A Shared Resource for Building Polymer-Based Microelectrode Arrays as Neural Interfaces

K. Scholten, Huijing Xu, D. Song, E. Meng
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引用次数: 1

Abstract

Chronic functionality of neural interfaces (NI) is hampered by the physiological response to foreign objects, in part due to the mismatch of mechanical properties between soft neural tissue and the rigid materials used in interface construction. Polymer-based NIs have emerged as a key new technology in the pursuit of chronically stable neural recording and stimulation, but most polymer NIs are bespoke devices developed as part of specific research missions; many researchers do not have access to polymer-based NIs technology and among those who do there is a severe lack of standardization in material, construction, packaging, and testing, leading to a lack of repeatability among datasets. Here we present the Polymer Implantable Electrode (PIE) Foundry, a shared-resource for fabricating and disseminating standardized polymer-based microelectrode arrays for use in NIs. The model is based on the successful shared prototyping concept developed for the field of semiconductor research. Professional staff, supported by the BRAIN Initiative funding and operating in cleanroom space provided by the University of Southern California, offer design, fabrication, packaging, and testing of polymer-based microelectrode arrays as a free service to academic and non-profit research groups. The core enabling technology is a standardized set of micromachining protocols applied to the biocompatible, thin-film polymer Parylene C. By leveraging this method, we produce microelectrode arrays of varied size, shape, channel count, and application, disseminating hundreds of arrays to 18+ research groups in our first three years of operation. By standardizing materials, fabrication, and packaging, we create repeatable and comparable devices and have built a library of shareable designs. Channel counts range from 2 to 64, electrode sizes range from 15 μm diameter to 1 mm, designs include penetrating neural probes, spinal paddle electrodes, surface arrays for electroencephalography, and peripheral nerve cuffs for recording and stimulation, animal models include songbird, mouse, rat, cat, and sheep. Here we present details of our organizational structure, fabrication and packaging methods, representative examples of ex vivo and in vivo electrode performance, and key results from the first three years of Foundry operation.
构建聚合物微电极阵列作为神经接口的共享资源
神经界面(NI)的慢性功能受到对外来物的生理反应的阻碍,部分原因是软神经组织与用于界面构建的刚性材料之间的力学特性不匹配。聚合物基NIs已成为追求长期稳定的神经记录和刺激的关键新技术,但大多数聚合物NIs是作为特定研究任务的一部分而开发的定制设备;许多研究人员无法获得基于聚合物的NIs技术,即使能够获得,在材料、结构、包装和测试方面也严重缺乏标准化,导致数据集之间缺乏可重复性。在这里,我们介绍了聚合物植入电极(PIE)铸造厂,这是一种用于制造和传播用于NIs的标准化聚合物微电极阵列的共享资源。该模型基于为半导体研究领域开发的成功的共享原型概念。在南加州大学提供的洁净室空间中,专业人员在BRAIN计划的资助下,为学术和非营利研究团体免费提供基于聚合物的微电极阵列的设计、制造、包装和测试服务。核心使能技术是一套标准化的微加工协议,应用于生物相容性薄膜聚合物聚对二甲苯c。通过利用这种方法,我们生产各种尺寸、形状、通道数和应用的微电极阵列,在我们运营的前三年向18多个研究小组传播了数百个阵列。通过标准化材料、制造和包装,我们创造了可重复和可比较的设备,并建立了一个可共享的设计库。通道计数范围从2到64,电极尺寸范围从15 μm直径到1毫米,设计包括穿透神经探针,脊髓叶电极,脑电图表面阵列,周围神经袖口记录和刺激,动物模型包括鸣禽,小鼠,大鼠,猫和羊。在这里,我们详细介绍了我们的组织结构,制造和包装方法,离体和体内电极性能的代表性例子,以及铸造操作前三年的关键结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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