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Updated: Sep 6, 2026

An ex vivo Mouse Model for High-Fat Diet-Like Adipose Tissue Inflammation
Published on: July 14, 2026
Cross-tissue single-cell atlas reveals Id2 promotes sepsis-induced tissue damage by mediating macrophage metabolic
Xiaodan Wang1, Yiyan Liu1, Yuanqun Zhou1
1Department of Shock and Transfusion, Daping Hospital, Army Medical University, Chongqing, 400042, China.
Abstract:
As important immune cells, macrophage polarization is directly related to tissue damage in sepsis, and the polarization of macrophages is associated with their metabolic patterns. Previous studies exploring macrophage function in sepsis mainly focused on specific tissues, lacking comprehensive comparisons between tissues. Herein, we performed single-cell RNA sequencing (scRNA-seq) to systematically profile macrophages derived from the brain, heart, intestine, lung, spleen, and peripheral blood mononuclear cells (PBMCs) under homeostatic and septic conditions. Under steady-state, we detected the markers of macrophages in different tissues, classified the macrophages into 10 functional subtypes and compared the differences in their distribution among tissues. In sepsis, we found that Pkm2 and Id2 played important roles in macrophage glycolysis. Mechanistically, Id2 mediated the metabolic reprogramming of macrophages by regulating the chromatin accessibility of Pkm2. Helichrysetin, an inhibitor of Id2, could significantly alleviate tissue damage and increase the survival of septic mice. In summary, our research depicted a cross-tissue macrophage landscape at the single-cell level that encompasses both homeostasis and sepsis. We also provided a new target and a potential drug for the treatment of sepsis by inhibiting macrophage metabolic reprogramming.