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Updated: Sep 22, 2026

Cell Population Analyses During Skin Carcinogenesis
Published on: August 21, 2013
Detection and identification of activated oncogenes in human skin cancers occurring on sun-exposed body sites
H N Ananthaswamy1, J E Price, L H Goldberg
1Department of Immunology, University of Texas M.D. Anderson Hospital and Tumor Institute, Houston.
Abstract:
High-molecular-weight DNA isolated from eight fresh human skin cancers occurring on sun-exposed body sites were assayed for their ability to transform NIH 3T3 cells. A cotransfection protocol using pSV2-neo DNA, which confers resistance to the antibiotic G418, was used to select cells that had taken up the transfected DNA. About 2 weeks after transfection, G418-resistant colonies were pooled and injected s.c. into athymic nude mice. The NIH 3T3 cells transfected with DNA from six of the human skin cancers induced tumors in nude mice. DNAs from all six tumor cell lines contained human alu sequences. Southern blot hybridization with ras-specific probes revealed that DNAs from the four alu-rich tumors contained the human Ha-ras oncogene, in addition to that of the NIH 3T3 controls. In contrast, DNAs from the other two tumors did not contain any of the known oncogenes tested, except those endogenous to NIH 3T3 cells. DNAs from three of four first cycle tumorigenic transformants gave rise to morphologically transformed foci when assayed in a second cycle of transfection. DNAs from all three secondary transformants contained discrete human alu sequences, and in addition, contained Ha-ras sequences similar to those present in their respective primary transformants. Interestingly, DNA from both primary and secondary transformants of one particular human squamous cell carcinoma contained highly amplified copies of the Ha-ras oncogene. These results suggest that activation of the Ha-ras oncogene may be common in human skin cancers originating on sun-exposed body sites. Further characterization of the Ha-ras oncogenes present in these human skin cancers may provide information on the molecular mechanisms by which UV radiation of the sun induces human neoplasms on exposed body sites.
Insights
Activation of the Ha-ras oncogene is common in human skin cancers from sun-exposed sites. This study investigated DNA from skin cancers to understand UV radiation
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Sun-exposed skin cancers are a significant health concern.
- The role of oncogenes in skin carcinogenesis is under investigation.
- Understanding genetic alterations in skin tumors can elucidate cancer development.
Purpose of the Study:
- To investigate the transforming ability of DNA from human skin cancers.
- To identify oncogenes, such as Ha-ras, involved in skin cancer development.
- To explore the potential link between UV radiation and oncogene activation in skin neoplasms.
Main Methods:
- High-molecular-weight DNA isolation from human skin cancers.
- Cotransfection of NIH 3T3 cells with human DNA and a selectable marker (pSV2-neo).
- Tumorigenicity assays in athymic nude mice and Southern blot hybridization with oncogene probes.
Main Results:
- DNA from six of eight skin cancers induced tumors in nude mice.
- The Ha-ras oncogene was detected in four of the six tumor-derived cell lines.
- Amplification of the Ha-ras oncogene was observed in a human squamous cell carcinoma.
- Secondary transfection experiments confirmed the transforming ability and Ha-ras involvement.
Conclusions:
- Activation of the Ha-ras oncogene appears common in human skin cancers from sun-exposed areas.
- These findings suggest a role for Ha-ras in UV-induced skin carcinogenesis.
- Further research into Ha-ras oncogenes may reveal mechanisms of UV-induced neoplasia.
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