Department of Spine Surgery, The First Hospital of Jilin University, 1 Xinmin Street, Changchun, 130021, People's Republic of China.
College of Chemistry, Jilin University, 2699 Qianjin Street, Changchun, 130012, People's Republic of China.
J Nanobiotechnology. 2021 Sep 23;19(1):286. doi: 10.1186/s12951-021-01031-y.
The strategy of using a combination of scaffold-based physical and biochemical cues to repair spinal cord injury (SCI) has shown promising results. However, integrating conductivity and neurotrophins into a scaffold that recreates the electrophysiologic and nutritional microenvironment of the spinal cord (SC) remains challenging. In this study we investigated the therapeutic potential of a soft thermo-sensitive polymer electroactive hydrogel (TPEH) loaded with nerve growth factor (NGF) combined with functional electrical stimulation (ES) for the treatment of SCI. The developed hydrogel exhibits outstanding electrical conductance upon ES, with continuous release of NGF for at least 24 days. In cultured nerve cells, TPEH loaded with NGF promoted the neuronal differentiation of neural stem cells and axonal growth, an effect that was potentiated by ES. In a rat model of SCI, TPEH combined with NGF and ES stimulated endogenous neurogenesis and improved motor function. These results indicate that the TPEH scaffold that combines ES and biochemical cues can effectively promote SC tissue repair.
利用支架为基础的物理和生化线索相结合的策略来修复脊髓损伤(SCI)已经显示出很有前景的结果。然而,将导电性和神经营养因子整合到一个支架中,以重现脊髓(SC)的电生理和营养微环境仍然具有挑战性。在这项研究中,我们研究了负载神经生长因子(NGF)的软态热敏感聚合物电活性水凝胶(TPEH)与功能性电刺激(ES)相结合治疗 SCI 的治疗潜力。所开发的水凝胶在 ES 作用下表现出优异的导电性,NGF 至少持续释放 24 天。在培养的神经细胞中,负载 NGF 的 TPEH 促进了神经干细胞的神经元分化和轴突生长,ES 增强了这种作用。在 SCI 大鼠模型中,TPEH 结合 NGF 和 ES 刺激内源性神经发生并改善运动功能。这些结果表明,结合 ES 和生化线索的 TPEH 支架可以有效地促进 SC 组织修复。