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Published on: December 19, 2019
Dimethylbenzanthracene carcinogenesis in Gadd45a-null mice is associated with decreased DNA repair and increased
M C Hollander1, O Kovalsky, J M Salvador
1NIH, National Cancer Institute (NCI), Division of Basic Science, Bethesda, Maryland 20892, USA. ch96b@nih.gov
Abstract:
Mice lacking the Gadd45a gene are susceptible to ionizing radiation-induced tumors. Increased levels of Gadd45a transcript and protein are seen after treatment of cells with ionizing radiation as well as many other agents and treatments that damage DNA. Because cells deficient in Gadd45a were shown to have a partial defect in the global genomic repair component of the nucleotide excision repair pathway of UV-induced photoproducts, dimethylbenzanthracene (DMBA) carcinogenesis was investigated because this agent produces bulky adducts in DNA that are also repaired by nucleotide excision repair. Wild-type mice and mice deficient for Gadd45a were injected with a single i.p. dose of DMBA at 10-14 days of age. The latency for spontaneous deaths was slightly decreased for Gadd45a-null mice compared with wild-type mice. At 17 months, all surviving animals were killed, and similar percentages of each genotype were found to have tumors. However, nearly twice as many Gadd45a-null than wild-type mice had multiple tumors, and three times as many had multiple malignant tumors. The predominant tumor types in wild-type mice were lymphoma and tumors of the intestines and liver. In Gadd45a-null mice, there was a dramatic increase in female ovarian tumors, male hepatocellular tumors, and in vascular tumors in both sexes. In wild-type mice, this dose of DMBA induced a >5-fold increase in Gadd45a transcript in the spleen and ovary, whereas the increase in liver was >20-fold. Nucleotide excision repair, which repairs both UV- and DMBA-induced DNA lesions, was substantially reduced in Gadd45a-null lymphoblasts. Mutation frequency after DMBA treatment was threefold higher in Gadd45a-null liver compared with wild-type liver. Therefore, lack of basal and DMBA-induced Gadd45a may result in enhanced tumorigenesis because of decreased DNA repair and increased mutation frequency. Genomic instability, decreased cell cycle checkpoints, and partial loss of normal growth control in cells from Gadd45a-null mice may also contribute to this process.
Insights
Mice lacking the Gadd45a gene show increased tumor development after DNA damage. Loss of Gadd45a impairs DNA repair and boosts mutation rates, leading to enhanced tumorigenesis.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Gadd45a gene is crucial for cellular response to DNA damage.
- Deficiency in Gadd45a leads to susceptibility to ionizing radiation-induced tumors.
- Gadd45a plays a role in nucleotide excision repair (NER) of DNA lesions.
Purpose of the Study:
- To investigate the role of Gadd45a in dimethylbenzanthracene (DMBA)-induced carcinogenesis.
- To determine if Gadd45a deficiency impacts DNA repair and mutation frequency after DMBA exposure.
- To explore the contribution of Gadd45a to tumor development and types.
Main Methods:
- Comparison of tumor development in wild-type and Gadd45a-null mice after DMBA injection.
- Assessment of nucleotide excision repair efficiency in lymphoblasts.
- Measurement of mutation frequency in liver tissue post-DMBA treatment.
- Analysis of Gadd45a transcript levels in various tissues.
Main Results:
- Gadd45a-null mice exhibited a higher incidence of multiple and malignant tumors compared to wild-type mice.
- Specific tumor types, including ovarian, hepatocellular, and vascular tumors, were significantly increased in Gadd45a-null mice.
- Nucleotide excision repair was reduced, and mutation frequency was threefold higher in Gadd45a-null mice after DMBA exposure.
- DMBA treatment significantly upregulated Gadd45a transcript levels in wild-type mice.
Conclusions:
- The absence of Gadd45a enhances tumorigenesis due to impaired DNA repair and increased mutation frequency.
- Gadd45a deficiency contributes to genomic instability and altered cell cycle control, promoting tumor growth.
- Gadd45a is a critical factor in preventing chemically induced cancers by maintaining DNA integrity.
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