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Updated: Mar 30, 2026

Software-Assisted Quantitative Measurement of Osteoarthritic Subchondral Bone Thickness
Published on: March 18, 2022
p21 deficiency is susceptible to osteoarthritis through STAT3 phosphorylation
Shinya Hayashi1, Takaaki Fujishiro2, Shingo Hashimoto3
1Department of Orthopaedic Surgery, Kobe University Graduate School of Medicine, 7-5-1 Kusunoki-cho, Chuo-ku, Kobe, 650-0017, Japan. s11793290@yahoo.co.jp.
Introduction:
Osteoarthritis (OA) is a multifactorial disease, and recent studies have suggested that cell cycle-related proteins play a role in OA pathology. p21 was initially identified as a potent inhibitor of cell cycle progression. However, it has been proposed that p21 is a regulator of transcription factor activity. In this study, we evaluated the role of p21 in response to biomechanical stress.
Methods:
Human chondrocytes were treated with p21-specific small interfering RNA (siRNA), and cyclic tensile strain was introduced in the presence or absence of a signal transducer and activator of transcription 3 (STAT3)-specific inhibitor. Further, we developed an in vivo OA model in a p21-knockout background for in vivo experiments.
Results:
The expression of matrix metalloproteinase (MMP13) mRNA increased in response to cyclic tensile strain following transfection with p21 siRNA, whereas the expression of aggrecan was decreased. Phospho-STAT3 and MMP-13 protein levels increased following downregulation of p21, and this was reversed by treatment with a STAT3 inhibitor. p21-deficient mice were susceptible to OA, and this was associated with increased STAT3 phosphorylation, elevated MMP-13 expression, and elevation of synovial inflammation. The expression of p21 mRNA was decreased and phosphorylation of STAT3 was elevated in human OA chondrocytes.
Conclusions:
The lack of p21 has catabolic effects by regulation of aggrecan and MMP-13 expression through STAT3 phosphorylation in the cartilage tissue. p21 may function as a regulator of transcriptional factors other than the inhibitor of cell cycle progression in the cartilage tissue. Thus, the regulation of p21 may be a therapeutic strategy for the treatment of OA.
Insights
Reduced p21 levels in osteoarthritis (OA) promote cartilage breakdown via STAT3 activation. Restoring p21 may offer a new therapeutic strategy for OA treatment.
Area of Science:
- Biochemistry
- Molecular Biology
- Orthopedics
Background:
- Osteoarthritis (OA) is a complex disease involving cell cycle proteins.
- p21, known as a cell cycle inhibitor, may also regulate transcription factors.
- The role of p21 in response to biomechanical stress in OA is not fully understood.
Purpose of the Study:
- To investigate the function of p21 in cartilage under biomechanical stress.
- To explore the relationship between p21, STAT3, and matrix-degrading enzymes in OA.
Main Methods:
- Human chondrocytes were treated with p21 siRNA and subjected to cyclic tensile strain.
- STAT3 inhibitor was used to assess its effect on p21-siRNA treated cells.
- A p21-knockout mouse model was developed for in vivo OA studies.
Main Results:
- Downregulation of p21 increased MMP13 expression and decreased aggrecan expression in chondrocytes.
- p21 deficiency led to increased STAT3 phosphorylation and MMP-13 levels, exacerbating OA in mice.
- Human OA chondrocytes showed decreased p21 mRNA and increased STAT3 phosphorylation.
Conclusions:
- p21 deficiency promotes cartilage catabolism through STAT3 phosphorylation, affecting aggrecan and MMP-13 expression.
- p21 acts as a transcriptional regulator in cartilage, not just a cell cycle inhibitor.
- Modulating p21 levels presents a potential therapeutic avenue for osteoarthritis treatment.
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