Xia Jie, Zhang Fan, Zhang Luxi, Cao Zhen, Dong Shurong, Zhang Shaomin, Luo Jikui, Zhou Guodong
College of Information Science and Electronic Engineering, Zhejiang University, Hangzhou 310027, China.
Nanhu Brain-Computer Interface Institute, Hangzhou 311121, China.
Nanomaterials (Basel). 2024 Jan 23;14(3):240. doi: 10.3390/nano14030240.
Advancements in brain-machine interfaces and neurological treatments urgently require the development of improved brain electrodes applied for long-term implantation, where traditional and polymer options face challenges like size, tissue damage, and signal quality. Carbon nanotubes are emerging as a promising alternative, combining excellent electronic properties and biocompatibility, which ensure better neuron coupling and stable signal acquisition. In this study, a new flexible brain electrode array based on 99.99% purity of single-walled carbon nanotubes (SWCNTs) was developed, which has 30 um × 40 um size, about 5.1 kΩ impedance, and 14.01 dB signal-to-noise ratio (SNR). The long-term implantation experiment in vivo in mice shows the proposed brain electrode can maintain stable LFP signal acquisition over 12 weeks while still achieving an SNR of 3.52 dB. The histological analysis results show that SWCNT-based brain electrodes induced minimal tissue damage and showed significantly reduced glial cell responses compared to platinum wire electrodes. Long-term stability comes from SWCNT's biocompatibility and chemical inertness, the electrode's flexible and fine structure. Furthermore, the new brain electrode array can function effectively during 7-Tesla magnetic resonance imaging, enabling the collection of local field potential and even epileptic discharges during the magnetic scan. This study provides a comprehensive study of carbon nanotubes as invasive brain electrodes, providing a new path to address the challenge of long-term brain electrode implantation.
脑机接口和神经治疗的进展迫切需要开发用于长期植入的改进型脑电极,而传统电极和聚合物电极在尺寸、组织损伤和信号质量等方面面临挑战。碳纳米管作为一种有前景的替代方案正在兴起,它兼具优异的电子性能和生物相容性,能够确保更好的神经元耦合和稳定的信号采集。在本研究中,开发了一种基于纯度为99.99%的单壁碳纳米管(SWCNT)的新型柔性脑电极阵列,其尺寸为30μm×40μm,阻抗约为5.1kΩ,信噪比(SNR)为14.01dB。在小鼠体内进行的长期植入实验表明,所提出的脑电极能够在12周内保持稳定的局部场电位(LFP)信号采集,同时仍能达到3.52dB的信噪比。组织学分析结果表明,与铂丝电极相比,基于SWCNT的脑电极引起的组织损伤最小,胶质细胞反应明显减少。长期稳定性源于SWCNT的生物相容性和化学惰性以及电极的柔性和精细结构。此外,新型脑电极阵列在7特斯拉磁共振成像过程中能够有效发挥作用,从而在磁扫描期间采集局部场电位甚至癫痫放电。本研究对碳纳米管作为侵入性脑电极进行了全面研究,为解决长期脑电极植入的挑战提供了一条新途径。