ARC Centre of Excellence for Electromaterials Science, Intelligent Polymer Research Institute, University of Wollongong, Wollongong, NSW 2522, Australia.
Biomaterials. 2011 May;32(15):3822-31. doi: 10.1016/j.biomaterials.2011.01.053. Epub 2011 Feb 25.
The dopant anion in polypyrrole plays a critical role in determining the physical and chemical properties of these conducting polymers. Here we demonstrate an additional effect on the ability to incorporate and release a neurotrophic protein - neurotrophin-3. The multi-faceted role of the dopant is critical in ensuring optimal performance of polypyrroles in their use as platforms for nerve growth. In this paper, the effect of changing the co-dopant used in electrochemical polypyrrole synthesis on the compatibility with primary auditory nerve tissue is considered and compared to some of the physical properties of the films. Significant differences in the controlled-release properties of the films were also observed. The ability of the polymers to enhance nerve growth and survival in vitro with neurotrophin-3 release was also studied, which is a function of both compatibility with the neural tissue and the ability of the polymer to release sufficient neurotrophic protein to affect cell growth. A small synthetic dopant, para-toluene sulphonate, was found to perform favourably in both aspects and ultimately proved to be the most suitable material for the application at hand, which is the delivery of neurotrophins for inner-ear therapies.
聚吡咯中的掺杂阴离子在决定这些导电聚合物的物理和化学性质方面起着关键作用。在这里,我们证明了它对掺入和释放神经营养蛋白——神经生长因子 3 的能力的额外影响。掺杂剂的多方面作用对于确保聚吡咯在作为神经生长平台的应用中发挥最佳性能至关重要。在本文中,我们考虑了改变电化学聚吡咯合成中使用的共掺杂剂对与初级听神经组织的相容性的影响,并将其与膜的一些物理性质进行了比较。还观察到了薄膜控制释放性能的显著差异。聚合物与神经营养蛋白 3 释放一起增强体外神经生长和存活的能力也得到了研究,这是与神经组织的兼容性和聚合物释放足够的神经营养蛋白以影响细胞生长的能力的共同作用。发现一种小型合成掺杂剂,对甲苯磺酸盐,在这两个方面都表现出色,最终被证明是最适合当前应用的材料,即用于内耳治疗的神经营养因子的递送。