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利用纳米技术促进骨愈合的现状与未来潜力

Present status and future potential of enhancing bone healing using nanotechnology.

作者信息

Stylios George, Wan Taoyu, Giannoudis Peter

机构信息

Heriot-Watt University, Edinburgh, UK.

出版信息

Injury. 2007 Mar;38 Suppl 1:S63-74. doi: 10.1016/j.injury.2007.02.011.

Abstract

An overview of the current state of tissue engineering material systems used in bone healing is presented. A variety of fabrication processes have been developed that have resulted in porous implant substrates that can address unresolved clinical problems. The merits of these biomaterial systems are evaluated in the context of the mechanical properties and biomedical performances most suitable for bone healing. An optimal scaffold for bone tissue engineering applications should be biocompatible and act as a 3D template for in vitro and in vivo bone growth; in addition, its degradation products should be non-toxic and easily excreted by the body. To achieve these features, scaffolds must consist of an interconnected porous network of micro- and nanoscale to allow extensive body fluid transport through the pores, which will trigger bone ingrowth, cell migration, tissue ingrowth, and eventually vascularization.

摘要

本文概述了用于骨愈合的组织工程材料系统的当前状态。已经开发了多种制造工艺,这些工艺产生了能够解决未解决的临床问题的多孔植入物基材。在最适合骨愈合的机械性能和生物医学性能的背景下评估了这些生物材料系统的优点。用于骨组织工程应用的最佳支架应具有生物相容性,并作为体外和体内骨生长的3D模板;此外,其降解产物应无毒且易于被身体排出。为了实现这些特性,支架必须由微米和纳米级相互连接的多孔网络组成,以允许大量体液通过孔隙传输,这将触发骨长入、细胞迁移、组织长入并最终实现血管化。

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