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Coatings of different carbon nanotubes on platinum electrodes for neuronal devices: Preparation, cytocompatibility and interaction with spiral ganglion cells

机译:用于神经元装置的铂电极上不同碳纳米管的涂层:制备,细胞相容性以及与螺旋神经节细胞的相互作用

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摘要

Cochlear and deep brain implants are prominent examples for neuronal prostheses with clinical relevance. Current research focuses on the improvement of the long-term functionality and the size reduction of neural interface electrodes. A promising approach is the application of carbon nanotubes (CNTs), either as pure electrodes but especially as coating material for electrodes. The interaction of CNTs with neuronal cells has shown promising results in various studies, but these appear to depend on the specific type of neurons as well as on the kind of nanotubes. To evaluate a potential application of carbon nanotube coatings for cochlear electrodes, it is necessary to investigate the cytocompatibility of carbon nanotube coatings on platinum for the specific type of neuron in the inner ear, namely spiral ganglion neurons. In this study we have combined the chemical processing of as-delivered CNTs, the fabrication of coatings on platinum, and the characterization of the electrical properties of the coatings as well as a general cytocompatibility testing and the first cell culture investigations of CNTs with spiral ganglion neurons. By applying a modification process to three different as-received CNTs via a reflux treatment with nitric acid, long-term stable aqueous CNT dispersions free of dispersing agents were obtained. These were used to coat platinum substrates by an automated spray-coating process. These coatings enhance the electrical properties of platinum electrodes, decreasing the impedance values and raising the capacitances. Cell culture investigations of the different CNT coatings on platinum with NIH3T3 fibroblasts attest an overall good cytocompatibility of these coatings. For spiral ganglion neurons, this can also be observed but a desired positive effect of the CNTs on the neurons is absent. Furthermore, we found that the well-established DAPI staining assay does not function on the coatings prepared from single-wall nanotubes. © 2016 Burblies et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
机译:耳蜗和深脑植入物是具有临床意义的神经元假体的突出例子。当前的研究集中在长期功能的改善和神经接口电极尺寸的减小上。一种有前途的方法是将碳纳米管(CNT)用作纯电极,尤其是用作电极的涂层材料。碳纳米管与神经元细胞的相互作用已在各种研究中显示出令人鼓舞的结果,但这些似乎取决于神经元的具体类型以及纳米管的种类。为了评估碳纳米管涂层在耳蜗电极上的潜在应用,有必要研究铂金上的碳纳米管涂层对内耳中特定类型神经元(即螺旋神经节神经元)的细胞相容性。在这项研究中,我们结合了已交货的CNT的化学处理,铂上涂层的制造,涂层的电性能表征以及一般的细胞相容性测试以及带有螺旋神经节的CNT的首次细胞培养研究神经元。通过使用硝酸进行回流处理,对三种不同的原样CNT进行改性处理,可以获得不含分散剂的长期稳定的CNT水性分散液。这些用于通过自动喷涂工艺涂覆铂基底。这些涂层增强了铂电极的电性能,降低了阻抗值并提高了电容。用NIH3T3成纤维细胞对铂上不同CNT涂层的细胞培养研究证明,这些涂层总体上具有良好的细胞相容性。对于螺旋神经节神经元,也可以观察到,但是缺少CNT对神经元的期望的正作用。此外,我们发现,行之有效的DAPI染色法在单壁纳米管制备的涂层上不起作用。 ©2016 Burblies等。这是根据知识共享署名许可协议的条款分发的开放获取文章,该条款允许在任何媒介中无限制地使用,分发和复制,但要注明原始作者和出处。

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