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超软硅胶凝胶作为喷墨打印3D微电极阵列(MEA)设备中的仿生钝化层。

Ultrasoft Silicone Gel as a Biomimetic Passivation Layer in Inkjet-Printed 3D MEA Devices.

作者信息

Yamamoto Hideaki, Grob Leroy, Sumi Takuma, Oiwa Kazuhiro, Hirano-Iwata Ayumi, Wolfrum Bernhard

机构信息

WPI-Advanced Institute for Materials Research (WPI-AIMR), Tohoku University, 2-1-1 Katahira, Aoba-ku, Sendai, 980-8577, Japan.

Institute for Advanced Study, Technische Universität München, Lichtenbergstraße 2a, 85748, Garching, Germany.

出版信息

Adv Biosyst. 2019 Sep;3(9):e1900130. doi: 10.1002/adbi.201900130. Epub 2019 Jul 26.

DOI:10.1002/adbi.201900130
PMID:32648655
Abstract

Multielectrode arrays (MEAs) are versatile tools that are used for chronic recording and stimulation of neural cells and tissues. Driven by the recent progress in understanding of how neuronal growth and function respond to scaffold stiffness, development of MEAs with a soft cell-to-device interface has gained importance not only for in vivo but also for in vitro applications. However, the passivation layer, which constitutes the majority of the cell-device interface, is typically prepared with stiff materials. Herein, a fabrication of an MEA device with an ultrasoft passivation layer is described, which takes advantage of inkjet printing and a polydimethylsiloxane (PDMS) gel with a stiffness comparable to that of the brain. The major challenge in using the PDMS gel is that it cannot be patterned to expose the sensing area of the electrode. This issue is resolved by printing 3D micropillars at the electrode tip. Primary cortical neurons are grown on the fabricated device, and effective stimulation of the culture confirms functional cell-device coupling. The 3D MEA device with an ultrasoft interface provides a novel platform for investigating evoked activity and drug responses of living neuronal networks cultured in a biomimetic environment for both fundamental research and pharmaceutical applications.

摘要

多电极阵列(MEA)是用于长期记录和刺激神经细胞及组织的多功能工具。在理解神经元生长和功能如何响应支架硬度方面取得的最新进展推动下,具有柔软细胞与设备界面的MEA的开发不仅在体内应用而且在体外应用中都变得至关重要。然而,构成细胞与设备界面大部分的钝化层通常是用硬质材料制备的。在此描述了一种具有超软钝化层的MEA设备的制造方法,该方法利用了喷墨打印以及一种刚度与大脑相当的聚二甲基硅氧烷(PDMS)凝胶。使用PDMS凝胶的主要挑战在于它无法被图案化以暴露电极的传感区域。通过在电极尖端打印3D微柱解决了这个问题。原代皮层神经元在制造的设备上生长,对培养物的有效刺激证实了功能性细胞与设备的耦合。具有超软界面的3D MEA设备为研究在仿生环境中培养的活体神经元网络的诱发活动和药物反应提供了一个新平台,可用于基础研究和药物应用。

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