Institute of Neurosciences, Department of Cell Biology, Physiology and Immunology, Universitat Autònoma de Barcelona, Bellaterra, 08193, Spain.
Centro de Investigación Biomédica en Red en Enfermedades Neurodegenerativas (CIBERNED), Instituto de Salud Carlos III, Madrid, 28031, Spain.
Adv Sci (Weinh). 2024 Aug;11(29):e2308689. doi: 10.1002/advs.202308689. Epub 2024 Jun 11.
Limb neuroprostheses aim to restore motor and sensory functions in amputated or severely nerve-injured patients. These devices use neural interfaces to record and stimulate nerve action potentials, creating a bidirectional connection with the nervous system. Most neural interfaces are based on standard metal microelectrodes. In this work, a new generation of neural interfaces which replaces metals with engineered graphene, called EGNITE, is tested. In vitro and in vivo experiments are conducted to assess EGNITE biocompatibility. In vitro tests show that EGNITE does not impact cell viability. In vivo, no significant functional decrease or harmful effects are observed. Furthermore, the foreign body reaction to the intraneural implant is similar compared to other materials previously used in neural interfaces. Regarding functionality, EGNITE devices are able to stimulate nerve fascicles, during two months of implant, producing selective muscle activation with about three times less current compared to larger microelectrodes of standard materials. CNAP elicited by electrical stimuli and ENG evoked by mechanical stimuli are recorded with high resolution but are more affected by decreased functionality over time. This work constitutes further proof that graphene-derived materials, and specifically EGNITE, is a promising conductive material of neural electrodes for advanced neuroprostheses.
肢体神经假体旨在为截肢或严重神经损伤的患者恢复运动和感觉功能。这些设备使用神经接口来记录和刺激神经动作电位,与神经系统建立双向连接。大多数神经接口基于标准的金属微电极。在这项工作中,测试了一种用工程化石墨烯替代金属的新一代神经接口,称为 EGNITE。进行了体外和体内实验来评估 EGNITE 的生物相容性。体外测试表明 EGNITE 不会影响细胞活力。在体内,没有观察到明显的功能下降或有害影响。此外,与以前用于神经接口的其他材料相比,EGNITE 植入物的异物反应相似。关于功能,EGNITE 设备能够在植入两个月期间刺激神经束,产生选择性肌肉激活,与标准材料的较大微电极相比,所需电流少约三倍。通过电刺激记录到的 CNAP 和通过机械刺激记录到的 ENG 具有高分辨率,但随着时间的推移,功能下降对其影响更大。这项工作进一步证明了石墨烯衍生材料,特别是 EGNITE,是先进神经假体神经电极有前途的导电材料。