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首页> 外文期刊>Journal of biomedical materials research, Part A >Nerve growth factor-immobilized polypyrrole: Bioactive electrically conducting polymer for enhanced neurite extension
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Nerve growth factor-immobilized polypyrrole: Bioactive electrically conducting polymer for enhanced neurite extension

机译:固定有神经生长因子的聚吡咯:增强神经突延伸的生物活性导电聚合物

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摘要

Biomaterials that present multiple stimuli are attractive for a number of biomedical applications. In particular, electrical and biological cues are important factors to include in interfaces with neurons for applications such as nerve conduits and neural probes. Here, we report the combination of these two stimuli, by immobilizing nerve growth factor (NGF) on the surface of the electrically conducting polymer polypyrrole (PPy). NGF was immobilized using an intermediate linker provided by a layer of polyallylamine conjugated to an arylazido functional group. Upon exposure to UV light and activation of the azido groups, NGF was fixed to the substrate. Three different surface concentrations were obtained (0.21-0.98 ng/mm~2) and similar levels of neurite extension were observed on immobilized NGF as with soluble NGF. Additionally, electrical stimulation experiments were conducted with the modified polymer and revealed a 50 percent increase in neurite outgrowth in PC12 cells compared to experiments without electrical stimulation. This novel modification of PPy provides both electrical and biological stimulation, by presenting tethered growth factors and only producing a small decrease in the material's properties (conductivity approx 10 S cm~(-1)) when compared to other modification techniques (conductivity approx 10~(-3) -10~(-6) S cm~(-1)).
机译:具有多种刺激的生物材料对于许多生物医学应用具有吸引力。特别地,电学和生物学线索是包括在与神经元的接口中以用于诸如神经导管和神经探针的应用的重要因素。在这里,我们通过将神经生长因子(NGF)固定在导电聚合物聚吡咯(PPy)的表面上来报告这两种刺激的组合。使用由与芳基叠氮基官能团缀合的聚烯丙胺层提供的中间接头固定NGF。在暴露于UV光和激活叠氮基团后,将NGF固定在基底上。获得了三种不同的表面浓度(0.21-0.98 ng / mm〜2),并且在固定的NGF上观察到与可溶性NGF相似的神经突延伸水平。另外,用改性聚合物进行电刺激实验,结果表明与没有电刺激的实验相比,PC12细胞中神经突生长增加了50%。与其他修饰技术(电导率约10%)相比,这种新型的PPy修饰物通过呈现束缚的生长因子,提供了电刺激和生物刺激,并且仅使材料的性能略有下降(电导率约为10 S cm〜(-1))。 (-3)-10〜(-6)S cm〜(-1))。

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