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Updated: Jun 5, 2025

Production and Detection of Reactive Oxygen Species ROS in Cancers
Published on: November 21, 2011
Reactive oxygen species: Janus-faced molecules in the era of modern cancer therapy
Aine O'Reilly1,2,3, Wenchao Zhao4, Stina Wickström1,5
1Department of Oncology-Pathology, Karolinska Institutet, Stockholm, Sweden.
Abstract:
Oxidative stress, that is, an unbalanced increase in reactive oxygen species (ROS), contributes to tumor-induced immune suppression and limits the efficacy of immunotherapy. Cancer cells have inherently increased ROS production, intracellularly through metabolic perturbations and extracellularly through activation of NADPH oxidases, which promotes cancer progression. Further increased ROS production or impaired antioxidant systems, induced, for example, by chemotherapy or radiotherapy, can preferentially kill cancer cells over healthy cells. Inflammatory cell-derived ROS mediate immunosuppressive effects of myeloid-derived suppressor cells and activated granulocytes, hampering antitumor effector cells such as T cells and natural killer (NK) cells. Cancer therapies modulating ROS levels in tumors may thus have entirely different consequences when targeting cancer cells versus immune cells. Here we discuss the possibility of developing more efficient cancer therapies based on reduction-oxidation modulation, as either monotherapies or in combination with immunotherapy. Short-term, systemic administration of antioxidants or drugs blocking ROS production can boost the immune system and act in synergy with immunotherapy. However, prolonged use of antioxidants can instead enhance tumor progression. Alternatives to systemic antioxidant administration are under development where gene-modified or activated T cells and NK cells are shielded ex vivo against the harmful effects of ROS before the infusion to patients with cancer.
Insights
Oxidative stress (ROS) fuels cancer growth and immune suppression, limiting immunotherapy. Modulating ROS offers novel cancer therapy strategies, but timing and approach are critical for efficacy.
Area of Science:
- Oncology
- Immunology
- Biochemistry
Background:
- Oxidative stress, an imbalance of reactive oxygen species (ROS), promotes tumor progression and suppresses the immune system, hindering immunotherapy effectiveness.
- Cancer cells exhibit elevated ROS production, contributing to their growth and resistance.
- Therapies like chemotherapy and radiotherapy can increase ROS, potentially killing cancer cells but also impacting immune cells.
Purpose of the Study:
- To explore the potential of reduction-oxidation (redox) modulation as a cancer therapy strategy.
- To discuss the dual role of ROS in cancer and immunity.
- To evaluate redox modulation as monotherapy or in combination with immunotherapy.
Main Methods:
- Review of existing literature on oxidative stress in cancer and immunity.
- Analysis of the effects of ROS modulation on cancer cells and immune cells.
- Discussion of therapeutic strategies involving antioxidants and ROS-inhibiting drugs.
Main Results:
- Short-term antioxidant administration can enhance immune response and synergize with immunotherapy.
- Prolonged antioxidant use may paradoxically promote tumor progression.
- ROS-modulating therapies have differential effects on cancer versus immune cells.
Conclusions:
- Redox modulation presents a promising avenue for developing novel cancer therapies.
- Careful consideration of ROS modulation timing and targets is crucial for therapeutic success.
- Ex vivo ROS shielding of immune cells offers a potential strategy to overcome therapy-induced immune suppression.
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