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Patterns of CDKN2A gene loss in sequential oral epithelial dysplasias and carcinomas
S A Shahnavaz1, G Bradley, J A Regezi
1Faculty of Dentistry, University of Toronto, Ontario, Canada.
Abstract:
The CDKN2A gene locus encodes two different proteins derived from alternative splicing. p16 (exons 1alpha, 2, and 3) acts as a G1 cell cycle regulator, and p14ARF (exons 1beta, 2, and 3) acts to modulate MDM2-mediated degradation of p53. Inactivation of p16 is a common finding in many cancers; however, there is little data on CDKN2A gene abnormalities in oral precancer. In this longitudinal study, we examined changes in the CDKN2A gene locus in sequential epithelial dysplasias and oral carcinomas from 11 patients. Genomic DNA was extracted from laser-microdissected lesional tissue, and exons 1alpha, 1beta, and 2 were analyzed by duplex PCR. Immunohistochemistry was done to identify p16 and p14ARF protein expression. Two adjacent polymorphic microsatellite markers were used for allelotyping. Homozygous deletion of exon 1alpha was identified in 2 of 17 (12%) precancerous lesions. Loss of either exon 1alpha, exon 2, or both was seen in seven of nine (78%) carcinomas. In five of these carcinomas, there was loss of only exon 1alpha. No case showed deletion of exon 1beta. In 5 of 11 patients, microsatellite markers showed differing patterns of allelic imbalance in the precancerous lesions and the subsequent carcinoma, suggesting a complex genetic pattern of progression from dysplasia to carcinoma. We conclude that during oral carcinogenesis homozygous deletion of exon 1alpha of the CDKN2A gene is common but that deletion of exon 2 and 1beta is less frequent. Moreover, our results suggest that the progression from oral precancer to cancer, in some cases, is more complex genetically than predicted by linear models of carcinogenesis.
Insights
Homozygous deletion of exon 1alpha in the CDKN2A gene is common in oral precancer. Loss of CDKN2A exons is frequent in oral carcinomas, indicating complex genetic changes during oral carcinogenesis.
Area of Science:
- Molecular Biology
- Cancer Genetics
- Oncology
Background:
- The CDKN2A gene locus produces p16 and p14ARF proteins involved in cell cycle regulation and tumor suppression.
- p16 inactivation is common in cancers, but CDKN2A alterations in oral precancer are understudied.
- Oral precancer and carcinoma progression involve complex genetic events.
Purpose of the Study:
- To investigate alterations in the CDKN2A gene locus during the progression of oral precancer to carcinoma.
- To analyze the expression of p16 and p14ARF proteins in sequential oral lesions.
- To understand the genetic complexity of oral carcinogenesis.
Main Methods:
- Longitudinal analysis of CDKN2A gene locus in sequential epithelial dysplasias and oral carcinomas from 11 patients.
- Genomic DNA extraction from laser-microdissected lesional tissue.
- Duplex PCR for analyzing CDKN2A exons 1alpha, 1beta, and 2.
- Immunohistochemistry for p16 and p14ARF protein expression.
- Microsatellite analysis for allelotyping and allelic imbalance detection.
Main Results:
- Homozygous deletion of exon 1alpha was found in 12% of precancerous lesions.
- Loss of CDKN2A exons (1alpha, 2, or both) occurred in 78% of carcinomas.
- No deletion of exon 1beta was observed.
- Differential allelic imbalance patterns between precancerous lesions and carcinomas in 5 of 11 patients.
Conclusions:
- Homozygous deletion of CDKN2A exon 1alpha is a frequent event in oral carcinogenesis.
- Alterations in exon 2 and exon 1beta are less common.
- The progression from oral precancer to carcinoma exhibits complex genetic patterns, potentially deviating from linear models.
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