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用于检测癫痫大鼠皮层与海马协同关系的铂纳米粒子/还原氧化石墨烯-葡萄糖氧化酶/微图案化定向电镀双模式微电极阵列

PtNPs/rGO-GluOx/mPD Directionally Electroplated Dual-Mode Microelectrode Arrays for Detecting the Synergistic Relationship between the Cortex and Hippocampus of Epileptic Rats.

作者信息

Xie Jingyu, Dai Yuchuan, Xing Yu, Wang Yiding, Yang Gucheng, He Enhui, Xu Zhaojie, Fan Penghui, Mo Fan, Wu Yirong, Song Yilin, Cai Xinxia

机构信息

State Key Laboratory of Transducer Technology, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing 100190, P. R. China.

School of Electronic, Electrical and Communication Engineering, University of Chinese Academy of Sciences, Beijing 100049, P. R. China.

出版信息

ACS Sens. 2023 Apr 28;8(4):1810-1818. doi: 10.1021/acssensors.3c00140. Epub 2023 Apr 4.

DOI:10.1021/acssensors.3c00140
PMID:37014663
Abstract

Precise and directional couplings of functional nanomaterials with implantable microelectrode arrays (IMEAs) are critical for the manufacture of sensitive enzyme-based electrochemical neural sensors. However, there is a gap between the microscale of IMEA and conventional bioconjugation techniques for enzyme immobilization, which leads to a series of challenges such as limited sensitivity, signal crosstalk, and high detection voltage. Here, we developed a novel method using carboxylated graphene oxide (cGO) to directionally couple the glutamate oxidase (GluOx) biomolecules onto the neural microelectrode to monitor glutamate concentration and electrophysiology in the cortex and hippocampus of epileptic rats under RuBi-GABA modulation. The resulting glutamate IMEA exhibited good performance involving less signal crosstalk between microelectrodes, lower reaction potential (0.1 V), and higher linear sensitivity (141.00 ± 5.66 nA μM mm). The excellent linearity ranged from 0.3 to 68 μM ( = 0.992), and the limit of detection was 0.3 μM. For epileptic rats, the proposed IMEA sensitively obtained synergetic variations in the action potential (Spike), local field potentials (LFPs), and glutamate of the cortex and hippocampus during seizure and RuBi-GABA inhibition. We found that the increase in glutamate preceded the burst of electrophysiological signals. At the same time, both changes in the hippocampus preceded the cortex. This reminded us that glutamate changes in the hippocampus could serve as important indicators for early warning of epilepsy. Our findings provided a new technical strategy for directionally stabilizing enzymes onto the IMEA with versatile implications for various biomolecules' modification and facilitated the development of detecting tools for understanding the neural mechanism.

摘要

功能性纳米材料与植入式微电极阵列(IMEAs)的精确且定向耦合对于制造基于酶的灵敏电化学神经传感器至关重要。然而,IMEAs的微观尺度与用于酶固定的传统生物共轭技术之间存在差距,这导致了一系列挑战,如灵敏度有限、信号串扰和高检测电压。在此,我们开发了一种新方法,使用羧基化氧化石墨烯(cGO)将谷氨酸氧化酶(GluOx)生物分子定向耦合到神经微电极上,以监测癫痫大鼠在RuBi-GABA调节下皮质和海马中的谷氨酸浓度及电生理情况。所得的谷氨酸IMEAs表现出良好的性能,包括微电极之间信号串扰较少、反应电位较低(0.1 V)以及线性灵敏度较高(141.00 ± 5.66 nA μM mm)。出色的线性范围为0.3至68 μM( = 0.992),检测限为0.3 μM。对于癫痫大鼠,所提出的IMEAs在癫痫发作和RuBi-GABA抑制期间灵敏地获得了皮质和海马中动作电位(Spike)、局部场电位(LFPs)和谷氨酸的协同变化。我们发现谷氨酸的增加先于电生理信号的爆发。同时,海马中的这两种变化均先于皮质。这提醒我们,海马中的谷氨酸变化可作为癫痫早期预警的重要指标。我们的研究结果提供了一种将酶定向稳定在IMEAs上的新技术策略,对各种生物分子的修饰具有广泛意义,并促进了用于理解神经机制的检测工具的开发。

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