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Updated: May 30, 2026

Assessment of Cellular Oxidation using a Subcellular Compartment-Specific Redox-Sensitive Green Fluorescent Protein
Published on: June 18, 2020
Cellular redox pathways as a therapeutic target in the treatment of cancer
Alberto J Montero1, Jacek Jassem
1Department of Internal Medicine, University of Miami Sylvester Comprehensive Cancer Center, FL, USA. amontero2@med.miami.edu
Abstract:
The vulnerability of some cancer cells to oxidative signals is a therapeutic target for the rational design of new anticancer agents. In addition to their well characterized effects on cell division, many cytotoxic anticancer agents can induce oxidative stress by modulating levels of reactive oxygen species (ROS) such as the superoxide anion radical, hydrogen peroxide and hydroxyl radicals. Tumour cells are particularly sensitive to oxidative stress as they typically have persistently higher levels of ROS than normal cells due to the dysregulation of redox balance that develops in cancer cells in response to increased intracellular production of ROS or depletion of antioxidant proteins. In addition, excess ROS levels potentially contribute to oncogenesis by the mediation of oxidative DNA damage. There are several anticancer agents in development that target cellular redox regulation. The overall cellular redox state is regulated by three systems that modulate cellular redox status by counteracting free radicals and ROS, or by reversing the formation of disulfides; two of these are dependent on glutathione and the third on thioredoxin. Drugs targeting S-glutathionylation have direct anticancer effects via cell signalling pathways and inhibition of DNA repair, and have an impact on a wide range of signalling pathways. Of these agents, NOV-002 and canfosfamide have been assessed in phase III trials, while a number of others are undergoing evaluation in early phase clinical trials. Alternatively, agents including PX-12, dimesna and motexafin gadolinium are being developed to target thioredoxin, which is overexpressed in many human tumours, and this overexpression is associated with aggressive tumour growth and poorer clinical outcomes. Finally, arsenic derivatives have demonstrated antitumour activity including antiproliferative and apoptogenic effects on cancer cells by pro-oxidant mechanisms, and the induction of high levels of oxidative stress and apoptosis by an as yet undefined mechanism. In this article we review anticancer drugs currently in development that target cellular redox activity to treat cancer.
Insights
New anticancer drugs target cancer cell vulnerability to oxidative stress. These agents modulate reactive oxygen species (ROS) and redox balance, offering novel therapeutic strategies for cancer treatment.
Area of Science:
- Oncology
- Biochemistry
- Pharmacology
Background:
- Cancer cells exhibit heightened vulnerability to oxidative stress due to dysregulated redox balance and elevated reactive oxygen species (ROS) levels.
- Increased ROS contributes to oncogenesis via oxidative DNA damage, making redox regulation a key therapeutic target.
- Cellular redox state is maintained by glutathione and thioredoxin systems, which are implicated in cancer progression and drug resistance.
Purpose of the Study:
- To review anticancer drugs currently in development that target cellular redox activity.
- To highlight novel therapeutic strategies exploiting cancer cell sensitivity to oxidative stress.
- To discuss agents targeting S-glutathionylation and thioredoxin pathways, as well as arsenic derivatives.
Main Methods:
- Review of existing literature on anticancer agents targeting cellular redox regulation.
- Analysis of drugs in clinical trials targeting glutathione and thioredoxin systems.
- Examination of the mechanisms of action for novel pro-oxidant anticancer agents.
Main Results:
- Several drug classes targeting redox regulation are in development, including those affecting S-glutathionylation and thioredoxin.
- Agents like NOV-002 and canfosfamide targeting S-glutathionylation have reached Phase III trials.
- Drugs targeting thioredoxin (e.g., PX-12, dimesna) and arsenic derivatives show promise by inducing oxidative stress and apoptosis in cancer cells.
Conclusions:
- Targeting cellular redox activity represents a promising strategy for developing new anticancer agents.
- Drugs modulating ROS and redox balance offer potential for treating cancers sensitive to oxidative stress.
- Further clinical evaluation of these redox-targeting agents is warranted to establish their efficacy and safety.
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