Seo Kyung Jin, Artoni Pietro, Qiang Yi, Zhong Yiding, Han Xun, Shi Zhan, Yao Wenhao, Fagiolini Michela, Fang Hui
Department of Electrical and Computer Engineering, Northeastern University, Boston, MA, 02115, USA.
Center for Life Science, Boston Children's Hospital, Boston, MA, 02115, USA.
Adv Biosyst. 2019 Mar;3(3):e1800276. doi: 10.1002/adbi.201800276. Epub 2019 Jan 8.
Accurately mapping neuronal activity across brain networks is critical to understand behaviors, yet it is very challenging due to the need of tools with both high spatial and temporal resolutions. Here, penetrating arrays of flexible microelectrodes made of low-impedance nanomeshes are presented, which are capable of recording single-unit electrophysiological neuronal activity and at the same time, transparent, allowing to bridge electrical and optical brain mapping modalities. These 32 transparent penetrating electrodes with site area, 225 µm , have a low impedance of ≈149 kΩ at 1 kHz, an adequate charge injection limit of ≈0.76 mC cm , and up to 100% yield. Mechanical bending tests reveal that the array is robust up to 1000 bending cycles, and its high transmittance of 67% at 550 nm makes it suitable for combining with various optical methods. A temporary stiffening using polyethylene glycol allows the penetrating nanomesh arrays to be inserted into the brain minimally invasively, with in vivo validation of recordings of spontaneous and evoked single-unit activity of neurons across layers of the mouse visual cortex. Together, these results establish a novel neurotechnology-transparent, flexible, penetrating microelectrode arrays-which possesses great potential for brain research.
准确绘制大脑网络中的神经元活动对于理解行为至关重要,但由于需要兼具高空间分辨率和高时间分辨率的工具,这一任务极具挑战性。本文展示了由低阻抗纳米网制成的柔性微电极穿透阵列,该阵列能够记录单个神经元的电生理活动,同时具有透明性,可将电生理和光学脑图谱模式联系起来。这些32个透明穿透电极的位点面积为225μm²,在1kHz时阻抗约为149kΩ,电荷注入极限约为0.76mC/cm²,良品率高达100%。机械弯曲测试表明,该阵列在高达1000次弯曲循环时仍保持稳健,其在550nm处67%的高透光率使其适用于与各种光学方法相结合。使用聚乙二醇进行临时硬化处理后,穿透纳米网阵列能够以微创方式插入大脑,并在体内验证了对小鼠视觉皮层各层神经元自发和诱发的单个神经元活动的记录。总之,这些结果建立了一种新型神经技术——透明、柔性、穿透式微电极阵列,它在脑研究中具有巨大潜力。