Sustained Hypoxia‐Inducible Factor 1‐Alpha Accumulation Disrupts the Articular Niche to Promote Osteoarthritis Pathogenesis
Персистирующее накопление гипоксия-индуцируемого фактора 1-альфа нарушает суставную нишу и способствует патогенезу остеоартрита
2026-06-23
SCID: 54.1/hwdxq6qf
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HIF-1α accumulationarticular cartilage nichelipid nanoparticlesosteoarthritis pathogenesispathological angiogenesis
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ABSTRACT The precise role of hypoxia‐inducible factor‐1α (HIF‐1α) in osteoarthritis (OA) pathogenesis remains controversial, often debated between a protective compensatory factor and a disease mediator. Here, we demonstrate that sustained, uncoupled HIF‐1α accumulation functions as a potent, compartment‐specific pathogenic driver of joint destruction. Using genetically engineered mouse models, we reveal that chondrocyte‐specific HIF‐1α overexpression ( Acan CreERT2 ; Hif1αdPA fl/fl ) triggers spontaneous OA and exacerbates destabilization of the medial meniscus (DMM)‐induced post‐traumatic joint degeneration. Mechanistically, continuous HIF‐1α activation drives pathological angiogenesis that physically dismantles the avascular, hypoxic cartilage niche, forcing a profound metabolic dysregulation that culminates in catastrophic matrix degradation. Conversely, sustained HIF‐1α activation within the synovial and superficial cartilage compartments ( Prg4‐ GFPCreERT2 ; Hif1αdPA fl/fl ) drives a slowly progressive, late‐onset spontaneous OA through chronic inflammatory accumulation that actively suppresses Col2a1 expression. Furthermore, this robust inflammatory priming establishes a highly vulnerable microenvironment, whereby DMM surgery significantly accelerates the progression of trauma‐induced joint collapse. Finally, transient whole‐joint HIF‐1α induction via an intra‐articular injection of lipid nanoparticles (LNP‐mRNA) closely recapitulates these detrimental effects. Collectively, our study reconciles existing controversies by establishing sustained HIF‐1α accumulation as a spatiotemporally dynamic, broad disease amplifier across the articular ecosystem, highlighting its targeted inhibition as a promising therapeutic strategy for OA.
Key Findings
1
Chondrocyte-specific HIF-1α overexpression induces spontaneous osteoarthritis and worsens post-traumatic degeneration after destabilization of the medial meniscus.
2
Continuous chondrocyte HIF-1α activation causes pathological angiogenesis, disrupts the avascular hypoxic cartilage niche, alters metabolism, and promotes severe matrix degradation.
3
HIF-1α activation in synovial and superficial cartilage compartments causes late-onset osteoarthritis through chronic inflammation that suppresses Col2a1 expression.
4
Sustained, uncoupled HIF-1α accumulation acts as a compartment-specific pathogenic driver of osteoarthritis and joint destruction.
5
Transient whole-joint HIF-1α induction using intra-articular LNP-mRNA reproduces detrimental effects, supporting targeted HIF-1α inhibition as a potential osteoarthritis therapy.
Research Object
Articular joint tissues and their cellular compartments in genetically engineered mice, including cartilage, chondrocytes, synovium, and superficial cartilage, during spontaneous and post-traumatic osteoarthritis
Research Subject
The spatiotemporally compartment-specific pathogenic effects of sustained HIF-1α accumulation on angiogenesis, cartilage-niche disruption, metabolic dysregulation, inflammation, matrix degradation, and osteoarthritis progression
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2026-06-23
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