Microelectrode arrays (MEAs) have emerged as a pivotal tool in electrophysiological research, enabling long-term in vitro culture of neuronal networks and real-time monitoring of their electrophysiological activities with high spatial resolution. Nevertheless, the pursuit of higher spatial resolution necessitates miniaturizing electrode dimensions, which inevitably leads to a pronounced reduction in the signal-to-noise ratio (SNR). In this context, surface modification of microelectrodes is deemed an essential strategy to optimize their electrochemical performance. Conventional surface modification approaches, such as the electrodeposition of platinum black, suffer from inadequate coating-substrate adhesion due to intrinsic material heterogeneity between the deposited layer and the electrode substrate, thereby reducing their durability. To address this critical challenge, we herein propose a facile and scalable nanofabrication strategy for preparing nanoneedle structures that directly in situ fabricates the substrate into a nanoneedle array architecture, thereby markedly enhancing the structural durability of the modified microelectrodes. Subsequent experimental characterizations further validate the superior performance of the nanoneedle-structured electrodes in effectively improving the SNR of electrophysiological signal detection. Utilizing the self-fabricated nanoneedle-based MEAs, we successfully captured the synchronized spontaneous burst activities of neuronal networks that had undergone 3 weeks of in vitro culture, demonstrating the feasibility and applicability of our modified MEA chips for long-term electrophysiological studies of neuronal networks.
Yu et al. (Fri,) studied this question.