首页> 美国卫生研究院文献>Journal of Visualized Experiments : JoVE >Recording and Modulation of Epileptiform Activity in Rodent Brain Slices Coupled to Microelectrode Arrays
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Recording and Modulation of Epileptiform Activity in Rodent Brain Slices Coupled to Microelectrode Arrays

机译:啮齿动物脑片与微电极阵列耦合的癫痫样活动的记录和调制。

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摘要

Temporal lobe epilepsy (TLE) is the most common partial complex epileptic syndrome and the least responsive to medications. Deep brain stimulation (DBS) is a promising approach when pharmacological treatment fails or neurosurgery is not recommended. Acute brain slices coupled to microelectrode arrays (MEAs) represent a valuable tool to study neuronal network interactions and their modulation by electrical stimulation. As compared to conventional extracellular recording techniques, they provide the added advantages of a greater number of observation points and a known inter-electrode distance, which allow studying the propagation path and speed of electrophysiological signals. However, tissue oxygenation may be greatly impaired during MEA recording, requiring a high perfusion rate, which comes at the cost of decreased signal-to-noise ratio and higher oscillations in the experimental temperature. Electrical stimulation further stresses the brain tissue, making it difficult to pursue prolonged recording/stimulation epochs. Moreover, electrical modulation of brain slice activity needs to target specific structures/pathways within the brain slice, requiring that electrode mapping be easily and quickly performed live during the experiment. Here, we illustrate how to perform the recording and electrical modulation of 4-aminopyridine (4AP)-induced epileptiform activity in rodent brain slices using planar MEAs. We show that the brain tissue obtained from mice outperforms rat brain tissue and is thus better suited for MEA experiments. This protocol guarantees the generation and maintenance of a stable epileptiform pattern that faithfully reproduces the electrophysiological features observed with conventional field potential recording, persists for several hours, and outlasts sustained electrical stimulation for prolonged epochs. Tissue viability throughout the experiment is achieved thanks to the use of a small-volume custom recording chamber allowing for laminar flow and quick solution exchange even at low (1 mL/min) perfusion rates. Quick MEA mapping for real-time monitoring and selection of stimulating electrodes is performed by a custom graphic user interface (GUI).
机译:颞叶癫痫(TLE)是最常见的部分复杂性癫痫综合征,对药物的反应最少。当药理治疗失败或不建议进行神经外科手术时,深部脑刺激(DBS)是一种很有前途的方法。耦合至微电极阵列(MEA)的急性脑切片代表了研究神经元网络相互作用及其通过电刺激进行调制的有价值的工具。与传统的细胞外记录技术相比,它们提供了更多的观察点和已知的电极间距离,从而可以研究电生理信号的传播路径和速度。但是,在MEA记录过程中,组织的氧合可能会大大受损,需要较高的灌注速率,这是以降低信噪比和增加实验温度的振荡为代价的。电刺激进一步使脑组织承受压力,使其难以追求长时间的记录/刺激时期。此外,脑片活动的电调制需要针对脑片内的特定结构/通路,要求在实验过程中容易且快速地实时进行电极映射。在这里,我们说明如何使用平面MEA在啮齿动物脑片中执行4-氨基吡啶(4AP)诱导的癫痫样活动的记录和电调节。我们显示,从小鼠获得的脑组织优于大鼠的脑组织,因此更适合MEA实验。该协议保证了稳定的癫痫样模式的产生和维持,该模式可忠实地再现常规场电势记录所观察到的电生理特征,持续数小时,并且在持续的电刺激下持续时间更长。由于使用了小体积的定制记录室,即使在低(1 mL / min)灌注速率下也可实现层流和快速的溶液交换,整个实验过程中的组织活力得以实现。快速MEA映射可通过自定义图形用户界面(GUI)进行实时监控和选择刺激性电极。

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