In vivo comparison of the charge densities required to evoke motor responses using novel annular penetrating microelectrodes.

Frontiers in neuroengineering Pub Date : 2015-05-12 eCollection Date: 2015-01-01 DOI:10.3389/fneng.2015.00005
Emma K Brunton, Bjorn Winther-Jensen, Chun Wang, Edwin B Yan, Saman Hagh Gooie, Arthur J Lowery, Ramesh Rajan
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引用次数: 4

Abstract

Electrodes for cortical stimulation need to deliver current to neural tissue effectively and safely. We have developed electrodes with a novel annular geometry for use in cortical visual prostheses. Here, we explore a critical question on the ideal annulus height to ensure electrical stimulation will be safe and effective. We implanted single electrodes into the motor cortex of anesthetized rats and measured the current required to evoke a motor response to stimulation, and the charge injection capacity (CIC) of the electrodes. We compared platinum iridium (PtIr) electrodes with different annulus heights, with and without a coating of porous titanium nitride (TiN). Threshold charge densities to evoke a motor response ranged from 12 to 36 μC.cm(-2).ph(-1). Electrodes with larger geometric surface areas (GSAs) required higher currents to evoke responses, but lower charge densities. The addition of a porous TiN coating did not significantly influence the current required to evoke a motor response. The CIC of both electrode types was significantly reduced in vivo compared with in vitro measurements. The measured CIC was 72 and 18 μC.cm(-2).ph(-1) for electrodes with and without a TiN coating, respectively. These results support the use of PtIr annular electrodes with annulus heights greater than 100 μm (GSA of 38, 000 μm(2)). However, if the electrodes are coated with porous TiN the annulus height can be reduced to 40 μm (GSA of 16,000 μm(2)).

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体内比较使用新型环形穿透微电极引起运动反应所需的电荷密度。
用于皮层刺激的电极需要有效、安全地将电流输送到神经组织。我们开发了一种新颖的环形几何电极,用于皮质视觉假体。在这里,我们探讨了理想环空高度的关键问题,以确保电刺激安全有效。我们将单电极植入麻醉大鼠的运动皮层,测量刺激引起运动反应所需的电流和电极的电荷注入能力(CIC)。我们比较了不同环高度的铂铱(PtIr)电极,有和没有多孔氮化钛(TiN)涂层。引起运动响应的阈值电荷密度范围为12 ~ 36 μC.cm(-2).ph(-1)。具有较大几何表面积(gsa)的电极需要较高的电流来引起响应,但电荷密度较低。添加多孔TiN涂层对引起电机响应所需的电流没有显著影响。与体外测量相比,两种电极类型的CIC在体内显着降低。镀TiN和未镀TiN电极的CIC值分别为72 μC.cm(-2).ph(-1)。这些结果支持环空高度大于100 μm的PtIr环形电极的使用(GSA为38,000 μm(2))。然而,如果电极表面涂有多孔TiN,则环空高度可降至40 μm(GSA为16,000 μm(2))。
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