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◆ Advanced healthcare materials2026-09-20

Neutrophil-Hitchhiking and Microenvironment-Responsive Cascade Nanoparticles for STING Inhibition and Spinal Cord Injury Repair.

Xiaofeng Chen, Xin Wang, Dianhui Han, Yonggang Han, Ning Ji, Ruwei Jie, Jiahao Liu, Yonglin Shan, Xiaoming Li, Qingchun Mu, Longguang Tang

原始摘要(英文原文)· Original abstract
Excessive acute inflammation following spinal cord injury (SCI) is a primary driver of secondary neuronal damage, with early neutrophil infiltration playing a critical, deleterious role. Clinical evidence linking high neutrophil counts to SCI severity underscores the need for precision immunomodulation. Herein, we report T-H151, a smart, bio-responsive nanoplatform designed to suppress neuroinflammation and enhance functional recovery via selective inhibition of the STING signaling pathway. T-H151 consists of a liposomal carrier encapsulating the STING inhibitor H151, surface-functionalized with a modular peptide design: a neutrophil elastase-binding peptide (NEBP) for active hitchhiking, an MMP9-responsive linker for site-specific activation, and a neuron-targeting peptide (TET) for enhanced cellular uptake. This architecture facilitates efficient neutrophil-mediated transport to the lesion site, followed by MMP9-triggered, precision release of H151 within the neuronal microenvironment. In SCI mouse models, T-H151 significantly improves motor function and preserves blood-spinal cord barrier integrity. Mechanistically, T-H151 suppresses the STING axis, inhibits microglial/macrophage activation, and reduces pro-inflammatory cytokines (IL-1β, TNF-α). Transcriptomic analysis further confirms a profound downregulation of the NF-κB and JAK-STAT inflammatory pathways. Collectively, this targeted nanoplatform offers a transformative, bio-responsive strategy for mitigating neuroinflammation and promoting therapeutic outcomes in spinal cord repair.
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Neutrophil-Hitchhiking and Microenvironment-Responsive Cascade Nanoparticles for STING Inhibition and Spinal Cord Injury Repair. — 科研速览 Science Skim