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导电聚合物、双神经生长因子和脉冲电刺激——对神经突生长的显著影响。

Conducting polymers, dual neurotrophins and pulsed electrical stimulation--dramatic effects on neurite outgrowth.

机构信息

ARC Centre of Excellence for Electromaterials Science, Intelligent Polymer Research Institute, University of Wollongong, NSW, Australia.

出版信息

J Control Release. 2010 Jan 25;141(2):161-7. doi: 10.1016/j.jconrel.2009.09.016. Epub 2009 Sep 27.

Abstract

In this study the synergistic effect of delivering two neurotrophins simultaneously to encourage neuron survival and neurite elongation was explored. Neurotrophin-3 (NT-3) and brain-derived neurotrophic factor (BDNF) were incorporated into polypyrrole (PPy) during electrosynthesis and the amounts incorporated and released were determined using iodine-125 ((125)I) radio-labelled neurotrophins. Neurite outgrowth from cochlear neural explants grown on the conducting polymer was equivalent to that on tissue culture plastic but significantly improved with the incorporation of NT-3 and BDNF. Neurite outgrowth from explants grown on polymers containing both NT-3 and BDNF showed significant improvement over PPy doped only with NT-3, due to the synergistic effect of both neurotrophins. Neurite outgrowth was significantly improved when the polymer containing both neurotrophins was electrically stimulated. It is envisaged that when applied to the cochlear implant, these conducting and novel polymer films will provide a biocompatible substrate for storage and release of neurotrophins to help protect auditory neurons from degradation after sensorineural hearing loss and encourage neurite outgrowth towards the electrodes.

摘要

在这项研究中,探索了同时递送两种神经营养因子以促进神经元存活和突起伸长的协同作用。在电合成过程中,将神经营养因子-3(NT-3)和脑源性神经营养因子(BDNF)掺入到聚吡咯(PPy)中,并使用碘-125((125)I)放射性标记的神经营养因子来确定掺入和释放的量。在导电聚合物上生长的耳蜗神经外植体的突起生长与在组织培养塑料上的生长相当,但随着 NT-3 和 BDNF 的掺入,其生长显著改善。与仅用 NT-3 掺杂的 PPy 相比,在含有 NT-3 和 BDNF 的聚合物上生长的外植体的突起生长有显著改善,这是由于两种神经营养因子的协同作用。当含有两种神经营养因子的聚合物进行电刺激时,突起生长得到显著改善。设想将这些导电和新型聚合物膜应用于耳蜗植入物时,它们将提供一个生物相容的基质,用于储存和释放神经营养因子,以帮助保护感音神经性听力损失后的听觉神经元免受降解,并促进突起向电极生长。

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