Iron Drives Eosinophil Differentiation in Allergic Airway Inflammation Through Mitochondrial Metabolic Adaptation

嗜酸性粒细胞 免疫学 炎症 过敏性炎症 嗜酸性阳离子蛋白 细胞生物学 细胞分化 生物 嗜酸性粒细胞过氧化物酶 哮喘 生物化学 基因
作者
Fei Li,Hao‐Yu Tang,Yuejue Wang,Qian Wu,Lingling Dong,Jamil Z. Kitoko,Jiaqi Huang,Hạixia Chen,Ruixin Jia,Zhengyuan Liu,Chao Zhang,Xufei Du,Wen Li,Zhihua Chen,Huahao Shen,Songmin Ying
出处
期刊:Advanced Healthcare Materials [Wiley]
标识
DOI:10.1002/adhm.202405085
摘要

Abstract Eosinophils play a crucial role as effector cells in asthma pathogenesis, with their differentiation being tightly regulated by metabolic mechanisms. While the involvement of iron in various cellular processes is well known, its specific role in eosinophil differentiation has largely remained unexplored. This study demonstrates that iron levels are increased during the differentiation process from eosinophil progenitors to mature and activated eosinophils in the context of allergic airway inflammation. Through experiments involving iron chelators, supplements, and iron‐deficient or iron‐enriched diets, the indispensable role of iron in eosinophil lineage commitment both in vitro and in vivo is demonstrated. Remarkably, iron chelation effectively suppresses eosinophil differentiation and alleviates airway inflammation in a house dust mite(HDM)‐induced mouse model of allergic asthma. Mechanistically, iron promotes the expression of transcription factors that enforce eosinophil differentiation, and maintains mitochondrial metabolic activities, leading to specific metabolic shifts within the tricarboxylic acid (TCA) cycle, with succinate promoting eosinophil differentiation. Overall, this study highlights the function of iron and underlying metabolic mechanisms in eosinophil differentiation, providing potential therapeutic strategies for asthma control.
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