Key Takeaways & Executive Findings
- •• DMOG pretreatment restores osteogenic–adipogenic balance in ONFH-derived BMSCs by stabilizing HIF-1α. • Homer3 is identified as a downstream negative regulator of HIF-1α, aberrantly upregulated in fhBMSCs. • Homer3 knockdown mimics DMOG effects, promoting osteogenesis and mitochondrial function. • The HIF-1α/Homer3 axis offers a potential therapeutic target for ONFH.
Abstract
Background: Osteonecrosis of the femoral head (ONFH) is a progressive orthopedic disorder that often culminates in femoral head collapse and joint failure. Dysfunction of bone marrow mesenchymal stem cells (BMSCs), including impaired osteogenesis, enhanced adipogenesis, and mitochondrial dysfunction, has been increasingly recognized as a central driver of ONFH pathogenesis. However, the molecular mechanisms linking metabolic stress to lineage imbalance remain poorly defined. Methods: Paired BMSCs were isolated from necrotic femoral head regions (fhBMSCs) and the iliac crest (iBMSCs) of ONFH patients. Functional assays, RNA sequencing, and molecular analyses were performed to evaluate the effects of the hypoxia mimetic dimethyloxalylglycine (DMOG) on osteogenic–adipogenic balance, mitochondrial function, and senescence. Loss-of-function experiments targeting hypoxia-inducible factor-1α (HIF-1α) and Homer3 were conducted to elucidate mechanistic pathways. Results: Compared with iBMSCs, fhBMSCs exhibited impaired osteogenesis, enhanced adipogenesis, mitochondrial dysfunction, and increased senescence. DMOG pretreatment restored osteogenic differentiation, suppressed adipogenesis, improved mitochondrial dynamics, reduced oxidative stress, and enhanced bioenergetic metabolism. These protective effects were dependent on HIF-1α stabilization. Transcriptomic profiling identified Homer3 as a downstream negative regulator of HIF-1α. Homer3 was aberrantly upregulated in fhBMSCs but suppressed by DMOG, and its knockdown mimicked the effects of DMOG by promoting osteogenesis, inhibiting adipogenesis, enhancing mitophagy, and restoring mitochondrial function. Conversely, silencing HIF-1α abolished DMOG-mediated benefits and reinstated Homer3 expression. Conclusions: This study identifies the HIF-1α/Homer3 axis as a central regulator of lineage balance and mitochondrial homeostasis in ONFH-derived BMSCs. Pharmacological targeting of this pathway with DMOG or related prolyl hydroxylase inhibitors may provide a promising joint-preserving therapeutic strategy for ONFH.
1. Introduction
Osteonecrosis of the femoral head (ONFH) is a progressive and debilitating orthopedic disorder that frequently progresses to femoral head collapse and total hip replacement, especially in young and middle-aged patients [1]. Despite advances in surgical techniques, effective joint-preserving treatments remain limited, largely due to the incomplete understanding of disease mechanisms [2].
Bone marrow mesenchymal stem cells (BMSCs) play a pivotal role in bone homeostasis and regeneration, and their dysfunction is increasingly recognized as a major contributor to the onset and progression of ONFH [3]. BMSCs derived from ONFH patients often exhibit impaired osteogenic differentiation accompanied by enhanced adipogenesis, resulting in reduced bone formation and increased fat accumulation [4–6]. In parallel, mitochondrial dysfunction—characterized by decreased membrane potential, reduced ATP generation, excessive reactive oxygen species (ROS), and defective autophagy—further compromises BMSC differentiation capacity and lineage stability [7, 8]. However, the molecular link between metabolic stress and impaired lineage commitment in ONFH-derived BMSCs remains poorly defined.
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Qiheng Chen, Lingxian Yi, Penghui Nie, Jie Wang, Jing Zhu, Jiang Peng, Tujun Weng (2026). DMOG Pretreatment Restores Osteogenic–Adipogenic Balance and Mitochondrial Function in ONFH BMSCs through the HIF-1α/Homer3 Pathway. Stem Cell Research & Therapy. https://doi.org/10.1186/s13287-026-05026-0
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Frequently Asked Questions
What is the role of DMOG in treating osteonecrosis of the femoral head?
DMOG, a prolyl hydroxylase inhibitor, stabilizes HIF-1α, which restores the osteogenic–adipogenic balance and mitochondrial function in BMSCs derived from ONFH patients, potentially offering a joint-preserving therapeutic strategy.
How does Homer3 affect BMSC differentiation in ONFH?
Homer3 is a downstream negative regulator of HIF-1α that is upregulated in ONFH-derived BMSCs. Its knockdown promotes osteogenesis, inhibits adipogenesis, and enhances mitochondrial function, mimicking the beneficial effects of DMOG.
What are the key findings of the study on ONFH BMSCs?
The study found that DMOG pretreatment restores osteogenic differentiation, suppresses adipogenesis, improves mitochondrial dynamics, and reduces senescence in ONFH-derived BMSCs via the HIF-1α/Homer3 pathway.
What is the significance of the HIF-1α/Homer3 axis in ONFH?
The HIF-1α/Homer3 axis is a central regulator of lineage balance and mitochondrial homeostasis in ONFH-derived BMSCs, providing a novel molecular target for therapeutic intervention.
How was the study conducted?
Paired BMSCs were isolated from necrotic and healthy regions of ONFH patients. Functional assays, RNA sequencing, and molecular analyses were used to evaluate the effects of DMOG and to identify Homer3 as a key mediator.
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