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IL-1β/EPAS1-Associated Ferroptotic Stress Impairs Skeletal Stem/Progenitor Cell Function in Inflammation-Associated
Ruoyu Wang1, Jie Li1, Yu Zhai2
1Chongqing Municipal Health Commission Key Laboratory of Precise Orthopedics, Army Medical University (Third Military Medical University), Chongqing 400038, China.
Abstract:
Atrophic fracture nonunion is a clinically challenging form of failed bone repair, particularly under inflammatory conditions, but the cell-intrinsic programs that impair the function of skeletal stem/progenitor cells (SSPCs) remain incompletely defined. Here, we integrated public and in-house single-cell RNA sequencing datasets from mouse periosteum, normal fracture healing, and inflammation-associated fracture nonunion models to characterize stromal cell fate changes. Trajectory inference, transcription factor network analysis, and intercellular communication modeling were combined with in vitro and in vivo validation experiments. SSPCs in the nonunion microenvironment were arrested in an undifferentiated state and acquired a pro-inflammatory and pro-ferroptotic phenotype, with enrichment of ferroptosis-related genes including Acsl4. Computational analyses nominated IL-1β as a candidate upstream inflammatory signal, with neutrophils representing a potential source, and linked this signal to NF-κB activation and increased Epas1 activity in SSPCs. In primary SSPCs, IL-1β induced lipid peroxidation, intracellular ferrous iron accumulation, ferroptosis-related protein expression, and impaired osteochondrogenic differentiation. Ferroptosis inhibitor treatment further attenuated IL-1β-induced ferroptosis-related protein changes, supporting pathway specificity. Pharmacological inhibition of EPAS1 with PT2385 attenuated IL-1β-induced ferroptotic stress and restored SSPC differentiation in vitro, while also improving IL-1β-impaired fracture repair in vivo. Mendelian randomization analysis provided additional genetic evidence supporting potential links among IL-1β, EPAS1, and human nonunion risk. Together, these findings suggest that an IL-1β/EPAS1-associated ferroptotic program contributes to SSPC dysfunction during inflammation-associated fracture nonunion and may represent a potential targetable mechanism for improving impaired bone repair.
Insights
Inflammation impairs bone healing by causing skeletal stem cells to undergo ferroptosis, a cell death process. Targeting the IL-1β/EPAS1 pathway can restore cell function and improve fracture repair.
Area of Science:
- Biomedical Engineering
- Cell Biology
- Regenerative Medicine
Background:
- Atrophic fracture nonunion is a complex failure of bone repair, especially under inflammation.
- The specific cellular mechanisms impairing skeletal stem/progenitor cells (SSPCs) in nonunion are not fully understood.
Purpose of the Study:
- To investigate the cell-intrinsic programs affecting SSPCs in inflammation-associated fracture nonunion.
- To identify molecular targets for improving bone repair in nonunion.
Main Methods:
- Integrated single-cell RNA sequencing data from mouse models of fracture healing and nonunion.
- Employed trajectory inference, transcription factor network analysis, and intercellular communication modeling.
- Validated findings using in vitro and in vivo experiments, including ferroptosis inhibition and EPAS1 pharmacological inhibition.
Main Results:
- SSPCs in nonunion exhibit an undifferentiated, pro-inflammatory, and pro-ferroptotic phenotype, with increased ferroptosis gene expression (e.g., Acsl4).
- Interleukin-1β (IL-1β) was identified as a key inflammatory signal, inducing ferroptosis and impairing osteogenic differentiation in SSPCs via NF-κB and EPAS1.
- Inhibition of EPAS1 with PT2385 rescued SSPC differentiation and improved fracture repair in vivo.
- Mendelian randomization analysis suggested links between IL-1β, EPAS1, and human nonunion risk.
Conclusions:
- An IL-1β/EPAS1-driven ferroptotic program contributes to SSPC dysfunction in inflammation-associated fracture nonunion.
- This ferroptotic pathway represents a potential therapeutic target for enhancing bone repair in nonunion conditions.
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