神经炎症
小胶质细胞
脊髓损伤
化学
透明质酸
体内
脊髓
活性氧
生物物理学
镁
细胞生物学
药理学
多发性硬化
中枢神经系统
MAPK/ERK通路
炎症
白质
神经保护
免疫系统
轴突
再生(生物学)
神经科学
髓鞘
星形胶质增生
神经干细胞
肿瘤坏死因子α
作者
Haibo Wang,Yu Sun,Shiqi Wang,Wenbo Wang,Jincheng Tang,Ziang Li,Xinzhao Jiang,Liang Zhou,Jie Wu,Qiangqiang Guo,Yiwei Tony Zhu,Y. Feng,Kun Xi,Liang Chen
出处
期刊:Small
[Wiley]
日期:2026-02-16
卷期号:22 (21): e14854-e14854
标识
DOI:10.1002/smll.202514854
摘要
ABSTRACT Spinal cord injury (SCI) treatment is hindered by a “triple barrier:” the physical dura, a chemical storm of reactive oxygen species (ROS), and an immune barrier mediated by pro‐inflammatory microglia. To address these, we developed a “Hydrogen/Magnesium dual‐engine microneedle” (MN‐Mg) system by embedding magnesium (Mg) microparticles within a methacrylated hyaluronic acid (HAMA) hydrogel matrix via micromolding. Possessing high mechanical strength, Mg‐MNs penetrate the dura mater. Upon implantation, the system triggers a controllable magnesium‐water reaction, initiating a spatiotemporally synergistic dual‐engine therapeutic mode. The “hydrogen engine” rapidly releases high‐concentration hydrogen gas (H 2 ) during the acute SCI phase. It efficiently scavenges ROS storm (reducing levels by 55%) by inhibiting the MAPK pathway and downregulating AP‐1 transcription, creating an antioxidant window for neural repair. Subsequently, the “magnesium engine” provides sustained Mg 2 + release during the subacute phase, exerting a dual restorative effect: induces microglia polarization toward the pro‐reparative M2 phenotype (4.8‐fold increase) and promotes axonal regeneration (2.9‐fold increase). This synergy leads to locomotor recovery in a rat SCI model, with scores improving from 5.5 ± 1.05 (Controls) to 14.8 ± 1.17 at 8 weeks. This “Penetration‐Confinement‐Dual‐Engine Modulation” paradigm enables spatiotemporal synergistic H2/Mg therapy supported by an elucidated ROS‐MAPK/AP‐1 regulatory axis, advancing SCI treatment from symptomatic relief to targeted neural microenvironment reconstruction.
科研通智能强力驱动
Strongly Powered by AbleSci AI