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纳米多孔金作为一种神经接口涂层:形貌、表面化学和特征尺寸的影响。

Nanoporous gold as a neural interface coating: effects of topography, surface chemistry, and feature size.

作者信息

Chapman Christopher A R, Chen Hao, Stamou Marianna, Biener Juergen, Biener Monika M, Lein Pamela J, Seker Erkin

机构信息

§Lawrence Livermore National Laboratory, Livermore, California 94551, United States.

出版信息

ACS Appl Mater Interfaces. 2015 Apr 8;7(13):7093-100. doi: 10.1021/acsami.5b00410. Epub 2015 Mar 2.

Abstract

Designing neural interfaces that maintain close physical coupling of neurons to an electrode surface remains a major challenge for both implantable and in vitro neural recording electrode arrays. Typically, low-impedance nanostructured electrode coatings rely on chemical cues from pharmaceuticals or surface-immobilized peptides to suppress glial scar tissue formation over the electrode surface (astrogliosis), which is an obstacle to reliable neuron-electrode coupling. Nanoporous gold (np-Au), produced by an alloy corrosion process, is a promising candidate to reduce astrogliosis solely through topography by taking advantage of its tunable length scale. In the present in vitro study on np-Au's interaction with cortical neuron-glia co-cultures, we demonstrate that the nanostructure of np-Au achieves close physical coupling of neurons by maintaining a high neuron-to-astrocyte surface coverage ratio. Atomic layer deposition-based surface modification was employed to decouple the effect of morphology from surface chemistry. Additionally, length scale effects were systematically studied by controlling the characteristic feature size of np-Au through variations in the dealloying conditions. Our results show that np-Au nanotopography, not surface chemistry, reduces astrocyte surface coverage while maintaining high neuronal coverage and may enhance neuron-electrode coupling through nanostructure-mediated suppression of scar tissue formation.

摘要

设计能使神经元与电极表面保持紧密物理耦合的神经接口,对于可植入式和体外神经记录电极阵列而言,仍然是一项重大挑战。通常,低阻抗纳米结构电极涂层依靠药物或表面固定肽的化学信号来抑制电极表面的胶质瘢痕组织形成(星形胶质细胞增生),而这是可靠的神经元 - 电极耦合的一个障碍。通过合金腐蚀工艺制备的纳米多孔金(np - Au),利用其可调节的长度尺度,有望仅通过形貌来减少星形胶质细胞增生。在当前关于np - Au与皮质神经元 - 胶质细胞共培养物相互作用的体外研究中,我们证明np - Au的纳米结构通过维持高神经元与星形胶质细胞表面覆盖率实现了神经元的紧密物理耦合。采用基于原子层沉积的表面改性来分离形貌与表面化学的影响。此外,通过改变脱合金条件控制np - Au的特征尺寸,系统地研究了长度尺度效应。我们的结果表明,np - Au纳米形貌而非表面化学,在保持高神经元覆盖率的同时降低了星形胶质细胞表面覆盖率,并可能通过纳米结构介导的瘢痕组织形成抑制来增强神经元 - 电极耦合。

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