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使用带有纳米材料的可植入微电极阵列实时同步记录大脑细胞外葡萄糖、尖峰信号和局部场电位。

Simultaneous recording of brain extracellular glucose, spike and local field potential in real time using an implantable microelectrode array with nano-materials.

作者信息

Wei Wenjing, Song Yilin, Fan Xinyi, Zhang Song, Wang Li, Xu Shengwei, Wang Mixia, Cai Xinxia

机构信息

State Key Laboratory of Transducer Technology, Institute of Electronics Chinese Academy of Sciences, Beijing 100190, People's Republic of China. University of Chinese Academy of Sciences, Beijing 100190, People's Republic of China.

出版信息

Nanotechnology. 2016 Mar 18;27(11):114001. doi: 10.1088/0957-4484/27/11/114001. Epub 2016 Feb 12.

Abstract

Glucose is the main substrate for neurons in the central nervous system. In order to efficiently characterize the brain glucose mechanism, it is desirable to determine the extracellular glucose dynamics as well as the corresponding neuroelectrical activity in vivo. In the present study, we fabricated an implantable microelectrode array (MEA) probe composed of platinum electrochemical and electrophysiology microelectrodes by standard micro electromechanical system (MEMS) processes. The MEA probe was modified with nano-materials and implanted in a urethane-anesthetized rat for simultaneous recording of striatal extracellular glucose, local field potential (LFP) and spike on the same spatiotemporal scale when the rat was in normoglycemia, hypoglycemia and hyperglycemia. During these dual-mode recordings, we observed that increase of extracellular glucose enhanced the LFP power and spike firing rate, while decrease of glucose had an opposite effect. This dual mode MEA probe is capable of examining specific spatiotemporal relationships between electrical and chemical signaling in the brain, which will contribute significantly to improve our understanding of the neuron physiology.

摘要

葡萄糖是中枢神经系统中神经元的主要底物。为了有效表征大脑葡萄糖机制,需要在体内确定细胞外葡萄糖动态以及相应的神经电活动。在本研究中,我们通过标准微机电系统(MEMS)工艺制造了一种由铂电化学和电生理微电极组成的可植入微电极阵列(MEA)探针。该MEA探针用纳米材料进行了修饰,并植入到经乌拉坦麻醉的大鼠体内,以便在大鼠处于正常血糖、低血糖和高血糖状态时,在相同的时空尺度上同时记录纹状体细胞外葡萄糖、局部场电位(LFP)和尖峰信号。在这些双模式记录过程中,我们观察到细胞外葡萄糖的增加增强了LFP功率和尖峰放电率,而葡萄糖的减少则产生相反的效果。这种双模式MEA探针能够检测大脑中电信号和化学信号之间特定的时空关系,这将极大地有助于增进我们对神经元生理学的理解。

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