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Updated: Mar 31, 2026

Standardized Histomorphometric Evaluation of Osteoarthritis in a Surgical Mouse Model
Published on: May 6, 2020
Beneficial reward-to-risk action of glucosamine during pathogenesis of osteoarthritis
Yeon-Ho Kang1, Sujeong Park2, Chihyun Ahn3
1Department of Biological Sciences, College of Natural Sciences, Wonkwang University, Iksan, Chunbuk, 570-749, Korea. yunokang@gmail.com.
Objective:
Glucosamine is widely used to improve the symptoms and to delay the structural progression of osteoarthritis. However, its efficacy in osteoarthritis has been controversial and its underlying mechanism of action remains unclear. The aim of this study was to investigate the effects of glucosamine and the underlying mechanisms in human chondrocytes.
Methods:
Chondrocytes from normal human articular cartilage were treated with glucosamine (10-100 mM). Subsequently, cell death was analyzed by Annexin V staining and FACS and mitochondrial function was studied by measuring the mitopotential. Peroxisomal function was analyzed by BODIPY staining, and gene expression of PMP70 and acyl-CoA oxidase 1, by real-time PCR. Total lipids were analyzed by gas chromatography/mass spectrometry. Autophagy activation was determined by western blotting of beclin and light chain 3B. Autophagosome formation was analyzed by introduction of green fluorescent protein (GFP) LC3, and pexophagy was determined by introduction of mRFP-EGFP-SKL plasmids.
Results:
Treatment of chondrocytes with glucosamine exerts exposure time-dependent dual effects on apoptosis/autophagy. Short time exposure of glucosamine to chondrocytes activated autophagy, pexophagy, and peroxidation. On the other hand, long time exposure of glucosamine had opposite effects, namely accumulation of very long chain fatty acids and peroxisomal dysfunction.
Conclusion:
We highlight the dual role of glucosamine in apoptosis/autophagy in human chondrocytes depending on exposure time. Although further research is required to fully understand the dual effects of glucosamine, dosage and duration of glucosamine treatment are clear contributing factors towards the line of beneficial reward-to-risk action.
Insights
Glucosamine shows dual effects on human chondrocytes, activating autophagy and peroxidation with short exposure but causing dysfunction with long exposure. Dosage and duration are key factors in its osteoarthritis treatment benefits.
Area of Science:
- Cell Biology
- Biochemistry
- Pharmacology
Background:
- Glucosamine is a popular osteoarthritis treatment, but its efficacy and mechanisms are debated.
- Understanding glucosamine's cellular effects is crucial for optimizing its therapeutic use.
Purpose of the Study:
- To investigate the effects of glucosamine on human chondrocytes.
- To elucidate the underlying mechanisms of glucosamine's action, focusing on apoptosis and autophagy.
Main Methods:
- Human chondrocytes were treated with varying concentrations of glucosamine.
- Assays included Annexin V staining, mitochondrial and peroxisomal function tests, gene expression analysis, lipid profiling, and western blotting for autophagy markers.
- Autophagosome and pexophagy formation were visualized using fluorescent protein tags.
Main Results:
- Short-term glucosamine exposure activated autophagy, pexophagy, and peroxidation in chondrocytes.
- Long-term exposure led to the accumulation of very long chain fatty acids and impaired peroxisomal function.
- Glucosamine demonstrated time-dependent dual effects on apoptosis and autophagy.
Conclusions:
- Glucosamine exhibits a dual role in chondrocyte apoptosis and autophagy, contingent on exposure duration.
- Dosage and treatment duration are critical determinants of glucosamine's therapeutic efficacy and safety profile in osteoarthritis.
- Further research is needed to fully comprehend these complex cellular responses.
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