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Lung microbiota-derived deoxyinosine alleviates TBI-aggravated sepsis-induced lung injury via the S100A9/RAGE pathway

支气管肺泡灌洗 失调 医学 肺移植 免疫系统 免疫学 败血症 生物 巨噬细胞极化 癌症研究 病理 炎症 移植 创伤性脑损伤 神经保护 神经炎症 调节器 转基因小鼠 药理学 代谢组学
作者
Bailun Wang,Angran Gu,Yi Yang,Xuan Liu,Runmeng Liu,Yuelan Wang
出处
期刊:Journal of Neuroinflammation [BioMed Central]
标识
DOI:10.1186/s12974-026-03862-8
摘要

Traumatic brain injury (TBI) frequently leads to severe systemic complications, with pulmonary dysfunction acting as a major determinant of poor prognosis in survivors. While the lung microbiota is increasingly recognized as a critical regulator of pulmonary immune homeostasis, the specific mechanisms by which TBI remotely remodels the lung microenvironment to exacerbate secondary insults, such as sepsis-induced acute lung injury (ALI), remain poorly understood. To investigate this mechanism, we established a murine model combining controlled cortical impact with LPS-induced sepsis and analyzed bronchoalveolar lavage fluid by 16S rRNA sequencing and untargeted metabolomics. We further conducted microbiota depletion and transplantation experiments to establish causality, alongside molecular docking, Co-IP (co-immunoprecipitation), and transgenic mouse models to elucidate molecular pathways. Our results demonstrate that TBI significantly disrupts the lung microbiota, characterized by a reduction in Corynebacterium, and decreases the levels of the metabolite deoxyinosine. Microbiota transplantation from TBI mice worsened sepsis-induced lung injury in recipients, whereas deoxyinosine administration alleviated tissue damage by promoting the polarization of alveolar macrophages from a pro-inflammatory M1 phenotype to an anti-inflammatory M2 phenotype. Mechanistically, deoxyinosine binds directly to S100A9, competitively inhibiting its interaction with the Receptor for Advanced Glycation End Products (RAGE), which subsequently suppresses downstream NF-κB signaling. This study identifies a novel brain-lung axis interaction mediated by microbiota-derived deoxyinosine and highlights the S100A9/RAGE pathway as a promising therapeutic target for preventing post-TBI multi-organ dysfunction. TBI-induced dysbiosis of the mouse lung microbiota reduces deoxyinosine levels, thereby leading to enhanced S100A9/RAGE signaling, M1 polarization of macrophages, and ultimately exacerbating sepsis-induced lung injury TBI induces lung microbiota dysbiosis characterized by a decrease in Corynebacterium and its associated metabolite deoxyinosine. Deoxyinosine administration alleviates TBI-exacerbated sepsis-induced lung injury by shifting alveolar macrophages from M1 to M2 polarization. Deoxyinosine directly binds to S100A9, competitively inhibiting its interaction with RAGE and suppressing downstream NF-κB signaling. S100A9 or RAGE ablation abolishes the protective effects of deoxyinosine, confirming the critical role of the S100A9/RAGE pathway. This study reveals a novel microbiota-mediated brain-lung axis and identifies deoxyinosine as a potential therapeutic agent for post-TBI multi-organ dysfunction.
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