects. In addition, biodegradable polyester-grafted polysaccharides were prepared and utilized for drug delivery. Another emerging strategy was to design polysaccharide-based assemblies with supramolecular structures. A variety of assembly techniques using non-covalent interactions were established to construct different types of polysaccharide-based assemblies with various bioapplications. On the basis of these strategies, polymer-grafted polysaccharides with controllable functions were reported to be well-suited for different kinds of biomedical applications. The exciting results were obtained from both in vitro and in vivo models. Viewing the rapid growth of this field, the present Account will update the concepts, trends, perspectives, and applications of functionalized polysaccharides, guiding and inspiring researchers to explore new polysaccharide-based systems for wider applications.

摘要

由于其生物相容性、生物可降解性和独特的生物活性,多糖已被认可并直接应用于各种生物医学应用中。为了在多糖上引入更多的功能,人们应用了各种修饰方法来改善其物理化学和生化性质。用有限反应位点的功能聚合物接枝多糖可以最大限度地保持其结构完整性。据我们所知,全世界的科学家,包括我们的研究小组,都在努力探索用于可控聚合物接枝多糖的合成和设计的不同策略。通过应用一些合理的策略,可以获得一系列具有令人满意的生物特性的聚合物接枝多糖。第一种策略涉及使用活性自由基聚合(LRP)对多糖进行简便修饰。可以灵活有效地实现具有多种接枝的功能化多糖。引入的接枝包括用于核酸递送的阳离子成分、用于屏蔽效果的 PEG 化和两性离子部分,以及用于生物成像应用和响应性药物释放应用的功能物质。第二种合成模型是指通过开环聚合(ROP)制备可生物降解聚合物接枝多糖。受在多糖上引入引发点途径的启发,深入探索了使用胺功能化多糖来引发氨基酸的 ROP。开发了一系列具有先进结构的聚(氨基酸)-接枝多糖(包括线性、星形和梳状共聚物),以研究和优化结构效应。此外,还制备了可生物降解聚酯接枝多糖并将其用于药物递送。另一种新兴策略是设计具有超分子结构的多糖基组装体。建立了多种使用非共价相互作用的组装技术,以构建具有各种生物应用的不同类型的多糖基组装体。基于这些策略,报道了具有可控功能的聚合物接枝多糖非常适合各种生物医学应用。从体外和体内模型中都获得了令人兴奋的结果。鉴于该领域的快速发展,本综述将更新功能化多糖的概念、趋势、观点和应用,指导和启发研究人员探索新的多糖基系统以实现更广泛的应用。

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