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铝底层在用于与视网膜神经元连接的垂直排列碳纳米管的生物相容性和机械完整性中的作用。

The Roles of an Aluminum Underlayer in the Biocompatibility and Mechanical Integrity of Vertically Aligned Carbon Nanotubes for Interfacing with Retinal Neurons.

作者信息

Watterson William J, Moslehi Saba, Rowland Conor, Zappitelli Kara M, Smith Julian H, Miller David, Chouinard Julie E, Golledge Stephen L, Taylor Richard P, Perez Maria-Thereza, Alemán Benjamín J

机构信息

Physics Department, University of Oregon, Eugene, OR 97403, USA.

Material Science Institute, University of Oregon, Eugene, OR 97403, USA.

出版信息

Micromachines (Basel). 2020 May 28;11(6):546. doi: 10.3390/mi11060546.

Abstract

Retinal implant devices are becoming an increasingly realizable way to improve the vision of patients blinded by photoreceptor degeneration. As an electrode material that can improve restored visual acuity, carbon nanotubes (CNTs) excel due to their nanoscale topography, flexibility, surface chemistry, and double-layer capacitance. If vertically aligned carbon nanotubes (VACNTs) are biocompatible with retinal neurons and mechanically robust, they can further improve visual acuity-most notably in subretinal implants-because they can be patterned into high-aspect-ratio, micrometer-size electrodes. We investigated the role of an aluminum (Al) underlayer beneath an iron (Fe) catalyst layer used in the growth of VACNTs by chemical vapor deposition (CVD). In particular, we cultured dissociated retinal cells for three days in vitro (DIV) on unfunctionalized and oxygen plasma functionalized VACNTs grown from a Fe catalyst (Fe and Fe + Pl preparations, where Pl signifies the plasma functionalization) and an Fe catalyst with an Al underlayer (Al/Fe and Al/Fe + Pl preparations). The addition of the Al layer increased the mechanical integrity of the VACNT interface and enhanced retinal neurite outgrowth over the Fe preparation. Unexpectedly, the extent of neurite outgrowth was significantly greater in the Al/Fe than in the Al/Fe+Pl preparation, suggesting plasma functionalization can negatively impact biocompatibility for some VACNT preparations. Additionally, we show our VACNT growth process for the Al/Fe preparation can support neurite outgrowth for up to 7 DIV. By demonstrating the retinal neuron biocompatibility, mechanical integrity, and pattern control of our VACNTs, this work offers VACNT electrodes as a solution for improving the restored visual acuity provided by modern retinal implants.

摘要

视网膜植入设备正日益成为改善因光感受器退化而失明患者视力的一种可行方法。作为一种能够提高恢复视力的电极材料,碳纳米管(CNTs)因其纳米级形貌、柔韧性、表面化学性质和双层电容而表现出色。如果垂直排列的碳纳米管(VACNTs)与视网膜神经元具有生物相容性且机械强度高,那么它们可以进一步提高视力——在视网膜下植入物中尤为显著——因为它们可以被制成高纵横比、微米尺寸的电极。我们研究了在通过化学气相沉积(CVD)生长VACNTs时,铁(Fe)催化剂层下方的铝(Al)底层的作用。具体而言,我们将解离的视网膜细胞在体外培养三天(DIV),培养对象是由铁催化剂生长的未功能化和经氧等离子体功能化的VACNTs(Fe和Fe + Pl制剂,其中Pl表示等离子体功能化),以及带有铝底层的铁催化剂(Al/Fe和Al/Fe + Pl制剂)。铝层的添加增加了VACNT界面的机械完整性,并增强了相对于Fe制剂的视网膜神经突生长。出乎意料的是,Al/Fe制剂中的神经突生长程度明显大于Al/Fe+Pl制剂,这表明等离子体功能化可能会对某些VACNT制剂的生物相容性产生负面影响。此外,我们展示了Al/Fe制剂的VACNT生长过程能够支持神经突生长长达7天。通过证明我们的VACNTs的视网膜神经元生物相容性、机械完整性和图案控制,这项工作为VACNT电极提供了一种解决方案,以提高现代视网膜植入物提供的恢复视力。

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