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Updated: Mar 27, 2026

Production and Detection of Reactive Oxygen Species ROS in Cancers
Published on: November 21, 2011
Reactive oxygen species (ROS) in cancer: from mechanism to therapeutic implications
Sharmin Akter1,2,3, Rajesh Madhuvilakku2,3,4, Anik Kumar Kar2,3,4
1Department of Biology, Indiana State University, Terre Haute, IN, USA.
Abstract:
Reactive oxygen species (ROS) act as critical secondary messengers in various intracellular signaling pathways that regulate cellular proliferation, differentiation, and survival under normal physiological conditions. However, dysregulation of redox signaling-driven by genetic mutations, epigenetic alterations, and posttranscriptional or posttranslational modifications-plays a central role in malignant transformation and cancer progression. Cancer cells typically exhibit elevated basal ROS levels due to increased metabolic activity, mitochondrial dysfunction, and oncogene activation. This moderate oxidative stress promotes tumorigenesis by inducing DNA damage, genomic instability, and aberrant activation of proliferative and survival pathways, while also contributing to resistance to conventional therapies. Paradoxically, excessive ROS accumulation can overwhelm antioxidant defenses, triggering oxidative stress-induced programmed cell death (PCD) mechanisms, including apoptosis, autophagy, and ferroptosis. Owing to its dual role-facilitating both tumor progression and suppression-ROS have emerged as compelling yet complex targets in cancer therapy. Therapeutic strategies aimed at modulating ROS homeostasis, such as enhancing ROS production, inhibiting antioxidant systems, or targeting downstream redox-regulated signaling nodes, hold promise for selectively eliminating cancer cells. Furthermore, integrating redox profiling or "redox signatures" into personalized medicine approaches may optimize therapeutic efficacy while minimizing off-target toxicity. In this review, we critically examine the Janus-faced role of ROS in carcinogenesis, dissect the molecular pathways regulated by ROS in tumor biology, and explore current advancements, limitations, and future directions in redox-based anticancer therapeutic approaches.
Insights
Reactive oxygen species (ROS) are crucial in cell signaling but their dysregulation drives cancer. Targeting ROS offers a promising, yet complex, therapeutic strategy for cancer treatment.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Reactive oxygen species (ROS) are vital intracellular messengers regulating cell functions.
- Dysregulated redox signaling, influenced by genetic and epigenetic factors, is central to cancer development and progression.
- Cancer cells often have elevated ROS levels, promoting tumorigenesis and therapy resistance.
Purpose of the Study:
- To critically examine the dual role of ROS in carcinogenesis.
- To dissect ROS-regulated molecular pathways in tumor biology.
- To explore advancements and future directions in redox-based cancer therapeutics.
Main Methods:
- Literature review of ROS roles in cancer.
- Analysis of molecular pathways influenced by ROS.
- Evaluation of current and emerging redox-based cancer therapies.
Main Results:
- ROS play a dual role, promoting tumor progression at moderate levels and inducing cell death at excessive levels.
- Elevated ROS in cancer cells contribute to DNA damage, genomic instability, and survival pathway activation.
- Targeting ROS homeostasis presents a complex but promising therapeutic avenue.
Conclusions:
- ROS are a compelling, albeit complex, target for cancer therapy due to their dual role in tumor progression and suppression.
- Modulating ROS levels through various strategies may selectively eliminate cancer cells.
- Integrating redox profiling into personalized medicine could enhance therapeutic outcomes and reduce toxicity.
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