用表皮生长因子制造和修饰聚乳酸(PLA)支架,用于神经组织工程。

Biomatter Pub Date : 2016-01-01 Epub Date: 2016-10-14 DOI:10.1080/21592535.2016.1231276
Tanit Haddad, Samantha Noel, Benoît Liberelle, Rouwayda El Ayoubi, Abdellah Ajji, Gregory De Crescenzo
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引用次数: 0

摘要

为了设计可促进中枢神经系统修复的生物材料,我们制作了由电纺聚乳酸纳米纤维制成的具有相互连接孔隙的三维支架。通过湿化学方法,这些支架被聚烯丙基胺功能化,从而引入胺基团。对胺化方案的实验条件进行了深入研究和选择,以引入大量胺基,同时保持支架的机械和结构特性。随后进行了表皮生长因子的共价接枝,以进一步定制这些胺化结构。然后测试了这些支架支持神经干样细胞(NSLCs)培养的能力。令人感兴趣的是,NSLCs 能够在这些表皮生长因子接枝的基底上增殖,即使在培养基中没有可溶性生长因子的情况下也能存活长达 14 天。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Fabrication and surface modification of poly lactic acid (PLA) scaffolds with epidermal growth factor for neural tissue engineering.

Fabrication and surface modification of poly lactic acid (PLA) scaffolds with epidermal growth factor for neural tissue engineering.

Fabrication and surface modification of poly lactic acid (PLA) scaffolds with epidermal growth factor for neural tissue engineering.

Fabrication and surface modification of poly lactic acid (PLA) scaffolds with epidermal growth factor for neural tissue engineering.

In an effort to design biomaterials that may promote repair of the central nervous system, 3-dimensional scaffolds made of electrospun poly lactic acid nanofibers with interconnected pores were fabricated. These scaffolds were functionalized with polyallylamine to introduce amine groups by wet chemistry. Experimental conditions of the amination protocol were thoroughly studied and selected to introduce a high amount of amine group while preserving the mechanical and structural properties of the scaffold. Subsequent covalent grafting of epidermal growth factor was then performed to further tailor these aminated structures. The scaffolds were then tested for their ability to support Neural Stem-Like Cells (NSLCs) culture. Of interest, NSLCs were able to proliferate on these EGF-grafted substrates and remained viable up to 14 d even in the absence of soluble growth factors in the medium.

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