Giannotti Alice, Santanché Ranieri, Zinno Ciro, Carpaneto Jacopo, Micera Silvestro, Riva Eugenio Redolfi
The Biorobotic Institute, Scuola Superiore Sant'Anna, Piazza Martiri Della Libertà 33, 56127, Pisa, Italy.
Department of Excellence in Robotics&AI, Scuola Superiore Sant'Anna, Piazza Martiri Della Libertà 33, 56127, Pisa, Italy.
Bioelectron Med. 2024 Aug 27;10(1):20. doi: 10.1186/s42234-024-00154-5.
Peripheral neural interfaces facilitate bidirectional communication between the nervous system and external devices, enabling precise control for prosthetic limbs, sensory feedback systems, and therapeutic interventions in the field of Bioelectronic Medicine. Intraneural interfaces hold great promise since they ensure high selectivity in communicating only with the desired nerve fascicles. Despite significant advancements, challenges such as chronic immune response, signal degradation over time, and lack of long-term biocompatibility remain critical considerations in the development of such devices. Here we report on the development and benchtop characterization of a novel design of an intraneural interface based on carbon fiber bundles. Carbon fibers possess low impedance, enabling enhanced signal detection and stimulation efficacy compared to traditional metal electrodes. We provided a 3D-stabilizing structure for the carbon fiber bundles made of PEDOT:PSS hydrogel, to enhance the biocompatibility between the carbon fibers and the nervous tissue. We further coated the overall bundles with a thin layer of elastomeric material to provide electrical insulation. Taken together, our results demonstrated that our electrode possesses adequate structural and electrochemical properties to ensure proper stimulation and recording of peripheral nerve fibers and a biocompatible interface with the nervous tissue.
外周神经接口促进了神经系统与外部设备之间的双向通信,实现了对假肢、感觉反馈系统以及生物电子医学领域治疗干预的精确控制。神经内接口具有很大的潜力,因为它们在仅与所需神经束通信时能确保高选择性。尽管取得了重大进展,但诸如慢性免疫反应、信号随时间退化以及缺乏长期生物相容性等挑战,仍然是此类设备开发中的关键考虑因素。在此,我们报告了一种基于碳纤维束的新型神经内接口设计的开发及其台式表征。与传统金属电极相比,碳纤维具有低阻抗,能够提高信号检测和刺激效果。我们为由PEDOT:PSS水凝胶制成的碳纤维束提供了一种三维稳定结构,以增强碳纤维与神经组织之间的生物相容性。我们还用一层薄的弹性体材料涂覆了整个束,以提供电绝缘。综上所述,我们的结果表明,我们的电极具有足够的结构和电化学特性,以确保对外周神经纤维进行适当的刺激和记录,并与神经组织形成生物相容性接口。