败血症
背景(考古学)
免疫系统
器官功能障碍
生物
炎症
多器官功能障碍综合征
代谢综合征
重编程
病态的
免疫学
生物信息学
医学
疾病
脂质代谢
机制(生物学)
纤维化
全身炎症反应综合征
免疫功能障碍
细胞因子
高乳酸血症
脂肪组织
细胞代谢
作者
Fan Wu,Y. Chen,Lihua Chen,Xiaolu Wei,Lin Zhang,Yi Shen
摘要
Sepsis is a life-threatening syndrome characterized by infection-induced systemic inflammation and immune dysregulation, commonly resulting in the development of multiple organ dysfunction syndrome (MODS), a leading cause of mortality in clinical practice. In decades, immunometabolic reprogramming has been identified as a critical mechanism that contributes to the progression of sepsis and the associated organ injuries. The review provides a systematic overview of the metabolic alterations in immune cells and organs in experimental models of sepsis. Key features include enhanced glycolysis, impaired mitochondrial function, and disturbed lipid metabolism, all of which are closely associated with organ damage. These metabolic adaptations influence immune responses and cell fate decisions, inter-organ crosstalk, and the development of MODS. A detailed examination is conducted on the temporal progression of pathological changes in established animal models, along with organ-specific metabolic dysfunctions and novel therapeutic targets. It emphasizes the importance of dynamic immunometabolic regulation, tissue-specific responses, and inter-organ interactions in the context of sepsis treatment. The integration of multi-omics technologies, identification of reliable biomarkers, and the development of personalized therapeutic strategies should be used to facilitate clinical translation of mechanistic insights.
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