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具有碳酸、定向大接触的电生理测绘电极探头的功能增强和特性研究。

Functional Enhancement and Characterization of an Electrophysiological Mapping Electrode Probe with Carbonic, Directional Macrocontacts.

机构信息

National Institute for R&D in Microtechnologies-IMT Bucharest, 077190 Bucharest, Romania.

Termobit Prod Srl, 020281 Bucharest, Romania.

出版信息

Sensors (Basel). 2023 Aug 29;23(17):7497. doi: 10.3390/s23177497.

Abstract

Electrophysiological mapping (EM) using acute electrode probes is a common procedure performed during functional neurosurgery. Due to their constructive specificities, the EM probes are lagging in innovative enhancements. This work addressed complementing a clinically employed EM probe with carbonic and circumferentially segmented macrocontacts that are operable both for neurophysiological sensing ("recording") of local field potentials (LFP) and for test stimulation. This paper illustrates in-depth the development that is based on the direct writing of functional materials. The unconventional fabrication processes were optimized on planar geometry and then transferred to the cylindrically thin probe body. We report and discuss the constructive concept and architecture of the probe, characteristics of the electrochemical interface deduced from voltammetry and chronopotentiometry, and the results of in vitro and in vivo recording and pulse stimulation tests. Two- and three-directional macrocontacts were added on probes having shanks of 550 and 770 μm diameters and 10-23 cm lengths. The graphitic material presents a ~2.7 V wide, almost symmetric water electrolysis window, and an ultra-capacitive charge transfer. When tested with clinically relevant 150 μs biphasic current pulses, the interfacial polarization stayed safely away from the water window for pulse amplitudes up to 9 mA (135 μC/cm). The in vivo experiments on adult rat models confirmed the high-quality sensing of LFPs. Additionally, the in vivo-prevailing increase in the electrode impedance and overpotential are discussed and modeled by an ionic mobility-reducing spongiform structure; this restricted diffusion model gives new applicative insight into the in vivo-uprisen stimulation overpotential.

摘要

电生理图谱(EM)使用急性电极探针是功能神经外科中常用的一种方法。由于其结构的特殊性,EM 探针在创新增强方面存在滞后。本工作旨在为临床使用的 EM 探针补充碳酸和环形分段宏观接触,这些接触既可以用于局部场电位(LFP)的神经生理感应(“记录”),也可以用于测试刺激。本文深入阐述了基于功能材料直接书写的开发过程。非传统的制造工艺在平面几何形状上进行了优化,然后转移到圆柱薄探针体上。我们报告并讨论了探针的结构概念和架构、从伏安法和恒电位计时法推断出的电化学界面特性,以及体外和体内记录和脉冲刺激测试的结果。在直径为 550 和 770 μm、长度为 10-23 cm 的探针上增加了二维和三维宏观接触。石墨材料具有约 2.7 V 宽、几乎对称的水电解窗口和超电容电荷转移。当用临床相关的 150 μs 双相电流脉冲进行测试时,界面极化在脉冲幅度高达 9 mA(135 μC/cm)时安全地远离水电解窗口。在成年大鼠模型上的体内实验证实了 LFPs 的高质量感应。此外,还讨论并通过离子迁移率降低的海绵状结构对体内电极阻抗和过电势的增加进行了建模;这种限制扩散模型为体内刺激过电势的上升提供了新的应用见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bdf4/10490806/eefa009a7f8a/sensors-23-07497-g001.jpg

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