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Regional analysis of p53 mutations in rheumatoid arthritis synovium
Yuji Yamanishi1, David L Boyle, Sanna Rosengren
1Division of Rheumatology, Allergy, and Immunology, University of California at San Diego School of Medicine, La Jolla, CA 92093, USA.
Abstract:
The p53 tumor suppressor protein plays a central role in cell cycle regulation, DNA repair, and apoptosis. Recent studies indicate that DNA damage and somatic mutations in the p53 gene can occur because of genotoxic stress in many tissues, including the skin, colon, and synovium. Although somatic mutations in the p53 gene have been demonstrated in rheumatoid arthritis (RA) synovial tissue and synoviocytes, no information is available on the location or extent of p53 mutations. Using microdissected RA synovial tissue sections, we observed abundant p53 transition mutations, which are characteristic DNA damage caused by oxidative stress. p53 mutations, as well as p53 mRNA expression, were located mainly in the synovial intimal lining rather than the sublining (P < 0.01). Clusters of p53 mutant subclones were observed in some microdissected regions, suggesting oligoclonal expansion. Because IL-6 gene expression is regulated by wild-type p53, IL-6 mRNA expression in microdissected tissues was quantified by using real-time PCR. The regions with high rates of p53 mutations contained significantly greater amounts of IL-6 mRNA compared with the low mutation samples (P < 0.02). The microdissection findings suggest that p53 mutations are induced in RA synovial tissues by inflammatory oxidative stress. This process, as in sun-exposed skin and inflamed colonic epithelium, provides some of the mutant clones with a selective growth advantage. A relatively low percentage of cells containing p53 mutations can potentially affect neighboring cells and enhance inflammation through the elaboration of proinflammatory cytokines.
Insights
p53 mutations, linked to oxidative stress, are found in rheumatoid arthritis synovial tissue, particularly the intimal lining. These mutations may drive inflammation by increasing IL-6 expression and promoting cell growth.
Area of Science:
- Molecular Biology
- Immunology
- Oncology
Background:
- The p53 tumor suppressor protein is crucial for DNA repair and apoptosis.
- DNA damage and p53 mutations occur due to genotoxic stress in various tissues.
- p53 gene mutations are present in rheumatoid arthritis (RA) synovial tissue.
Purpose of the Study:
- To investigate the location and extent of p53 mutations in RA synovial tissue.
- To explore the relationship between p53 mutations and IL-6 expression in RA.
- To understand the role of p53 mutations in RA pathogenesis.
Main Methods:
- Microdissection of RA synovial tissue sections.
- Analysis of p53 transition mutations and mRNA expression.
- Quantification of IL-6 mRNA using real-time PCR.
Main Results:
- Abundant p53 transition mutations were observed, characteristic of oxidative stress.
- p53 mutations and mRNA expression were concentrated in the synovial intimal lining.
- Regions with high p53 mutation rates showed significantly higher IL-6 mRNA levels.
- Evidence of oligoclonal expansion of p53 mutant subclones was found.
Conclusions:
- p53 mutations in RA synovial tissue are induced by inflammatory oxidative stress.
- Mutant p53 clones may gain a growth advantage, similar to processes in skin and colon.
- p53 mutations can enhance inflammation through increased IL-6 production and cytokine elaboration.