Department of Orthopaedics, Qilu Hospital of Shandong University, Shandong University Centre for Orthopaedics, Advanced Medical Research Institute, Shandong University, No. 107 Wenhua West Road, Lixia District, Jinan, 250012, China.
Department of Orthopaedics, The Second Hospital of Shandong University, No. 247 Beiyuan Street, Tianqiao District, Jinan, 250033, China.
Adv Mater. 2024 May;36(21):e2313672. doi: 10.1002/adma.202313672. Epub 2024 Feb 19.
Spinal cord injury (SCI) is a refractory neurological disorder. Due to the complex pathological processes, especially the secondary inflammatory cascade and the lack of intrinsic regenerative capacity, it is difficult to recover neurological function after SCI. Meanwhile, simulating the conductive microenvironment of the spinal cord reconstructs electrical neural signal transmission interrupted by SCI and facilitates neural repair. Therefore, a double-crosslinked conductive hydrogel (BP@Hydrogel) containing black phosphorus nanoplates (BP) is synthesized. When placed in a rotating magnetic field (RMF), the BP@Hydrogel can generate stable electrical signals and exhibit electrogenic characteristic. In vitro, the BP@Hydrogel shows satisfactory biocompatibility and can alleviate the activation of microglia. When placed in the RMF, it enhances the anti-inflammatory effects. Meanwhile, wireless electrical stimulation promotes the differentiation of neural stem cells (NSCs) into neurons, which is associated with the activation of the PI3K/AKT pathway. In vivo, the BP@Hydrogel is injectable and can elicit behavioral and electrophysiological recovery in complete transected SCI mice by alleviating the inflammation and facilitating endogenous NSCs to form functional neurons and synapses under the RMF. The present research develops a multifunctional conductive and electrogenic hydrogel for SCI repair by targeting multiple mechanisms including immunoregulation and enhancement of neuronal differentiation.
脊髓损伤 (SCI) 是一种难治性神经系统疾病。由于复杂的病理过程,特别是继发性炎症级联反应和缺乏内在的再生能力,SCI 后很难恢复神经功能。同时,模拟脊髓的导电微环境可以重建被 SCI 中断的电神经信号传输,并促进神经修复。因此,合成了一种含有黑磷纳米片 (BP) 的双交联导电水凝胶 (BP@Hydrogel)。当置于旋转磁场 (RMF) 中时,BP@Hydrogel 可以产生稳定的电信号并表现出发电特性。体外实验表明,BP@Hydrogel 具有良好的生物相容性,可以减轻小胶质细胞的激活。当置于 RMF 中时,它增强了抗炎作用。同时,无线电刺激促进神经干细胞 (NSCs) 向神经元分化,这与 PI3K/AKT 通路的激活有关。在体内,BP@Hydrogel 可注射,并通过减轻炎症和在 RMF 下促进内源性 NSCs 形成功能性神经元和突触,在完全横断的 SCI 小鼠中引发行为和电生理恢复。本研究通过针对包括免疫调节和增强神经元分化在内的多种机制,开发了一种用于 SCI 修复的多功能导电和发电水凝胶。