CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing, China.
CAS Center for Excellence in Brain Science and Intelligence Technology, Institute of Neuroscience, Chinese Academy of Sciences, Shanghai, China.
Nat Protoc. 2023 Jun;18(6):1712-1744. doi: 10.1038/s41596-023-00824-9. Epub 2023 May 29.
Ultraflexible microelectrode arrays (MEAs) that can stably record from a large number of neurons after their chronic implantation offer opportunities for understanding neural circuit mechanisms and developing next-generation brain-computer interfaces. The implementation of ultraflexible MEAs requires their reliable implantation into deep brain tissues in a minimally invasive manner, as well as their precise integration with optogenetic tools to enable the simultaneous recording of neural activity and neuromodulation. Here, we describe the process for the preparation of elastocapillary self-assembled ultraflexible MEAs, their use in combination with adeno-associated virus vectors carrying opsin genes and promoters to form an optrode probe and their in vivo experimental use in the brains of rodents, enabling electrophysiological recordings and optical modulation of neuronal activity over long periods of time (on the order of weeks to months). The procedures, including device fabrication, probe assembly and implantation, can be completed within 3 weeks. The protocol is intended to facilitate the applications of ultraflexible MEAs for long-term neuronal activity recording and combined electrophysiology and optogenetics. The protocol requires users with expertise in clean room facilities for the fabrication of ultraflexible MEAs.
超柔韧微电极阵列(MEA)能够在慢性植入后稳定地记录大量神经元的信号,为理解神经回路机制和开发下一代脑机接口提供了机会。超柔韧 MEA 的实现需要以微创的方式可靠地植入深部脑组织,并与光遗传学工具精确集成,以实现神经活动和神经调节的同时记录。在这里,我们描述了弹性毛细管自组装超柔韧 MEA 的制备过程,以及它们与携带光感基因和启动子的腺相关病毒载体结合形成光探头的过程,并在啮齿动物的大脑中进行了体内实验,实现了长时间(数周到数月)的电生理记录和神经元活动的光学调节。这些步骤,包括器件制造、探头组装和植入,可以在 3 周内完成。该方案旨在促进超柔韧 MEA 在长期神经元活动记录和电生理学与光遗传学相结合方面的应用。该方案需要使用洁净室设备制造超柔韧 MEA 的专业知识。