<i>Prg4</i>+ fibroadipogenic progenitors in muscle are crucial for bone fracture repair.

He, Qi; Lu, Jiawei; Liang, Qiushi; Yao, Lutian; Sun, Tingfang; Wang, Huan; Duffy, Michael; Jiang, Xi et al. · Proc Natl Acad Sci U S A · 2025

basic_science · Level V

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Abstract

Clinically, compromised fracture healing often occurs at sites with less muscle coverage and muscle flaps can provide the necessary healing environment for appropriate healing in severe bone loss. However, the underlying mechanisms are largely unknown. Here, we established a mouse reporter model for studying muscle cell contribution to bone fracture repair. Analyzing skeletal muscle scRNA-seq datasets revealed that <i>Prg4</i> marks a fibroadipogenic progenitor (FAP) subpopulation. In mice, <i>Prg4</i>+ cells were specifically located in the skeletal muscle, but not at the periosteum or inside cortical bone. These cells expressed FAP markers, responded to muscle injury, and became periosteal cells under normal and muscle injury conditions. Fracture fragmented muscle fibers, rapidly expanded <i>Prg4</i>+ FAPs at the injury site and promoted their migration into the fracture gap. Later, they gave rise to many chondrocytes, osteoblasts, and osteocytes in the outer periphery of callus next to muscle. In repaired bones, the descendants of <i>Prg4</i>+ FAPs were detected as mesenchymal progenitors in the periosteum and osteocytes at the prior fracture site. A second fracture activated those cells and stimulated them to become osteoblasts in the inner part of callus. Importantly, ablation of <i>Prg4</i>+ FAPs impaired fracture healing and functional repair. In an intramembranous bone injury model (drill-hole), <i>Prg4</i>+ FAPs became periosteal cells, but their contribution to bone defect repair was significantly less than in fractures. Taken together, we demonstrate the critical role of FAPs in endochondral bone repair and uncover a mechanism by which mesenchymal progenitors transform from muscle to cortical bone.

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