Su Qiangfei, Wang Jian, Song Yu, Zhang Zhaowenbin, Cai Bo, Xiaohalati Xiakeerzhati, Liu Jingwei, Li Haozhe, Wang Zheng, Chang Jiang, Wang Lin
Department of Clinical Laboratory, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, 430022, China.
Hubei Key Laboratory of Regenerative Medicine and Multi-disciplinary Translational Research, Hubei Provincial Engineering Research Center of Clinical Laboratory and Active Health Smart Equipment, Research Center for Tissue Engineering and Regenerative Medicine, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, 430022, China.
Adv Sci (Weinh). 2025 Jul 8:e07241. doi: 10.1002/advs.202507241.
Schwann cells are pivotal in generating a pro-regenerative microenvironment for long-gap peripheral nerve injury (PNI) repair via their orchestrated behaviors, including cell migration, proliferation, and secretion. Bioceramics can release bioactive ions to regulate "repair" cells for regenerating damaged tissues. Herein, bioceramic akermanite (AT) is screened and found to significantly enhance Schwann cell proliferation, migration, and secretion by activating the PI3K/AKT and MAPK/ERK signaling pathways. Integration with silk sericin (SS), a natural biomaterial possessing excellent bioactivity, promotes the release of Ca and Mg from AT, synergistically enhancing Schwann cell pro-regenerative behaviors and accelerating axon elongation. The AT-SS composite conduit effectively restores nerve structure and function in a 13 mm transected PNI. Compared with commercial eton conduit, AT-SS conduit promotes axons and myelin sheaths regeneration, improves nerve conduction, and effectively alleviates gastrocnemius muscle atrophy. The AT-SS conduit achieves autograft-comparable behavioral recovery as evidenced by the paw withdrawal latency, hind limb grip force, and sciatic function index. The excellent degradation and biosafety of AT-SS conduit indicate its potential for clinical translation. This study introduces an ion-based therapeutic approach for enhancing the pro-regenerative functions of Schwann cells, and provides novel insights and strategies for clinically managing long-gap PNI and other nerve tissue injuries.
雪旺细胞对于通过其精心编排的行为,包括细胞迁移、增殖和分泌,为长间隙周围神经损伤(PNI)修复生成促再生微环境至关重要。生物陶瓷可以释放生物活性离子来调节“修复”细胞以再生受损组织。在此,筛选出生物陶瓷镁黄长石(AT),发现其通过激活PI3K/AKT和MAPK/ERK信号通路显著增强雪旺细胞的增殖、迁移和分泌。与具有优异生物活性的天然生物材料丝胶蛋白(SS)结合,促进了AT中钙和镁的释放,协同增强雪旺细胞的促再生行为并加速轴突伸长。AT-SS复合导管在13毫米横断的PNI中有效恢复了神经结构和功能。与商用伊顿导管相比,AT-SS导管促进轴突和髓鞘再生,改善神经传导,并有效减轻腓肠肌萎缩。通过爪退缩潜伏期、后肢握力和坐骨神经功能指数证明,AT-SS导管实现了与自体移植相当的行为恢复。AT-SS导管优异的降解性和生物安全性表明其临床转化潜力。本研究引入了一种基于离子的治疗方法来增强雪旺细胞的促再生功能,并为临床治疗长间隙PNI和其他神经组织损伤提供了新的见解和策略。