小胶质细胞
脊髓
医学
神经科学
信号转导
细胞生物学
神经炎症
脊髓损伤
癌症研究
化学
中枢神经系统
生物
细胞
神经退行性变
细胞存活
细胞信号
作者
Jintao Liu,Beibei Yu,Wanjun Cao,Jilu Liu,Yundi Gao,Honghui Mao,Xiaochuan Gao,Lingli Guo,Shengyou Li,Qiao Huang,Mingze Qin,Fang Kuang,Jinghui Huang
出处
期刊:Theranostics
[Ivyspring International Publisher]
日期:2026-07-13
卷期号:16 (14): 8017-8035
摘要
Background: Following spinal cord injury (SCI), activated microglia sustain neuroinflammation and drive secondary tissue damage, and this limits functional recovery. Myeloid differentiation primary response 88 (MyD88) is a central adaptor of innate immune signaling, but whether and how microglial MyD88 regulates state transition after SCI remains unclear. This study aims to explore the impact of microglial MyD88 signaling on microglial state trajectories and tissue repair after SCI and to develop a microglia-targeted delivery strategy for therapeutic modulation. Methods: ) were used to assess neuroinflammation, tissue remodeling and downstream signaling. Functional recovery was evaluated by behavioral testing, bidirectional axonal tracing and electrophysiology. For translational validation, microglia membrane-coated, peptide-modified biomimetic nanoparticles (ST2825·DSPE@MG) were engineered to enhance microglia targeting and therapeutic efficacy. Results: while preserving trophic mediators. Microglia-specific MyD88 deletion reprogrammed injury-activated microglia from a pro-inflammatory state to a repair-associated phenotype, reducing neuronal damage, preserving axons and improving locomotor recovery. TGF-β receptor blockade with LY2109761 abolished the protective effects of MyD88 deficiency. Additionally, ST2825·DSPE@MG nanoparticles exhibited microglia-targeted uptake and conferred superior therapeutic efficacy. Conclusion: Our data establish MyD88 as a critical regulator of microglial reprogramming after SCI and highlight its potential as a therapeutic target for spinal cord repair.
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