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将双层微球纳入聚合物神经导管中,以持续释放胶质细胞源性神经营养因子。

Incorporation of double-walled microspheres into polymer nerve guides for the sustained delivery of glial cell line-derived neurotrophic factor.

机构信息

Department of Bioengineering, University of Pittsburgh, Pittsburgh, PA 15261, USA.

出版信息

Biomaterials. 2010 Mar;31(8):2313-22. doi: 10.1016/j.biomaterials.2009.11.075. Epub 2009 Dec 7.

Abstract

The purpose of this study was to develop a biodegradable polymer nerve guide that locally delivers bioactive neurotrophic factors in physiologically relevant concentrations for the period required by transected peripheral nerves to cross from the proximal to distal nerve stump. Delivery of a neurotrophic factor may enhance nerve regeneration and could potentially be used to overcome the current limitations in nerve repair across large defects. Glial Cell Line-Derived Neurotrophic Factor (GDNF) is a known promoter of axonal elongation and branching and has shown promising pre-clinical results in analysis of nerve regeneration with nerve guides. In addition, GDNF has been shown to promote Schwann cell proliferation and migration. In this study we have created a double-walled microsphere delivery system for bioactive GDNF with a sustained release profile>50 days in vitro. Microspheres were incorporated within degradable poly(caprolactone) nerve guides in a reproducible distribution. Implantation of nerve guides across a 1.5 cm defect in a rat sciatic nerve gap resulted in an increase in tissue integration in both the proximal and distal segments of the lumen of the nerve guide after 6 weeks. In addition, transverse sections of the distal region of the explanted guides showed the presence of Schwann cells while none were detectable in negative control guides. Migration of Schwann cells to double-walled microspheres indicated that bioactive GDNF was encapsulated and delivered to the internal environment of the nerve guide. Because GDNF increased tissue formation within the nerve guide lumen and also promoted the migration and proliferation of Schwann cells, the nerve guides presented within this study show promise toward the development of an off-the-shelf product alternative that promotes nerve regeneration beyond that capable with currently available nerve guides.

摘要

本研究旨在开发一种可生物降解的聚合物神经导管,该导管能够以生理相关浓度局部递送电活性神经营养因子,持续时间需满足切断的周围神经从近端到远端神经残端穿过的时间。递送电活性神经营养因子可能会增强神经再生,并且有可能克服目前在穿过大的神经缺损进行神经修复方面的局限性。胶质细胞源性神经营养因子(GDNF)是已知的促进轴突伸长和分支的因子,并且在神经导管分析的神经再生的临床前研究中显示出很有前景的结果。此外,GDNF 已被证明可促进雪旺细胞的增殖和迁移。在本研究中,我们创建了一种用于生物活性 GDNF 的双层微球递送系统,该系统具有>50 天的体外持续释放特性。微球以可重复的分布形式掺入可降解的聚己内酯神经导管中。将神经导管植入大鼠坐骨神经间隙 1.5 厘米的缺损处,6 周后,在神经导管腔的近端和远端段均观察到组织整合增加。此外,在植入的导管的远端横截面上可见雪旺细胞,而在阴性对照导管中则检测不到。雪旺细胞向双层微球的迁移表明,生物活性 GDNF 被包裹并递送到神经导管的内部环境中。由于 GDNF 增加了神经导管管腔中的组织形成,并且还促进了雪旺细胞的迁移和增殖,因此本研究中提出的神经导管在开发可替代目前可用的神经导管的即用型产品方面具有很大的潜力,以促进神经再生。

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