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The role of oxidative stress in chemical carcinogenesis
J E Klaunig1, Y Xu, J S Isenberg
1Department of Pharmacology and Toxicology, Indiana University School of Medicine, Indianapolis 46202, USA. jklauni@indyuax.iupui.edu
Abstract:
Oxidative stress results when the balance between the production of reactive oxygen species (ROS) overrides the antioxidant capability of the target cell; oxidative damage from the interaction of reactive oxygen with critical cellular macromolecules may occur. ROS may interact with and modify cellular protein, lipid, and DNA, which results in altered target cell function. The accumulation of oxidative damage has been implicated in both acute and chronic cell injury including possible participation in the formation of cancer. Acute oxidative injury may produce selective cell death and a compensatory increase in cell proliferation. This stimulus may result in the formation of newly initiated preneoplastic cells and/or enhance the selective clonal expansion of latent initiated preneoplastic cells. Similarly, sublethal acute oxidative injury may produce unrepaired DNA damage and result in the formation of new mutations and, potentially, new initiated cells. In contrast, sustained chronic oxidative injury may lead to a nonlethal modification of normal cellular growth control mechanisms. Cellular oxidative stress can modify intercellular communication, protein kinase activity, membrane structure and function, and gene expression, and result in modulation of cell growth. We examined the role of oxidative stress as a possible mechanism by which nongenotoxic carcinogens may function. In studies with the selective mouse liver carcinogen dieldrin, a species-specific and dose-dependent decrease in liver antioxidant concentrations with a concomitant increase in ROS formation and oxidative damage was seen. This increase in oxidative stress correlated with an increase in hepatocyte DNA synthesis. Antioxidant supplementation prevented the dieldrin-induced cellular changes. Our findings suggest that the effect of nongenotoxic carcinogens (if they function through oxidative mechanisms) may be amplified in rodents but not in primates because of rodents' greater sensitivity to ROS. These results and findings reported by others support a potential role for oxidative-induced injury in the cancer process specifically during the promotion stage.
Insights
Oxidative stress, caused by an imbalance in reactive oxygen species (ROS), can damage cells and contribute to cancer promotion. Antioxidant supplementation may prevent these harmful effects.
Area of Science:
- Toxicology
- Cell Biology
- Carcinogenesis
Background:
- Oxidative stress occurs when reactive oxygen species (ROS) overwhelm cellular antioxidant defenses.
- ROS can damage cellular macromolecules like DNA, proteins, and lipids, leading to altered cell function.
- Oxidative damage accumulation is linked to acute and chronic cell injury, including cancer formation.
Purpose of the Study:
- To investigate the role of oxidative stress in the mechanism of action of nongenotoxic carcinogens.
- To examine the effects of the chemical dieldrin on oxidative stress and cell proliferation in mouse liver.
Main Methods:
- Assessed dieldrin's impact on antioxidant concentrations, ROS formation, and oxidative damage in mouse liver.
- Measured hepatocyte DNA synthesis in response to dieldrin exposure.
- Evaluated the protective effect of antioxidant supplementation against dieldrin-induced changes.
Main Results:
- Dieldrin exposure caused a dose-dependent decrease in liver antioxidants and increased ROS formation and oxidative damage.
- Increased oxidative stress correlated with enhanced hepatocyte DNA synthesis.
- Antioxidant supplementation effectively prevented dieldrin-induced cellular alterations.
Conclusions:
- Oxidative stress may be a key mechanism for certain nongenotoxic carcinogens, particularly during cancer promotion.
- Rodents may be more susceptible to the carcinogenic effects of ROS-inducing agents than primates due to differential sensitivity.
- Findings support a role for oxidative injury in cancer development, specifically in the promotion stage.