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Zengyi Huang

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Open access Jul 2026

Deficient early canonical BMP9-SMAD signaling and dysregulated macrophage microenvironment characterize the failure of bone healing in a critical-size defect model

Introduction Atrophic non-union is a significant clinical challenge associated with impaired early inflammation resolution and delayed osteogenesis. Although the osteoimmune microenvironment is critical for bone healing, the specific molecular mechanisms regulating this process require further elucidation. Methods We utilized a 6-mm critical-size rat femoral defect model and time-series RNA sequencing to explore potential molecular mechanisms. Additionally, primary mouse bone marrow-derived macrophages (BMMs) were used for in vitro validation of in vivo findings. Results Histological and transcriptomic analyses identified 1-2 weeks post-fracture as a critical window characterized by significant inhibition of the canonical BMP9-SMAD signaling cascade in the non-union microenvironment. In vivo, this defect was associated with sustained accumulation of M1 macrophages, impaired reparative M2 polarization, and osteoclast-mediated bone resorption. In vitro studies further validated the in vivo results, confirming that BMP9 promotes M2 macrophage polarization, upregulates chemokines Ccl2 and Ccl7, and inhibits RANKL-induced osteoclastogenesis through the canonical SMAD-ID1 pathway. Discussion Early loss of canonical BMP9-SMAD signaling disrupts the balance between immune cell recruitment and bone remodeling, contributing to the development of atrophic non-union in critical-size defects. Targeted modulation of the BMP9-driven osteoimmune axis may offer a potential therapeutic strategy for impaired bone healing.

Kai Zhong, Yufei Shao, Yu Zhou et al. · 0 citations