脊髓损伤
神经调节
医学
生物医学工程
脊髓
植入
刺激
加强
临床前试验
生物相容性材料
脊柱
神经假体
功能性电刺激
结构完整性
超声波
外科
材料科学
截瘫
脊髓刺激
组织工程
作者
Penghao Liu,Xinyu Wang,Yanchun Liu,Zhuofan Xu,Yana He,Yongchang Lu,Liguo Ye,Wenjing Wu,Zan Chen,Yushu Wang,Fengyu Zhang,Xiaoping Yang,Yingjie Yu,Qing Cai,Wanru Duan
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-08-05
卷期号:12 (32): eaeg0515-eaeg0515
标识
DOI:10.1126/sciadv.aeg0515
摘要
Spinal cord stimulation has emerged as a promising therapeutic strategy for spinal cord injury (SCI), yet conventional electronic implants remain limited by surgical risk and long-term safety concerns. We introduce a biodegradable piezoelectric cryogel (Piezo Gel) that enables programmable electro-neuromodulation without implanted electronics. Engineered to replicate spinal column mechanics, Piezo Gel converts physiological motion into localized bioelectrical signals; externally applied ultrasound (US) further amplifies this output, enabling non-invasive, on-demand neuromodulation. In acute severe SCI rats, US-activated Piezo Gel markedly improved locomotor recovery, elevated Basso-Beattie-Bresnahan (BBB) scores, and promoted bladder functional remodeling. In mild contusion rats, a phase-adaptive neuromodulation strategy shifted from US-triggered stimulation during the acute immobilization phase to motion-driven stimulation during subacute rehabilitation, dynamically matching the evolving pathological microenvironment after SCI. This sequential electrostimulation paradigm produced marked restoration of coordinated gait. Together, these findings establish an electronic-free platform for programmable electro-neuromodulation that integrates US and physiological motion, offering a clinically translatable strategy for SCI repair.
科研通智能强力驱动
Strongly Powered by AbleSci AI