Laboratory for Analysis and Architecture of Systems (LAAS), CNRS, Toulouse, France.
SYNAXYS Neuro Engineering Systems, Toulouse, France.
Biosens Bioelectron. 2023 May 1;227:115182. doi: 10.1016/j.bios.2023.115182. Epub 2023 Feb 25.
Implantable neural microelectrodes for recording and stimulating neural activity are critical for research in neuroscience and clinical neuroprosthetic applications. A current need exists for developing new technological solutions for obtaining highly selective and stealthy electrodes that provide reliable neural integration and maintain neuronal viability. This paper reports a novel Hollow Ring-like type electrode to sense and/or stimulate neural activity from three-dimensional neural networks. Due to its unique design, the ring electrode architecture enables easy and reliable access of the electrode to three-dimensional neural networks with reduced mechanical contact on the biological tissue, while providing improved electrical interface with cells. The Hollow Ring electrodes, particularly when coated with the conducting polymer poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS), show improved electrical properties with extremely low impedance (7 MΩ μm) and high charge injection capabilities (15 mC/cm), when compared to traditional planar disk-type electrodes. The ring design also serves as an optimal architecture for cell growth to create an optimal subcellular electrical-neural interface. In addition, we showed that neural signals recorded by the ring electrode were better resolved than recordings from a traditional disk-type electrode improving the signal-to-noise ratio (SNR) and the burst detection from 3D neuronal networks in vitro. Overall, our results suggest the great potential of the hollow ring design for developing next-generation microelectrodes for applications in neural interfaces used in physiological studies and neuromodulation applications.
用于记录和刺激神经活动的植入式神经微电极对于神经科学研究和临床神经假体应用至关重要。目前需要开发新技术解决方案,以获得高度选择性和隐身性的电极,这些电极能够提供可靠的神经整合并维持神经元活力。本文报道了一种新型的空心环型电极,用于从三维神经网络中感应和/或刺激神经活动。由于其独特的设计,环形电极结构使得电极能够轻松可靠地进入三维神经网络,同时减少对生物组织的机械接触,从而提供与细胞更好的电接口。与传统的平面盘型电极相比,空心环电极,特别是涂覆有导电聚合物聚(3,4-亚乙基二氧噻吩)聚苯乙烯磺酸盐(PEDOT:PSS)的空心环电极,具有极低的阻抗(7 MΩμm)和高电荷注入能力(15 mC/cm)等优异的电性能。环形设计还可用作细胞生长的最佳结构,以创建最佳的亚细胞电神经接口。此外,我们还表明,与传统的盘型电极相比,环形电极记录的神经信号具有更好的分辨率,从而提高了信噪比(SNR)和从体外 3D 神经元网络中检测到的爆发。总的来说,我们的结果表明,空心环设计在开发用于生理研究和神经调节应用的神经接口的下一代微电极方面具有巨大潜力。