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Updated: Dec 30, 2025

Creation of a Knee Joint-on-a-Chip for Modeling Joint Diseases and Testing Drugs
Published on: January 27, 2023
Link N suppresses interleukin-1β-induced biological effects on human osteoarthritic cartilage
M Alaqeel, M P Grant, L M Epure
1Orthopaedics Research Laboratory, Lady Davis Institute for Medical Research, SMBD-Jewish General Hospital, Department of Experimental Surgery, Faculty of Medicine, McGill University, 3755 Chemin de la Côte-Sainte-Catherine, Montréal, QC, H3T 1E2, Canada.fmwale@jgh.mcgill.ca.
Abstract:
Osteoarthritis (OA) is a disease of diarthrodial joints associated with extracellular matrix proteolytic degradation under inflammatory conditions, pain and disability. Currently, there is no therapy to prevent, reverse or modulate the disease course. The present study aimed at evaluating the regenerative potential of Link N (LN) in human OA cartilage in an inflammatory milieu and determining if LN could affect pain-related behaviour in a knee OA mouse injury model. Osteo-chondro OA explants and OA chondrocytes were treated with LN in the presence of interleukin-1β (IL-1β) to simulate an osteoarthritic environment. Quantitative von Frey polymerase chain reaction and Western blotting were performed to determine the effect of LN on matrix protein synthesis, catabolic enzymes, cytokines and nerve growth factor expression. Partial medial meniscectomy (PMM) was performed on the knee of C57BL/6 mice and, 12 weeks post-surgery, mice were given a 5 µg intra-articular injection of LN or phosphate-buffered saline. A von Frey test was conducted over 24 h to measure the mechanical allodynia in the hind paw. LN modulated proteoglycan and collagen synthesis in human OA cartilage through inhibition of IL-1β-induced biological effects. LN also supressed IL-1β-induced upregulation of cartilage-degrading enzymes and inflammatory molecules in OA chondrocytes. Upon investigation of the canonical signalling pathways IL-1β and nuclear factor kappa-light-chain-enhancer of activated B cells (NF-κB), LN resulted to significantly inhibit NF-κB activation in a dose-dependent manner. In addition, LN suppressed mechanical allodynia in an OA PMM mouse model. Results supported the concept that LN administration could provide therapeutic potential in OA.
Insights
Link N (LN) shows regenerative potential for osteoarthritis (OA) by protecting cartilage and reducing pain. This study investigated LN
Area of Science:
- Biomedical Engineering
- Orthopedics
- Molecular Biology
Background:
- Osteoarthritis (OA) involves joint matrix degradation and inflammation, with no current disease-modulating therapies.
- Interleukin-1β (IL-1β) is a key inflammatory mediator in OA pathogenesis.
- Link N (LN) is being investigated for its potential therapeutic effects in OA.
Purpose of the Study:
- To evaluate the regenerative potential of Link N (LN) in human OA cartilage.
- To determine if LN can mitigate pain-related behaviors in a knee OA mouse model.
Main Methods:
- Human OA explants and chondrocytes were treated with LN and IL-1β.
- Gene expression and protein analysis (PCR, Western blotting) assessed matrix synthesis and inflammatory markers.
- A partial medial meniscectomy (PMM) mouse model was used to evaluate LN's effect on mechanical allodynia.
Main Results:
- LN protected human OA cartilage by inhibiting IL-1β-induced degradation and promoting matrix synthesis.
- LN suppressed IL-1β-induced expression of cartilage-degrading enzymes and inflammatory molecules.
- LN significantly inhibited NF-κB activation and reduced mechanical allodynia in the OA mouse model.
Conclusions:
- Link N (LN) demonstrates significant potential for OA therapy by modulating cartilage matrix metabolism and inflammation.
- LN's inhibition of the NF-κB pathway and reduction of pain suggest a promising therapeutic strategy for osteoarthritis.
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