Department of Chemical Engineering, Hanyang University, Seoul 04763, Republic of Korea.
School of Interdisciplinary Bioscience and Bioengineering, Pohang University of Science and Technology, Pohang 37673, Republic of Korea.
ACS Nano. 2023 Aug 8;17(15):14706-14717. doi: 10.1021/acsnano.3c02637. Epub 2023 Jul 27.
Neural interfaces play a major role in modulating neural signals for therapeutic purposes. To meet the demand of conformable neural interfaces for developing bioelectronic medicine, recent studies have focused on the performance of electrical neurostimulators employing soft conductors such as conducting polymers and electronic or ionic conductive hydrogels. However, faradaic charge injection at the interface of the electrode and nerve tissue causes irreversible gas evolution, oxidation of electrodes, and reduction of biological ions, thus causing undesired tissue damage and electrode degradation. Here we report a conformable neural interface engineering based on multicross-linked membrane-ionogel assembly (termed McMiA), which enables nonfaradaic neurostimulation without irreversible charge transfer reaction. The McMiA consists of a genipin-cross-linked biopolymeric ionogel coupled with a dopamine-cross-linked graphene oxide membrane to prevent ion exchange between biological and synthetic McMiA ions and to function as a bioadhesive forming covalent bonds with the target tissues. In addition, the demonstration of bioelectronic medicine via the McMiA-based neurostimulation of sciatic nerves shows the enhanced clinical utility in treating the overactive bladder syndrome. As the McMiA-based neural interface is soft, robust for bioadhesion, and stable in a physiological environment, it can offer significant advancement in biocompatibility and long-term operability for neural interface engineering.
神经接口在调节神经信号以达到治疗目的方面发挥着重要作用。为满足生物电子医学中开发的顺应性神经接口的需求,最近的研究集中在使用软导体(如导电聚合物和电子或离子导电水凝胶)的电神经刺激器的性能上。然而,在电极和神经组织的界面处的法拉第电荷注入会导致不可逆转的气体逸出、电极氧化和生物离子减少,从而导致不期望的组织损伤和电极降解。在这里,我们报告了一种基于多交联膜-离子凝胶组装(称为 McMiA)的顺应性神经接口工程,它可以实现非法拉第神经刺激而没有不可逆的电荷转移反应。McMiA 由京尼平交联的生物聚合物离子凝胶与多巴胺交联的氧化石墨烯膜组成,以防止生物和合成 McMiA 离子之间的离子交换,并作为生物黏附剂与目标组织形成共价键。此外,通过 McMiA 为坐骨神经提供的神经刺激来展示生物电子医学,表明其在治疗过度活跃膀胱综合征方面具有增强的临床实用性。由于基于 McMiA 的神经接口柔软、具有强大的生物黏附性并且在生理环境中稳定,因此它可以在生物相容性和神经接口工程的长期可操作性方面取得重大进展。