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A Syngeneic Mouse Model of Metastatic Renal Cell Carcinoma for Quantitative and Longitudinal Assessment of Preclinical Therapies
Published on: April 12, 2017
Mechanisms of chemically induced renal carcinogenesis in the laboratory rodent
1American Health Foundation, Valhalla, New York 10595, USA.
Abstract:
Laboratory studies with classical renal carcinogens in the rat and mouse, as well as research investigation with some of the chemicals proving positive for the kidney in National Toxicology Program carcinogenicity bioassays, have demonstrated the existence of a range of diverse mechanisms underlying rodent kidney carcinogenesis. The classical carcinogens used as experimental models for studying renal tumor pathogenesis, such as the nitrosamines, are genotoxic and interact directly with DNA, forming DNA adducts with mutagenic potential. In contrast, potassium bromate and ferric nitrilotriacetate (Fe-NTA), also effective renal carcinogens, appear to cause indirect damage to DNA mediated by oxidative stress. A number of nongenotoxic chemicals are associated with epigenetic renal tumor induction in rodents, and the activity of these tends to involve prolonged stimulation of cell proliferation throughout the duration of exposure. This mode of action reflects a sustained regenerative response, either due to direct chemical toxicity to the tubule cells, as with chloroform, or to indirect cytotoxicity associated with lysosomal overload, as in alpha2u-globulin accumulation in male rats resulting from the administration of such chemicals as d-limonene and tetrachloroethylene. The histopathologic nature of hydroquinone renal carcinogenesis suggests that an additional epigenetic pathway to renal tubule tumor formation in rats may be through chemical-mediated exacerbation of, and interaction with, the age-related spontaneous renal disease, chronic progressive nephropathy. These various mechanistic pathways have implications for the nature of the induced cancer process with respect to tumor incidence, latency, malignancy, and sex predisposition.
Insights
Rodent kidney cancer arises from diverse mechanisms, including direct DNA damage by genotoxic chemicals and indirect damage via oxidative stress or epigenetic changes like sustained cell proliferation. Understanding these pathways is crucial for cancer research.
Area of Science:
- Toxicology
- Carcinogenesis
- Molecular Biology
Background:
- Rodent kidney carcinogenesis involves multiple mechanisms.
- Classical carcinogens like nitrosamines are genotoxic, directly damaging DNA.
- Other carcinogens, such as potassium bromate and ferric nitrilotriacetate (Fe-NTA), induce indirect DNA damage via oxidative stress.
Purpose of the Study:
- To elucidate the diverse mechanisms of rodent kidney carcinogenesis.
- To differentiate between genotoxic and epigenetic pathways.
- To explore the role of sustained cell proliferation and interaction with pre-existing renal disease.
Main Methods:
- Laboratory studies using classical renal carcinogens in rats and mice.
- Analysis of chemicals positive in National Toxicology Program (NTP) carcinogenicity bioassays.
- Histopathological examination of induced renal tumors.
Main Results:
- Genotoxic carcinogens form DNA adducts.
- Nongenotoxic carcinogens induce epigenetic changes, including sustained cell proliferation.
- Mechanisms include direct toxicity (e.g., chloroform), lysosomal overload (e.g., alpha2u-globulin accumulation), and exacerbation of chronic progressive nephropathy (e.g., hydroquinone).
Conclusions:
- Rodent kidney cancer is driven by a spectrum of genotoxic and epigenetic mechanisms.
- These pathways influence tumor incidence, latency, malignancy, and sex predisposition.
- Understanding these diverse mechanisms is vital for accurate risk assessment and cancer prevention strategies.
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