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Updated: Apr 22, 2026

Production and Detection of Reactive Oxygen Species ROS in Cancers
Published on: November 21, 2011
Redox-Guided Metabolic Control in Cancer: Integration of the Reactive Oxygen Species-AMP-Activated Protein
1CSIR-Central Leather Research Institute (CLRI), Chennai, India.
Abstract:
Cancer progression is tightly linked to metabolic reprogramming and persistent redox imbalance, which together sustain tumour growth while simultaneously creating exploitable vulnerabilities. Reactive oxygen species (ROS), once viewed solely as damaging metabolic by-products, are now recognized as dynamic signalling molecules that regulate energy homeostasis, mitochondrial function, and cell-fate decisions. Central to this regulation is the ROS-AMP-activated protein kinase (AMPK)-sirtuin axis, an evolutionarily conserved network that integrates redox signals with cellular energy sensing and NAD⁺ metabolism. AMPK responds to energetic and oxidative stress by suppressing anabolic pathways and promoting catabolic adaptation, whereas NAD⁺-dependent sirtuins-particularly SIRT1, SIRT3, and SIRT6-translate metabolic and redox cues into coordinated transcriptional, epigenetic, and mitochondrial responses. At moderate ROS levels, activation of this axis restores metabolic equilibrium, enhances antioxidant defences, and preserves genomic stability; in contrast, excessive or sustained oxidative stress overwhelms adaptive capacity, driving mitochondrial dysfunction and apoptosis in metabolically compromised tumour cells. This review provides a mechanistic and translational synthesis of how ROS regulate AMPK and sirtuin activity through both energy-dependent and redox-dependent mechanisms, thereby reshaping cancer metabolism and redox homeostasis. We examine the context-dependent roles of individual sirtuin isoforms across nuclear, cytosolic, and mitochondrial compartments and discuss emerging therapeutic strategies targeting this network, including pharmacological AMPK activators, NAD⁺ boosters, sirtuin modulators, and redox-active nutraceuticals. Finally, we highlight key translational challenges and future directions, emphasizing biomarker-guided precision, isoform-specific targeting, and controlled modulation of ROS signalling. Collectively, this framework positions the ROS-AMPK-Sirtuin axis as a foundation for redox-guided metabolic oncology.
Insights
Reactive oxygen species (ROS) and the AMPK-sirtuin pathway are crucial in cancer metabolism and redox balance. Understanding this axis offers new therapeutic targets for metabolic oncology.
Area of Science:
- Oncology
- Metabolic Regulation
- Redox Biology
Background:
- Cancer progression involves metabolic reprogramming and redox imbalance.
- Reactive oxygen species (ROS) act as signaling molecules regulating cellular processes.
- The ROS-AMPK-sirtuin axis integrates redox and energy signals.
Purpose of the Study:
- To synthesize the mechanistic and translational aspects of ROS regulation on the AMPK-sirtuin axis in cancer.
- To examine the roles of sirtuin isoforms in different cellular compartments.
- To discuss therapeutic strategies targeting this network.
Main Methods:
- Literature review and synthesis of mechanistic and translational data.
- Analysis of energy-dependent and redox-dependent mechanisms of ROS on AMPK and sirtuins.
- Examination of sirtuin isoform functions and therapeutic interventions.
Main Results:
- ROS modulate AMPK and sirtuin activity, reshaping cancer metabolism and redox homeostasis.
- Moderate ROS activate the axis to restore equilibrium; excessive ROS lead to dysfunction and apoptosis.
- Sirtuin isoforms (SIRT1, SIRT3, SIRT6) play context-dependent roles.
Conclusions:
- The ROS-AMPK-sirtuin axis is a foundation for redox-guided metabolic oncology.
- Targeting this network with AMPK activators, NAD+ boosters, or sirtuin modulators shows therapeutic potential.
- Future directions include precision targeting and controlled ROS modulation.
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