S100A9 Aggravates Cardiac Fibrosis by TLR4/PGC-1α Mediated Macrophage-Myofibroblast Crosstalk.
Y, Z., Y, Z., Q, Y., X, F., J, S., Y, D., & S, S. (2026). S100A9 Aggravates Cardiac Fibrosis by TLR4/PGC-1α Mediated Macrophage-Myofibroblast Crosstalk.. Journal of extracellular vesicles. https://doi.org/10.1002/jev2.70338
Y Z, Y Z, Q Y, X F, J S, Y D, et al. S100A9 Aggravates Cardiac Fibrosis by TLR4/PGC-1α Mediated Macrophage-Myofibroblast Crosstalk.. Journal of extracellular vesicles. 2026; doi: 10.1002/jev2.70338
Y Z, Y Z, Q Y, et al. S100A9 Aggravates Cardiac Fibrosis by TLR4/PGC-1α Mediated Macrophage-Myofibroblast Crosstalk.[J]. Journal of extracellular vesicles. 2026. DOI: 10.1002/jev2.70338.
@article{y2026,
author = {Zhao Y and Zhang Y and Yuan Q and Fang X and Sheng J and Deng Y and Shen S},
title = {S100A9 Aggravates Cardiac Fibrosis by TLR4/PGC-1α Mediated Macrophage-Myofibroblast Crosstalk.},
journal = {Journal of extracellular vesicles},
year = {2026},
doi = {10.1002/jev2.70338},
note = {PMID: 42489232},
}
TY - JOUR AU - Zhao Y AU - Zhang Y AU - Yuan Q AU - Fang X AU - Sheng J AU - Deng Y AU - Shen S TI - S100A9 Aggravates Cardiac Fibrosis by TLR4/PGC-1α Mediated Macrophage-Myofibroblast Crosstalk. T2 - Journal of extracellular vesicles PY - 2026 DO - 10.1002/jev2.70338 AN - PMID:42489232 ER -
Fibrosis is a critical component of ventricular remodelling after myocardial ischemia, and the activation and expansion of cardiac fibroblasts represent key drivers of this process. Our previous work identified S100A9-dependent macrophage-to-myofibroblast transition (MMT) as a newly recognized source of myofibroblasts in the post-MIR heart. However, the mechanisms by which S100A9 regulates MMT remain incompletely understood. Here, using multiple genetically engineered mouse models, MIR and MI model, and in vitro multicellular co-culture systems, we investigated the role of S100A9 in regulating fibroblast-derived migrasome release during MMT. We found that macrophage-derived S100A9 promotes mitochondrial dysfunction and migrasome release in cardiac fibroblasts through TLR4/PGC1α signalling following MIR. These fibroblast-derived migrasomes, in turn, activate integrin/Src signalling in macrophages, triggering MMT and accelerating cardiac fibrosis. Importantly, we delineate how macrophage-derived S100A9 orchestrates crosstalk between fibroblasts and immune cells and identify migrasome-mediated activation of MMT as a previously unrecognized mechanism driving post-MIR fibrotic remodelling. Our findings suggest that targeting S100A9-induced migrasome release and downstream MMT signalling may represent a promising therapeutic strategy to mitigate pathological cardiac fibrosis.