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Updated: Aug 29, 2026

Cell Population Analyses During Skin Carcinogenesis
Published on: August 21, 2013
E6 and E7 oncoproteins induce distinct patterns of chromosomal aneuploidy in skin tumors from transgenic mice
Anthony J Schaeffer1, Marie Nguyen, Amy Liem
1Genetics Branch, Center for Cancer Research, National Cancer Institute/NIH, Bethesda, Maryland, USA.
Abstract:
Inactivation of the tumor suppressor genes p53 and Rb are two of the most common genetic alterations in cancer cells. We use a mouse model to dissect the consequences of compromising the function of either of these genes on the maintenance of genomic stability. Thirteen cell lines established from skin tumors of mice expressing either the E6 or E7 oncoprotein of the human papillomavirus (HPV) type 16 under control of the keratin 14 promoter were analyzed by comparative genomic hybridization, spectral karyotyping and fluorescence in situ hybridization, reverse transcription-PCR, and mutation analysis. Deducing from the wealth of molecular cytogenetic data available from human cancers, we hypothesized that the more benign tumors in mice expressing E7 would be distinct from the more aggressive lesions in E6 transgenic mice. Tumorigenesis in E6-expressing mice required specifically the selection and maintenance of cells with extra copies of chromosome 6. Aneuploidy of chromosome 6 was independent of activating mutations in H-ras on chromosome 7. Expression of either E6 or E7 resulted in centrosome aberrations, indicating that each viral oncoprotein interferes independently with the centrosome cycle. Although centrosome aberrations are consistent with development of aneuploidy, no direct correlation was evident between the degree of aneuploidy and the percentage of cells with aberrant centrosomes. Our results show that although aneuploidy and centrosome aberrations are present in tumor cells from mice expressing either E6 or E7, tumorigenesis via E6 requires copy number increases of mouse chromosome 6, which is partially orthologous to human chromosome 3q, a region gained in HPV-associated carcinomas.
Insights
Tumor suppressor gene inactivation is common in cancer. This study reveals that while both E6 and E7 oncoproteins cause centrosome aberrations, E6-driven tumorigenesis specifically requires extra copies of chromosome 6 for genomic instability.
Area of Science:
- Oncology
- Genetics
- Virology
Background:
- Inactivation of tumor suppressor genes p53 and Rb are frequent in cancer.
- Human papillomavirus (HPV) oncoproteins E6 and E7 are key drivers of cervical cancer.
- Genomic instability is a hallmark of cancer, but the specific genetic alterations driving tumorigenesis are complex.
Purpose of the Study:
- To investigate the role of p53 and Rb inactivation in maintaining genomic stability using a mouse model.
- To compare the consequences of HPV E6 and E7 oncoprotein expression on tumor development and genomic integrity.
- To identify specific chromosomal abnormalities associated with E6- and E7-driven tumorigenesis.
Main Methods:
- Comparative genomic hybridization (CGH)
- Spectral karyotyping (SKY)
- Fluorescence in situ hybridization (FISH)
- Reverse transcription-PCR (RT-PCR)
- Mutation analysis in mouse skin tumor cell lines
Main Results:
- Tumorigenesis in E6-expressing mice required amplification of chromosome 6, partially orthologous to human chromosome 3q.
- Both E6 and E7 oncoproteins induced centrosome aberrations, suggesting independent interference with the cell cycle.
- Aneuploidy of chromosome 6 was observed and was independent of H-ras mutations.
- No direct correlation was found between the degree of aneuploidy and the percentage of cells with aberrant centrosomes.
Conclusions:
- E6 and E7 oncoproteins induce genomic instability through distinct mechanisms.
- E6-mediated tumorigenesis is critically dependent on the gain of chromosome 6, a region frequently amplified in HPV-associated carcinomas.
- Centrosome aberrations are a common consequence of E6/E7 expression but do not directly correlate with the extent of aneuploidy observed.
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