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制药与生物医学科学中的仿生聚合物

Biomimetic polymers in pharmaceutical and biomedical sciences.

作者信息

Drotleff S, Lungwitz U, Breunig M, Dennis A, Blunk T, Tessmar J, Göpferich A

机构信息

Department of Pharmaceutical Technology, University of Regensburg, Regensburg, Germany.

出版信息

Eur J Pharm Biopharm. 2004 Sep;58(2):385-407. doi: 10.1016/j.ejpb.2004.03.018.

Abstract

This review describes recent developments in the emerging field of biomimetic polymeric biomaterials, which signal to cells via biologically active entities. The described biological effects are, in contrast to many other known interactions, receptor mediated and therefore very specific for certain cell types. As an introduction into this field, first some biological principles are illustrated such as cell attachment, cytokine signaling and endocytosis, which are some of the mechanisms used to control cells with biomimetic polymers. The next topics are then the basic design rules for the creation of biomimetic materials. Here, the major emphasis is on polymers that are assembled in separate building blocks, meaning that the biologically active entity is attached to the polymer in a separate chemical reaction. In that respect, first individual chemical standard reactions that may be used for this step are briefly reviewed. In the following chapter, the emphasis is on polymer types that have been used for the development of several biomimetic materials. There is, thereby, a delineation made between materials that are processed to devices exceeding cellular dimensions and materials predominantly used for the assembly of nanostructures. Finally, we give a few current examples for applications in which biomimetic polymers have been applied to achieve a better biomaterial performance.

摘要

本综述描述了仿生聚合物生物材料这一新兴领域的最新进展,这些材料通过生物活性实体向细胞发出信号。与许多其他已知相互作用不同,所描述的生物学效应是受体介导的,因此对某些特定细胞类型具有高度特异性。作为对该领域的介绍,首先阐述了一些生物学原理,如细胞黏附、细胞因子信号传导和内吞作用,这些是利用仿生聚合物控制细胞的一些机制。接下来的主题是仿生材料制备的基本设计规则。在此,主要强调的是由单独的构建块组装而成的聚合物,这意味着生物活性实体是通过单独的化学反应连接到聚合物上的。在这方面,首先简要回顾了可用于此步骤的各个化学标准反应。在接下来的章节中,重点是已用于开发多种仿生材料的聚合物类型。因此,在加工成超过细胞尺寸的装置的材料和主要用于组装纳米结构的材料之间进行了区分。最后,我们给出了一些当前的应用实例,其中仿生聚合物已被用于实现更好的生物材料性能。

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