TY - JOUR
T1 - Bioabsorbable Si-Mg galvanic cells in flexible scaffolds for symbiotic electrical stimulation to promote nerve regeneration
AU - Wang, Engui
AU - Huang, Jing
AU - Shan, Yizhu
AU - Luo, Lin
AU - Ren, Yongfang
AU - Wen, Xiaozhou
AU - Quan, Yichang
AU - Zhu, Chang
AU - Wu, Xu
AU - Cui, Xi
AU - Bai, Yuan
AU - Jiang, Dongjie
AU - Shi, Bojing
AU - Wang, Xia
AU - Feng, Hongqing
AU - Xu, Lingling
AU - Li, Zhou
AU - Ouyang, Han
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/12
Y1 - 2026/12
N2 - Electrical stimulation treatment represents a new paradigm for tissue regeneration and reconnection. However, the deployment of electrical stimulation devices on damaged and dynamic tissues in vivo remains challenging. Here, we present transient Si–Mg galvanic cell scaffolds for symbiotic electrical stimulation scaffolds (SESS), where tissue fluids act as the electrolyte to drive the galvanic reaction, enabling month-long nonlinear and adaptive electrical stimulation for enhancing nerve regeneration and reconnection. The SESS integrates all biodegradable materials into a seamless textile, enabling deployment on dynamic tissues and full degradation that eliminates the need for secondary removal surgery. Owing to the suitable impedance and biocompatibility of the semiconductor silicon-biological interface, SESS can generate up to month long effective electrical output. SESS showed therapeutic efficacy comparable to autologous nerve grafts in a 10-mm rat sciatic nerve defect model. Notably, the therapeutic effects from degradation products and electrical stimulation have been decoupled and determined via mirror-symmetric deployment. This work should provide new insights and pathways for the development of galvanic cell bioelectronics.
AB - Electrical stimulation treatment represents a new paradigm for tissue regeneration and reconnection. However, the deployment of electrical stimulation devices on damaged and dynamic tissues in vivo remains challenging. Here, we present transient Si–Mg galvanic cell scaffolds for symbiotic electrical stimulation scaffolds (SESS), where tissue fluids act as the electrolyte to drive the galvanic reaction, enabling month-long nonlinear and adaptive electrical stimulation for enhancing nerve regeneration and reconnection. The SESS integrates all biodegradable materials into a seamless textile, enabling deployment on dynamic tissues and full degradation that eliminates the need for secondary removal surgery. Owing to the suitable impedance and biocompatibility of the semiconductor silicon-biological interface, SESS can generate up to month long effective electrical output. SESS showed therapeutic efficacy comparable to autologous nerve grafts in a 10-mm rat sciatic nerve defect model. Notably, the therapeutic effects from degradation products and electrical stimulation have been decoupled and determined via mirror-symmetric deployment. This work should provide new insights and pathways for the development of galvanic cell bioelectronics.
UR - https://www.scopus.com/pages/publications/105040696934
U2 - 10.1038/s41528-026-00574-0
DO - 10.1038/s41528-026-00574-0
M3 - 文章
AN - SCOPUS:105040696934
SN - 2397-4621
VL - 10
JO - npj Flexible Electronics
JF - npj Flexible Electronics
IS - 1
M1 - 68
ER -