SWCNTs/PEDOT:PSS nanocomposites-modified microelectrode arrays for revealing locking relations between burst and local field potential in cultured cortical networks

佩多:嘘 微电极 爆裂 多电极阵列 材料科学 纳米技术 突发抑制 电生理学 局部场电位 生物物理学 脑电图 化学 电极 神经科学 图层(电子) 生物 物理化学
作者
Yaoyao Liu,Shihong Xu,Yu Deng,Jinping Luo,Kui Zhang,Yan Yang,Longze Sha,Ruilin Hu,Zhaojie Xu,Erwei Yin,Qi Xu,Yidi Wu,Xinxia Cai
出处
期刊:Biosensors and Bioelectronics [Elsevier]
卷期号:: 116168-116168
标识
DOI:10.1016/j.bios.2024.116168
摘要

Burst and local field potential (LFP) are fundamental components of brain activity, representing fast and slow rhythms, respectively. Understanding the intricate relationship between burst and LFP is crucial for deciphering the underlying mechanisms of brain dynamics. In this study, we fabricated high-performance microelectrode arrays (MEAs) using the SWCNTs/PEDOT:PSS nanocomposites, which exhibited favorable electrical properties (low impedance: 12.8 ± 2.44 kΩ) and minimal phase delay (-11.96 ± 1.64°). These MEAs enabled precise exploration of the burst-LFP interaction in cultured cortical networks. After a 14-day period of culture, we used the MEAs to monitor electrophysiological activities and revealed a time-locking relationship between burst and LFP, indicating the maturation of the neural network. To further investigate this relationship, we modulated burst firing patterns by treating the neural culture with increasing concentrations of glycine. The results indicated that glycine effectively altered burst firing patterns, with both duration and spike count increasing as the concentration rose. This was accompanied by an enhanced level of time-locking between burst and LFP but a decrease in synchrony among neurons. This study not only highlighted the pivotal role of SWCNTs/PEDOT:PSS-modified MEAs in elucidating the interaction between burst and LFP, bridging the gap between slow and fast brain rhythms in vitro but also provides valuable insights into the potential therapeutic strategies targeting neurological disorders associated with abnormal rhythm generation.
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