先进的电化学电位监测,以提高对电神经刺激方案的理解。

IF 3.7 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Moritz Doering, Jochen Kieninger, Julian Kübler, Ulrich Hofmann, Stefan J Rupitsch, Gerald Urban, Andreas Weltin
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引用次数: 1

摘要

目标。电流控制神经刺激越来越多地应用于神经系统疾病的临床治疗,并广泛应用于人工耳蜗等神经义肢。尽管它很重要,但在微秒级电流脉冲期间电极的时间依赖性电位轨迹,特别是相对于参考电极(RE),并不能精确理解。然而,这些知识对于预测电极上化学反应的贡献,以及最终电极的稳定性、生物相容性、刺激的安全性和有效性至关重要。方法:我们在体外用Pt微电极评估了从毫秒(经典电分析)到微秒(神经刺激)时间尺度的神经刺激方案的电化学。我们开发了一种双通道仪器放大器,在神经刺激装置中包括一个RE。独特的是,我们将电位测量与恒电位预极化相结合,以控制和研究地面状态,这在典型的增产装置中是不可能的。主要的结果。我们彻底验证了仪器,并强调了在不同的神经刺激配置中监测单个电化学电极电位的重要性。我们通过计时电位法研究了电极过程,如氧化形成和氧还原,弥合了毫秒和微秒时间尺度之间的差距。我们的研究结果表明,即使在微秒尺度上,电极的初始表面状态和电化学表面过程对电位轨迹有多大的影响。意义:我们将预处理与刺激相结合的独特使用表明,如果没有严格控制电极的表面状态,解释电极过程的电位轨迹是具有误导性的。特别是在体内,微环境是未知的,简单地测量两个电极之间的电压并不能准确地反映电极的状态和过程。电位边界决定电荷转移、腐蚀和电极/组织界面的改变,如pH值和氧合,特别是在长期病毒感染中。我们的发现与恒流刺激的所有用例相关,强烈倡导在许多应用中进行电化学情境研究,如开发新的电极材料和刺激方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advanced electrochemical potential monitoring for improved understanding of electrical neurostimulation protocols.

Objective.Current-controlled neurostimulation is increasingly used in the clinical treatment of neurological disorders and widely applied in neural prostheses such as cochlear implants. Despite its importance, time-dependent potential traces of electrodes during microsecond-scale current pulses, especially with respect to a reference electrode (RE), are not precisely understood. However, this knowledge is critical to predict contributions of chemical reactions at the electrodes, and ultimately electrode stability, biocompatibility, and stimulation safety and efficacy.Approach.We assessed the electrochemistry of neurostimulation protocolsin vitrowith Pt microelectrodes from millisecond (classical electroanalysis) to microsecond (neurostimulation) timescales. We developed a dual-channel instrumentation amplifier to include a RE in neurostimulation setups. Uniquely, we combined potential measurements with potentiostatic prepolarization to control and investigate the surface status, which is not possible in typical stimulation setups.Main results.We thoroughly validated the instrumentation and highlighted the importance of monitoring individual electrochemical electrode potentials in different configurations of neurostimulation. We investigated electrode processes such as oxide formation and oxygen reduction by chronopotentiometry, bridging the gap between milli- and microsecond timescales. Our results demonstrate how much impact on potential traces the electrode's initial surface state and electrochemical surface processes have, even on a microsecond scale.Significance.Our unique use of preconditioning in combination with stimulation reveals that interpreting potential traces with respect to electrode processes is misleading without rigorous control of the electrode's surface state. Especiallyin vivo, where the microenvironment is unknown, simply measuring the voltage between two electrodes cannot accurately reflect the electrode's state and processes. Potential boundaries determine charge transfer, corrosion, and alterations of the electrode/tissue interface such as pH and oxygenation, particularly in long-termin vivouse. Our findings are relevant for all use-cases of constant-current stimulation, strongly advocating for electrochemicalin situinvestigations in many applications like the development of new electrode materials and stimulation methods.

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来源期刊
Journal of neural engineering
Journal of neural engineering 工程技术-工程:生物医学
CiteScore
7.80
自引率
12.50%
发文量
319
审稿时长
4.2 months
期刊介绍: The goal of Journal of Neural Engineering (JNE) is to act as a forum for the interdisciplinary field of neural engineering where neuroscientists, neurobiologists and engineers can publish their work in one periodical that bridges the gap between neuroscience and engineering. The journal publishes articles in the field of neural engineering at the molecular, cellular and systems levels. The scope of the journal encompasses experimental, computational, theoretical, clinical and applied aspects of: Innovative neurotechnology; Brain-machine (computer) interface; Neural interfacing; Bioelectronic medicines; Neuromodulation; Neural prostheses; Neural control; Neuro-rehabilitation; Neurorobotics; Optical neural engineering; Neural circuits: artificial & biological; Neuromorphic engineering; Neural tissue regeneration; Neural signal processing; Theoretical and computational neuroscience; Systems neuroscience; Translational neuroscience; Neuroimaging.
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