Shimba Kenta, Sakai Koji, Isomura Takuya, Kotani Kiyoshi, Jimbo Yasuhiko
Department of Human and Engineered Environmental Studies, Graduate School of Frontier Sciences, The University of Tokyo, Room 1122, Faculty of Engineering Building 14, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.
Integr Biol (Camb). 2015 Jan;7(1):64-72. doi: 10.1039/c4ib00223g.
Recently, axons have been recognized as computational units in neuronal networks that can change their conduction properties along with their firing. However, little is known about the relationship between spontaneous activity and changes in the conduction velocity due to lack of a suitable method. Here, we studied changes in the conduction velocity during bursting activity using a new microfabricated device and the spike sorting method. The propagating action potentials were recorded from axons, which extended through a microtunnel in our device, comprised of a microfabricated chamber and a microelectrode array. By using waveforms recorded from a series of three electrodes along the bottom of a microtunnel, we achieved a sorting accuracy approximately 8.0% higher than that of the conventional one-electrode waveform method. We then demonstrated for the first time that conduction delays increased by 8.0% in action potentials of a mathematically isolated axon during one burst recorded at 10 days in vitro (DIV). Moreover, 79.4% of all clusters showed this conduction slowing during bursting activity at 10 DIV. Finally, we evaluated the days-in-culture dependence of the properties of bursting activity. These results suggest that our method is suitable for evaluating changes in conduction properties induced by spontaneous activity.
最近,轴突已被视为神经网络中的计算单元,其传导特性会随放电而改变。然而,由于缺乏合适的方法,关于自发活动与传导速度变化之间的关系仍知之甚少。在此,我们使用一种新型微制造装置和尖峰分类方法,研究了爆发活动期间的传导速度变化。从穿过我们装置中微通道的轴突记录传播的动作电位,该装置由一个微制造腔室和一个微电极阵列组成。通过使用沿微通道底部一系列三个电极记录的波形,我们实现了比传统单电极波形方法高出约8.0%的分类准确率。然后,我们首次证明,在体外培养10天(DIV)记录的一次爆发期间,数学上分离的轴突的动作电位传导延迟增加了8.0%。此外,在10 DIV时,所有簇中有79.4%在爆发活动期间表现出这种传导减慢。最后,我们评估了爆发活动特性对培养天数的依赖性。这些结果表明,我们的方法适用于评估自发活动引起的传导特性变化。