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Updated: Aug 19, 2026

Production and Detection of Reactive Oxygen Species (ROS) in Cancers
Published on: November 21, 2011
Controlling tumor growth by modulating endogenous production of reactive oxygen species
Alexis Laurent1, Carole Nicco, Christiane Chéreau
1Laboratoire d'Immunologie and Laboratoire de Recherche Chirurgicale, Unité Propre de Recherche de l'Enseignement Supérieur 1833, Faculté Cochin, Université Paris V, 75679 Paris Cedex 14, France.
Abstract:
Paradoxically, reactive oxygen species (ROS) can promote normal cellular proliferation and carcinogenesis, and can also induce apoptosis of tumor cells. In this report, we study the contribution of ROS to various cellular signals depending on the nature and the level of ROS produced. In nontransformed NIH 3T3 cells, ROS are at low levels and originate from NADPH oxidase. Hydrogen peroxide (H(2)O(2)), controlled by the glutathione system, is pivotal for the modulation of normal cell proliferation. In CT26 (colon) and Hepa 1-6 (liver) tumor cells, high levels of ROS, close to the threshold of cytotoxicity, are produced by mitochondria and H(2)O(2) is controlled by catalase. N-acetylcysteine, which decreases H(2)O(2) levels, inhibits mitogen-activated protein kinase and normal cell proliferation but increases tumor cell proliferation as H(2)O(2) concentration drops from the toxicity threshold. In contrast, antioxidant molecules, such as mimics of superoxide dismutase (SOD), increase H(2)O(2) levels through superoxide anion dismutation, as well as in vitro proliferation of normal cells, but kill tumor cells. CT26 tumors were implanted in mice and treated by oxaliplatin in association with one of the three SOD mimics manganese(III)tetrakis(4-benzoic acid) porphyrin, copper(II)(3,5-diisopropylsalicylate)2, or manganese dipyridoxyl diphosphate. After 1 month, the volumes of tumors were respectively 35%, 31%, and 63% smaller than with oxaliplatin alone (P < 0.001). Similar data were gained with Hepa 1-6 tumors. In conclusion, antioxidant molecules may have opposite effects on tumor growth. SOD mimics can act in synergy with cytotoxic drugs to treat colon and liver cancers.
Insights
Reactive oxygen species (ROS) have dual roles in cell proliferation and cancer. Superoxide dismutase (SOD) mimics, when combined with chemotherapy, effectively reduce colon and liver tumor growth.
Area of Science:
- Biochemistry
- Cell Biology
- Cancer Research
Background:
- Reactive oxygen species (ROS) paradoxically influence normal cell proliferation, carcinogenesis, and tumor cell apoptosis.
- ROS levels and types dictate their cellular signaling roles, impacting both normal and cancerous cells differently.
Purpose of the Study:
- To investigate the differential effects of ROS on normal and tumor cell signaling and proliferation.
- To evaluate the therapeutic potential of antioxidant molecules, specifically superoxide dismutase (SOD) mimics, in combination with chemotherapy for cancer treatment.
Main Methods:
- Comparative analysis of ROS production and control mechanisms (NADPH oxidase, mitochondria, glutathione, catalase) in NIH 3T3, CT26, and Hepa 1-6 cells.
- Assessment of N-acetylcysteine and SOD mimics on cell proliferation and signaling pathways (MAPK).
- In vivo studies using mouse models with CT26 and Hepa 1-6 tumors treated with oxaliplatin and various SOD mimics.
Main Results:
- Low ROS levels from NADPH oxidase, controlled by glutathione, promote normal cell proliferation via H(2)O(2).
- High ROS levels from mitochondria, controlled by catalase, are present in tumor cells; N-acetylcysteine and SOD mimics show opposing effects on normal vs. tumor cell proliferation.
- SOD mimics combined with oxaliplatin significantly reduced tumor volumes in CT26 and Hepa 1-6 models compared to oxaliplatin alone.
Conclusions:
- Antioxidant molecules, particularly SOD mimics, can have opposing effects on normal and tumor cell growth.
- SOD mimics demonstrate synergistic effects with cytotoxic drugs like oxaliplatin, offering a promising strategy for treating colon and liver cancers.
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