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4
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傅里叶变换电化学阻抗谱在快速循环方波伏安法中测量神经递质的可行性研究。

Feasibility of Applying Fourier Transform Electrochemical Impedance Spectroscopy in Fast Cyclic Square Wave Voltammetry for the Measurement of Neurotransmitters.

机构信息

Department of Biomedical Engineering, Hanyang University, Seoul 04763, Republic of Korea.

Department of Neurologic Surgery, Mayo Clinic, Rochester, Minnesota 55905, United States.

出版信息

Anal Chem. 2021 Dec 7;93(48):15861-15869. doi: 10.1021/acs.analchem.1c02308. Epub 2021 Nov 28.

DOI:10.1021/acs.analchem.1c02308
PMID:34839667
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9393886/
Abstract

We previously reported on the use of fast cyclic square wave voltammetry (FCSWV) as a new voltammetric technique. Fourier transform electrochemical impedance spectroscopy (FTEIS) has recently been utilized to provide information that enables a detailed analytical description of an electrified interface. In this study, we report on attempts to combine FTEIS with FCSWV (FTEIS-FCSWV) and demonstrate the feasibility of FTEIS-FCSWV in the detection of neurotransmitters, thus giving a new type of electrochemical impedance information such as biofouling on the electrode surface. From FTEIS-FCSWV, three new equivalent circuit element voltammograms, consisting of charge-transfer resistance (), solution-resistance (), and double-layer capacitance () voltammograms were constructed and investigated in the phasic changes in dopamine (DA) concentrations. As a result, all , , and voltammograms showed different DA redox patterns and linear trends for the DA concentration ( > 0.99). Furthermore, the voltammogram in FTEIS-FCSWV showed lower limit of detection (21.6 ± 15.8 nM) than FSCV (35.8 ± 17.4 nM). FTEIS-FCSWV also showed significantly lower prediction errors than FSCV in selectivity evaluations of unknown mixtures of catecholamines. Finally, from FTEIS-FCSWV showed a significant relationship with fouling effect on the electrode surface by showing decreased DA sensitivity in both flow injection analysis experiment ( = 0.986) and experiments. Overall, this study demonstrates the feasibility of FTEIS-FCSWV, which could offer a new type of neurochemical spectroscopic information concerning electrochemical monitoring of neurotransmitters in the brain, and the ability to estimate the degree of sensitivity loss caused by biofouling on the electrode surface.

摘要

我们之前曾报道过使用快速循环方波伏安法(FCSWV)作为一种新的伏安技术。傅里叶变换电化学阻抗谱(FTEIS)最近已被用于提供信息,使我们能够对带电界面进行详细的分析描述。在这项研究中,我们报告了尝试将 FTEIS 与 FCSWV 结合(FTEIS-FCSWV)的情况,并证明了 FTEIS-FCSWV 在检测神经递质方面的可行性,从而提供了一种新的电化学阻抗信息,例如电极表面的生物污垢。从 FTEIS-FCSWV 中,构建并研究了三个新的等效电路元件伏安图,它们由电荷转移电阻()、溶液电阻()和双层电容()伏安图组成,并在多巴胺(DA)浓度的相位变化中进行了研究。结果表明,所有、和伏安图都显示出不同的 DA 氧化还原模式和 DA 浓度的线性趋势(>0.99)。此外,FTEIS-FCSWV 中的伏安图的检测限(21.6 ± 15.8 nM)比 FSCV(35.8 ± 17.4 nM)低。FTEIS-FCSWV 在对儿茶酚胺未知混合物的选择性评估中也表现出比 FSCV 更低的预测误差。最后,FTEIS-FCSWV 的从伏安图显示出与电极表面污垢效应的显著关系,即在流动注射分析实验(=0.986)和实验中,DA 敏感性均降低。总体而言,这项研究证明了 FTEIS-FCSWV 的可行性,它可以提供有关脑内神经递质电化学监测的新型神经化学光谱信息,并且能够估计由电极表面生物污垢引起的灵敏度损失程度。