化学
炎症
巨噬细胞极化
血管生成
细胞生物学
氧化应激
巨噬细胞
超氧化物
细胞因子
谷胱甘肽
氧化磷酸化
重编程
活性氧
免疫系统
生物化学
线粒体生物发生
肿瘤坏死因子α
线粒体
下调和上调
癌症研究
磷酸化
伤口愈合
小胶质细胞
旁分泌信号
神经保护
药理学
抗氧化剂
肝损伤
信号转导
KEAP1型
作者
Yidan Wang,Ting Li,Tongtong Leng,Meng Luo,Mi Chen,Wenhao Zhou,Bo Lei
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-08-27
卷期号:20 (35): 24284-24304
标识
DOI:10.1021/acsnano.5c20148
摘要
The inflammation-related tissue injury repair is still a challenge, in which the metabolic disturbance of macrophages induces cascade amplification of inflammatory mediators and hinders tissue repair. Herein, we developed covalently self-assembled poly(dopamine-silicon) nanoparticles (DS NPs) that integrate enzyme-mimetic catalysis with bioactive ion release to achieve sequential redox modulation and metabolic immune regulation in infected wounds and lung injury models. The covalent linkage reorganized dopamine into a stable amorphous network, preventing π-π stacking and exposing reactive catechol groups, thereby enhancing antioxidant and superoxide dismutase-like activities, which efficiently eliminated reactive oxygen/nitrogen species and corrected oxidative imbalance. Meanwhile, DS NPs supported mitochondrial oxidative phosphorylation and modulated macrophage polarization toward an M2 phenotype with an 89% reduction in TNF-α expression. The immunometabolic reprogramming promoted the transition from inflammation to regeneration, while the sustained release of bioactive silicate ions synergistically promoted angiogenesis by upregulating ANG expression in HUVECs by 2.06-fold. As a proof of concept, in MRSA-infected wound and the early inflammatory stage of acute lung injury models, DS NPs suppressed cytokine overexpression, accelerated re-epithelialization, and restored microvascular integrity. This work demonstrates a biomimetic hybrid platform that can integrate modulation of the inflammatory microenvironment, metabolic reprogramming, and tissue regeneration, offering a promising therapeutic strategy for early intervention in inflammation-associated tissue injuries.
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