Liu Yaoyao, Xu Shihong, Yang Yan, Zhang Kui, He Enhui, Liang Wei, Luo Jinping, Wu Yirong, Cai Xinxia
State Key Laboratory of Transducer Technology, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100190 China.
School of Electronic, Electrical and Communication Engineering, University of Chinese Academy of Sciences, Beijing, 100049 PR China.
Microsyst Nanoeng. 2023 Jan 30;9:13. doi: 10.1038/s41378-022-00479-8. eCollection 2023.
A bidirectional in vitro brain-computer interface (BCI) directly connects isolated brain cells with the surrounding environment, reads neural signals and inputs modulatory instructions. As a noninvasive BCI, it has clear advantages in understanding and exploiting advanced brain function due to the simplified structure and high controllability of ex vivo neural networks. However, the core of ex vivo BCIs, microelectrode arrays (MEAs), urgently need improvements in the strength of signal detection, precision of neural modulation and biocompatibility. Notably, nanomaterial-based MEAs cater to all the requirements by converging the multilevel neural signals and simultaneously applying stimuli at an excellent spatiotemporal resolution, as well as supporting long-term cultivation of neurons. This is enabled by the advantageous electrochemical characteristics of nanomaterials, such as their active atomic reactivity and outstanding charge conduction efficiency, improving the performance of MEAs. Here, we review the fabrication of nanomaterial-based MEAs applied to bidirectional in vitro BCIs from an interdisciplinary perspective. We also consider the decoding and coding of neural activity through the interface and highlight the various usages of MEAs coupled with the dissociated neural cultures to benefit future developments of BCIs.
双向体外脑机接口(BCI)将分离的脑细胞与周围环境直接相连,读取神经信号并输入调节指令。作为一种非侵入性BCI,由于离体神经网络结构简化且可控性高,在理解和利用高级脑功能方面具有明显优势。然而,离体BCI的核心——微电极阵列(MEA),在信号检测强度、神经调制精度和生物相容性方面急需改进。值得注意的是,基于纳米材料的MEA通过汇聚多级神经信号并以优异的时空分辨率同时施加刺激,以及支持神经元的长期培养,满足了所有这些要求。这得益于纳米材料的有利电化学特性,如它们活跃的原子反应性和出色的电荷传导效率,从而提高了MEA的性能。在此,我们从跨学科角度综述了应用于双向体外BCI的基于纳米材料的MEA的制备。我们还考虑了通过该接口对神经活动的解码和编码,并强调了MEA与解离神经培养物相结合的各种用途,以促进BCI的未来发展。