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生物医学应用中的树枝状大分子——对该领域的思考

Dendrimers in biomedical applications--reflections on the field.

作者信息

Svenson Sönke, Tomalia Donald A

机构信息

Dendritic NanoTechnologies, Inc., 2625 Denison Drive, Mount Pleasant, MI 48858, USA.

出版信息

Adv Drug Deliv Rev. 2005 Dec 14;57(15):2106-29. doi: 10.1016/j.addr.2005.09.018. Epub 2005 Nov 21.

Abstract

The formation of particulate systems with well-defined sizes and shapes is of eminent interest in certain medical applications such as drug delivery, gene transfection, and imaging. The high level of control possible over the architectural design of dendrimers; their size, shape, branching length/density, and their surface functionality, clearly distinguishes these structures as unique and optimum carriers in those applications. The bioactive agents may be encapsulated into the interior of the dendrimers or chemically attached/physically adsorbed onto the dendrimer surface, with the option of tailoring the carrier to the specific needs of the active material and its therapeutic applications. In this regard, the high density of exo-presented surface groups allows attachment of targeting groups or functionality that may modify the solution behavior or toxicity of dendrimers. Quite remarkably, modified dendrimers have been shown to act as nano-drugs against tumors, bacteria, and viruses. Recent successes in simplifying and optimizing the synthesis of dendrimers such as the 'lego' and 'click' approaches, provide a large variety of structures while at the same time reducing the cost of their production. The reflections on biomedical applications of dendrimers given in this review clearly demonstrate the potential of this new fourth major class of polymer architecture and indeed substantiate the high hopes for the future of dendrimers.

摘要

形成具有明确尺寸和形状的颗粒系统在某些医学应用中具有重大意义,如药物递送、基因转染和成像。对树枝状大分子的结构设计能够进行高度控制,包括其大小、形状、支化长度/密度以及表面功能,这使得这些结构在这些应用中明显区别于其他结构,成为独特且理想的载体。生物活性剂可以封装在树枝状大分子内部,或者化学连接/物理吸附在树枝状大分子表面,从而能够根据活性物质及其治疗应用的特定需求对载体进行定制。在这方面,高密度的表面基团能够连接靶向基团或功能基团,这些基团可能会改变树枝状大分子的溶液行为或毒性。非常值得注意的是,已证明修饰后的树枝状大分子可作为针对肿瘤、细菌和病毒的纳米药物。最近在简化和优化树枝状大分子合成方面取得的成功,如“乐高”和“点击”方法,提供了各种各样的结构,同时降低了生产成本。本综述中对树枝状大分子生物医学应用的思考清楚地展示了这种新型第四类主要聚合物结构的潜力,确实证实了对树枝状大分子未来的高度期望。

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