Lee Jaebeom, Choi Yeonsun, Song Jihyang, Seong Duhwan, Jin Subin, Ju Jaewon, Son Donghee, Shin Mikyung
Department of Intelligent Precision Healthcare Convergence, Sungkyunkwan University (SKKU), Suwon 16419, Republic of Korea.
Center for Neuroscience Imaging Research, Institute for Basic Science (IBS), Suwon 16419, Republic of Korea.
ACS Nano. 2024 Dec 24;18(51):34949-34961. doi: 10.1021/acsnano.4c13097. Epub 2024 Dec 13.
Implantable electrochemicals stand out as promising candidates for resolving peripheral nerve injuries. However, challenges persist in designing bioelectronic materials that mimic tissue due to modulus matching, conformal adhesion, and immune responses. Herein, we present a nerve-mimicking design rationale for biocompatible hydrogel-based electroceuticals with a tissue-like modulus, robust and conformal tissue adhesion, exceptional mechanical toughness, and efficient stress dissipation. Inspired by the hierarchical structure of the peripheral nerve, the hydrogel substrate features a structurally gradient bilayer transitioning from a dense to a loose polymeric network, utilizing alginate functionalized with either photo-cross-linkable methacrylate or tissue-adhesive phenylborate. Due to the varying water affinity of the tethering groups, a physically entangled interfacial domain is in situ formed during dehydration of the pre-gel film, resulting in enhanced mechanical toughness and strong adhesion. The hydrogel electroceuticals, when integrated with conducting polymeric electrodes, locally stimulate nerve tissue, improving tissue regeneration in a crushed nerve injury model.
可植入电化学器件是解决周围神经损伤的有前途的候选者。然而,由于模量匹配、共形粘附和免疫反应,在设计模仿组织的生物电子材料方面仍然存在挑战。在此,我们提出了一种用于基于水凝胶的生物相容性电疗药物的神经模仿设计原理,该药物具有类似组织的模量、强大且共形的组织粘附性、出色的机械韧性和有效的应力耗散。受周围神经分层结构的启发,水凝胶基质具有从致密到松散聚合物网络的结构梯度双层,利用用可光交联的甲基丙烯酸酯或组织粘附性苯基硼酸官能化的藻酸盐。由于连接基团的水亲和力不同,在预凝胶膜脱水过程中会原位形成物理缠结的界面域,从而提高机械韧性和强粘附性。当与导电聚合物电极集成时,水凝胶电疗药物可局部刺激神经组织,改善挤压性神经损伤模型中的组织再生。