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Updated: Apr 30, 2026

Analyzing Ex Vivo Metabolic Flux in Splenic and Cardiac Macrophages and Bone Marrow Monocytes
Published on: March 28, 2025
Mitochondrial Proteomics Uncovers that Myeloid S100A9 Deficiency Promotes Liver Injury and Fibrosis Regression via
Jinfang Liu1,2, Ruixi Liu2, Yunwei Shi2,3
1Wuhan University TaiKang Medical School (School of Basic Medical Sciences), Wuhan University, Wuhan 430071, China.
Abstract:
Macrophage-mediated inflammation has been implicated in the pathogenesis of liver fibrosis. Metabolic reprogramming involves the transition of macrophages from a proinflammatory M1 phenotype toward an anti-inflammatory M2 phenotype. S100A9 is highly expressed in activated macrophages and promotes M1 polarization; however, it is unknown whether S100A9 alters the polarization state of macrophages by regulating metabolism. This study revealed enhanced oxidative phosphorylation (OXPHOS) in S100a9-deficient bone marrow-derived macrophages (BMDMs) based on mitochondrial proteomics, characterized by increased mitochondrial fusion and elevated ATP production. Further phenotypic analysis showed that S100a9-deficient peritoneal macrophages and BMDMs exhibited an M2-like phenotype at the basal state and enhanced M2 polarization with IL-4/IL-13 stimulation, reflected by higher CD206 expression. Using the OXPHOS inhibitor oligomycin, we demonstrated that suppressing OXPHOS completely rescued the M2 polarization bias of the S100a9-deficient macrophages. Finally, we found that genetic deletion of S100A9 in myeloid cells protected against liver injury and fibrogenesis through increasing the proportion of hepatic CD206-positive M2-like anti-inflammatory macrophages in a mouse model. Our study uncovers a novel role of S100A9 in macrophage mitochondrial metabolism and phenotype reprogramming during liver fibrosis, and targeting macrophage S100A9 may be considered as a potential therapeutic strategy against liver fibrosis.

