神经炎症
精氨酸酶
精氨酸
分解代谢
中枢神经系统
细胞生物学
生物
代谢组学
炎症
细胞外
化学
渗透(HVAC)
代谢途径
单核细胞
代谢物
新陈代谢
小胶质细胞
细胞代谢
转录组
生物化学
遗传模型
免疫系统
细胞
氧化磷酸化
脂质信号
调解人
氧化应激
作者
Martina Kerndl,Laszlo Musiejovsky,Andrea Komljenović,Hon Shing Lam,Andrea Vogel,Tobias Bausbacher,Christian J. Riedl,Roko Sango,Lenka Matejovicova,Anja Dobrijević,Laura Oberbichler,Melanie Hofmann,Markus Kieler,Lucia Quemada Garrido,Lara Veronika Perko Budja,Julia S. Brunner,James L. Cairns,Paul Cheng,Kerstin Kitt,Christine Isaguirre
标识
DOI:10.1038/s41590-026-02516-4
摘要
Inflammatory responses are associated with recruitment of monocyte-derived cells (Mdcs) into tissues. Although tissue-specific Mdc reprogramming is well established, how Mdc infiltration alters tissue metabolism remains unclear. Here, using a mouse neuroinflammation model coupled with genetic fate mapping, metabolomics and metabolite imaging, we identify that central nervous system (CNS) Mdc infiltration is associated with substantial metabolic changes and assign disease-linked metabolites therein. In particular, we found that increased arginine catabolism driven by lesion-associated arginase 1 (Arg1)-expressing Mdcs promoted oxidative damage, lipid accumulation and Mdc dysfunction. Genetic ARG1 deficiency within Mdcs during neuroinflammation increased extracellular arginine and was associated with rewiring of the CNS metabolic landscape, including attenuated disease-linked metabolites. This was accompanied by enhanced Mdc-driven anti-inflammation, regulatory T cell expansion and improved disease outcome. Opposing effects were observed following dietary arginine deficiency. Together, our work highlights key roles for Mdcs in CNS metabolism and reveals the pleiotropic beneficial effects of arginine in neuroinflammation.
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