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Updated: May 21, 2026

Software-Assisted Quantitative Measurement of Osteoarthritic Subchondral Bone Thickness
Published on: March 18, 2022
DAPT Mitigates Osteoarthritic Cartilage Degeneration and Enhances Articular Repair Through Targeted Modulation of the
Xiaoyan Zheng1,2, Rui Lin1,3, Shan Huang4,5
1Institute of Clinical Medicine, Zhanjiang Central Hospital, Guangdong Medical University (Central People's Hospital of Zhanjiang), Zhanjiang, 524045, People's Republic of China.
Background:
While Nitric oxide (NO) and Notch signaling pathways are implicated in osteoarthritis (OA) progression, their functional interplay remains largely unexplored. We hypothesized that Gucy1a3 (sGCα1) functions as a non-canonical soluble sensor, bridging nitrosative stress to pathological Notch activation.
Methods:
To test the hypothesis that Gucy1a3 mediates NO-Notch crosstalk, we used both sodium nitroprusside (SNP)-stimulated chondrocytes and a rat medial meniscus resection model. Mechanistic hierarchy was analyzed via Gucy1a3 siRNA knockdown and the Notch inhibitor DAPT. Additionally, the capacity of DAPT to modulate chondrogenic lineage commitment was evaluated in rat bone marrow mesenchymal stem cells (BMSCs).
Results:
DAPT reversed SNP-induced catabolism in chondrocytes, suppressing Notch components (Notch1, Jagged1) and inflammatory markers (iNOS, MMP13) while restoring anabolic gene expression. Crucially, DAPT suppressed Gucy1a3 expression, breaking a reciprocal positive feedback loop (NO-Gucy1a3-Notch). Although Gucy1a3 knockdown phenocopied the anti-inflammatory signature of DAPT, DAPT uniquely activated the chondrogenic differentiation of BMSCs. In preclinical models, intra-articular delivery of DAPT effectively safeguarded joint homeostasis by reducing subchondral bone deterioration and decreasing cartilage degeneration.
Conclusion:
This study identifies Gucy1a3 as a mediator that transduces inflammatory nitric oxide signals to activate Notch. DAPT exerts therapeutic effects by inhibiting Gucy1a3-mediated catabolism in chondrocytes and promoting the differentiation of BMSCs. Although these findings are currently limited to in vitro and rodent models, targeting this signaling axis offers a potential strategy for developing disease-modifying osteoarthritis drugs.
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