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Updated: Feb 11, 2026

Production and Detection of Reactive Oxygen Species ROS in Cancers
Published on: November 21, 2011
Reactive Chemicals and Electrophilic Stress in Cancer: A Minireview
1Faculté de Pharmacie, Faculté des Sciences et des Techniques, IICiMed, Université de Nantes, 2 rue de la Houssinière, 44322 Nantes, France. vehary.sakanyan@univ-nantes.fr.
Abstract:
Exogenous reactive chemicals can impair cellular homeostasis and are often associated with the development of cancer. Significant progress has been achieved by studying the macromolecular interactions of chemicals that possess various electron-withdrawing groups and the elucidation of the protective responses of cells to chemical interventions. However, the formation of electrophilic species inside the cell and the relationship between oxydative and electrophilic stress remain largely unclear. Derivatives of nitro-benzoxadiazole (also referred as nitro-benzofurazan) are potent producers of hydrogen peroxide and have been used as a model to study the generation of reactive species in cancer cells. This survey highlights the pivotal role of Cu/Zn superoxide dismutase 1 (SOD1) in the production of reactive oxygen and electrophilic species in cells exposed to cell-permeable chemicals. Lipophilic electrophiles rapidly bind to SOD1 and induce stable and functionally active dimers, which produce excess hydrogen peroxide leading to aberrant cell signalling. Moreover, reactive oxygen species and reactive electrophilic species, simultaneously generated by redox reactions, behave as independent entities that attack a variety of proteins. It is postulated that the binding of the electrophilic moiety to multiple proteins leading to impairing different cellular functions may explain unpredictable side effects in patients undergoing chemotherapy with reactive oxygen species (ROS)-inducing drugs. The identification of proteins susceptible to electrophiles at early steps of oxidative and electrophilic stress is a promising way to offer rational strategies for dealing with stress-related malignant tumors.
Insights
Cell-permeable chemicals can trigger cellular damage by interacting with Cu/Zn superoxide dismutase 1 (SOD1). This interaction produces excess reactive oxygen and electrophilic species, potentially explaining chemotherapy side effects.
Area of Science:
- Biochemistry
- Cellular Biology
- Toxicology
Background:
- Exogenous reactive chemicals disrupt cellular homeostasis and are linked to cancer development.
- Understanding intracellular electrophilic species formation and its relation to oxidative stress is crucial.
- Nitro-benzoxadiazole derivatives serve as models for studying reactive species generation in cancer cells.
Purpose of the Study:
- To investigate the role of Cu/Zn superoxide dismutase 1 (SOD1) in cellular responses to cell-permeable chemicals.
- To elucidate the mechanisms of reactive oxygen and electrophilic species production.
- To explore the implications for chemotherapy side effects and cancer treatment.
Main Methods:
- Studying macromolecular interactions of chemicals with electron-withdrawing groups.
- Analyzing cellular responses to chemical interventions.
- Utilizing nitro-benzoxadiazole derivatives as model compounds.
- Investigating the role of SOD1 in reactive species production.
Main Results:
- Lipophilic electrophiles bind to SOD1, forming active dimers that overproduce hydrogen peroxide.
- Simultaneous generation of reactive oxygen species (ROS) and reactive electrophilic species (RES) occurs.
- ROS and RES act as independent entities, damaging various cellular proteins.
- Aberrant cell signaling results from excess hydrogen peroxide production.
Conclusions:
- SOD1 plays a key role in producing reactive oxygen and electrophilic species upon exposure to cell-permeable chemicals.
- The independent action of ROS and RES on proteins contributes to cellular dysfunction.
- Identifying electrophile-susceptible proteins could lead to strategies for managing chemotherapy side effects and cancer.
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