了解用于神经递质检测的快速扫描循环伏安法中结垢机制对工作电极和参比电极的不同影响

IF 3.3 3区 化学 Q2 CHEMISTRY, ANALYTICAL
Analyst Pub Date : 2024-04-04 DOI:10.1039/D3AN02205F
Jaehyun Jang, Hyun-U. Cho, Sangmun Hwang, Youngjong Kwak, Haeun Kwon, Michael L. Heien, Kevin E. Bennet, Yoonbae Oh, Hojin Shin, Kendall H. Lee and Dong Pyo Jang
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引用次数: 0

摘要

快速扫描循环伏安法(FSCV)是一种广泛用于检测神经递质的技术。然而,电极结垢会对其准确性和灵敏度产生负面影响。污垢是指电极表面堆积的不需要的物质,它会改变电极的电化学特性,降低其灵敏度和选择性。结垢的机理很广,可能包括生物结垢(生物分子在电极表面的积累)和化学结垢(不需要的化学物质的沉积)。尽管有个别研究讨论了污垢对工作电极或参比电极的影响,但还没有进行过全面的研究来比较在 FSCV 条件下污垢对两个电极的总体影响。在此,我们研究了生物污垢和化学污垢对碳纤维微电极(CFME)工作电极和 Ag/AgCl 参比电极与 FSCV 的影响。碳纤维微电极和银/氯化银参比电极上的这两种污垢机制都大大降低了 FSCV 信号的灵敏度并导致峰值电压偏移,而银/氯化银参比电极则没有。有趣的是,以前的研究曾报道过由于 Ag/AgCl 电极在植入大脑后结垢而导致 FSCV 信号的峰值电压偏移。我们在之前的研究中注意到,植入后能量色散光谱(EDS)光谱中硫化物离子浓度增加。我们假设硫化物离子可能是峰值电压偏移的原因。为了验证这一假设,我们在缓冲溶液中添加了硫化物离子,这降低了 Ag/AgCl 电极的开路电位和 FSCV 伏安图中的峰值电压偏移。此外,EDS 分析表明,长期植入 3 周后,Ag/AgCl 电极表面的硫化物离子浓度增加,因此有必要将硫化物离子视为参比电极的污垢剂。总之,我们的研究为了解电极结垢的机理及其对 FSCV 测量的影响提供了重要启示。这些发现可为 FSCV 实验的设计提供参考,并为提高体内 FSCV 测量的准确性和可靠性开发出新的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Understanding the different effects of fouling mechanisms on working and reference electrodes in fast-scan cyclic voltammetry for neurotransmitter detection†

Understanding the different effects of fouling mechanisms on working and reference electrodes in fast-scan cyclic voltammetry for neurotransmitter detection†

Fast-scan cyclic voltammetry (FSCV) is a widely used technique for detecting neurotransmitters. However, electrode fouling can negatively impact its accuracy and sensitivity. Fouling refers to the accumulation of unwanted materials on the electrode surface, which can alter its electrochemical properties and reduce its sensitivity and selectivity. Fouling mechanisms can be broad and may include biofouling, the accumulation of biomolecules on the electrode surface, and chemical fouling, the deposition of unwanted chemical species. Despite individual studies discussing fouling effects on either the working electrode or the reference electrode, no comprehensive study has been conducted to compare the overall fouling effects on both electrodes in the context of FSCV. Here, we examined the effects of biofouling and chemical fouling on the carbon fiber micro-electrode (CFME) as the working electrode and the Ag/AgCl reference electrode with FSCV. Both fouling mechanisms significantly decreased the sensitivity and caused peak voltage shifts in the FSCV signal with the CFME, but not with the Ag/AgCl reference electrode. Interestingly, previous studies have reported peak voltage shifts in FSCV signals due to the fouling of Ag/AgCl electrodes after implantation in the brain. We noticed in a previous study that energy-dispersive spectroscopy (EDS) spectra showed increased sulfide ion concentration after implantation. We hypothesized that sulfide ions may be responsible for the peak voltage shift. To test this hypothesis, we added sulfide ions to the buffer solution, which decreased the open circuit potential of the Ag/AgCl electrode and caused a peak voltage shift in the FSCV voltammograms. Also, EDS analysis showed that sulfide ion concentration increased on the surface of the Ag/AgCl electrodes after 3 weeks of chronic implantation, necessitating consideration of sulfide ions as the fouling agent for the reference electrodes. Overall, our study provides important insights into the mechanisms of electrode fouling and its impact on FSCV measurements. These findings could inform the design of FSCV experiments, with the development of new strategies for improving the accuracy and reliability of FSCV measurements in vivo.

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来源期刊
Analyst
Analyst 化学-分析化学
CiteScore
7.80
自引率
4.80%
发文量
636
审稿时长
1.9 months
期刊介绍: "Analyst" journal is the home of premier fundamental discoveries, inventions and applications in the analytical and bioanalytical sciences.
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