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Cellular-Scale Microelectrode Arrays to Monitor Movement-Related Neuron Activities in the Epileptic Hippocampus of Awake Mice

机译:细胞级微电极阵列,以监测醒着小鼠的癫痫海马中的运动相关神经元活性

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摘要

Objective: Epilepsy affects 50 million people worldwide and its pathogenesis is still unknown. In particular, the movement-related neural activities involving glutamate (Glu) and electrophysiological signals at cellular level remains unclear. Methods: A cellular-scale implantable microelectrode array (MEA) was fabricated to detect the movement-related neural activities involving Glu concentration and electrophysiological signals. Platinum and reduced graphene oxide nanocomposites were deposited to enhance the surface area. Glu oxidase (Gluox) were coated to effectively recognize Glu molecule. Results: Neural activities in the hippocampus of normal and epileptic mice is different, and the changes are closely connected with movement. Glu concentration and spike firing rate in the epileptic mice were much higher than those in the normal ones. And the neural activities with significant synchronization were detected in the epileptic mice even without seizure occurrence. Meanwhile, the spikes fire more intensively and Glu level became much higher during the movement of the mice compared to the stationary state. Conclusion: The existing abnormality of neural activities in the epileptic mice are potential factors to induce a seizure. Movement may impact the neural activities and the duration of seizure. Significance: The MEA can monitor changes of movement, Glu and neuron discharges synchronously and provides us an effective technology to understand the neuronal disease.
机译:目的:癫痫影响全世界5000万人,其发病机制仍然未知。特别地,涉及谷氨酸(Glu)和细胞水平的电生理信号的运动相关神经活性仍不清楚。方法:制造细胞级可植入微电极阵列(MEA),以检测涉及Glu浓度和电生理信号的运动相关神经活动。沉积铂和还原的石墨烯氧化物纳米复合材料以增强表面积。胶合氧化酶(gluox)涂覆以有效地识别Glu分子。结果:正常和癫痫小鼠海马的神经活动是不同的,并且变化与运动密切相关。癫痫小鼠中的Glu浓度和尖刺烧制率远高于正常情况下的小鼠。即使没有癫痫发生,在癫痫老鼠中检测到具有显着同步的神经活动。同时,与静止状态相比,小鼠的运动在小鼠的运动中,尖峰在比例的运动中变得更高。结论:癫痫小鼠的神经活性异常是诱导癫痫发作的潜在因素。运动可能会影响神经活动和癫痫发作的持续时间。意义:MEA可以同步监测运动,Glu和神经元排放的变化,并为我们提供了理解神经元疾病的有效技术。

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    State Key Laboratory of Transducer Technology Chinese Academy of Sciences;

    State Key Laboratory of Transducer Technology Chinese Academy of Sciences;

    State Key Laboratory of Transducer Technology Chinese Academy of Sciences;

    State Key Laboratory of Transducer Technology Chinese Academy of Sciences;

    State Key Laboratory of Transducer Technology Chinese Academy of Sciences;

    State Key Laboratory of Transducer Technology Chinese Academy of Sciences;

    State Key Laboratory of Transducer Technology Chinese Academy of Sciences;

    State Key Laboratory of Transducer Technology Chinese Academy of Sciences Beijing China;

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  • 正文语种 eng
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  • 关键词

    Electrodes; Neurons; Neural activity; Mice; Hippocampus; Monitoring;

    机译:电极;神经元;神经活动;小鼠;海马;监测;

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