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高密度微电极阵列记录揭示了细胞培养中爆发性事件的动态变化。

High-density MEA recordings unveil the dynamics of bursting events in Cell Cultures.

作者信息

Lonardoni Davide, Di Marco Stefano, Amin Hayder, Maccione Alessandro, Berdondini Luca, Nieus Thierry

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2015 Aug;2015:3763-6. doi: 10.1109/EMBC.2015.7319212.

Abstract

High density multielectrode arrays (MEAs) based on CMOS technology (CMOS-MEAs) can simultaneously record extracellular spiking activity in neuronal cultures from 4096 closely spaced microelectrodes. This allows for a finer investigation of neuronal network activity compared to conventional MEAs with a few tens of electrodes. However, the sensing properties of these devices differ. To highlight this aspect, here we investigate and discuss the differences observed when quantifying spontaneous synchronized bursting events (SBEs) in datasets acquired with conventional MEAs and high-density MEAs from comparable hippocampal cultures. We found that datasets acquired with high-density MEAs exhibit collective dynamics similar to conventional arrays, but are characterized by a higher percentage of random spikes, i.e. spikes that are not part of a burst, most probably resulting from the larger recording capability. Additionally, the percentage of electrodes that record a burst is remarkably small on high-density MEAs compared to what can be observed on conventional MEAs and SBEs appear to be propagating in time across the electrode array, by involving shorter sequences of spikes per electrode. Overall, these results highlight a lower level of network synchronization involved in SBEs compared to what has been debated for several decades based on conventional MEA recordings from cell cultures.

摘要

基于互补金属氧化物半导体技术的高密度多电极阵列(CMOS-MEAs)能够同时从4096个紧密排列的微电极记录神经元培养物中的细胞外尖峰活动。与具有几十个电极的传统多电极阵列相比,这使得对神经网络活动的研究更加精细。然而,这些设备的传感特性有所不同。为了突出这一点,我们在此研究并讨论在量化从可比海马体培养物中使用传统多电极阵列和高密度多电极阵列获取的数据集中的自发同步爆发事件(SBEs)时观察到的差异。我们发现,用高密度多电极阵列获取的数据集表现出与传统阵列相似的集体动力学,但特征是随机尖峰的百分比更高,即不属于爆发的尖峰,这很可能是由于更大的记录能力所致。此外,与传统多电极阵列相比,在高密度多电极阵列上记录爆发的电极百分比非常小,并且SBEs似乎通过每个电极涉及更短的尖峰序列在电极阵列上随时间传播。总体而言,这些结果突出表明,与基于细胞培养物的传统多电极阵列记录几十年来所讨论的情况相比,SBEs中涉及的网络同步水平较低。

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