Redox Homeostasis as a Therapeutic Target in Chronic Oxidative Diseases: Implications for Cancer Treatment
Moon Nyeo Park1, Min Choi1, Rony Abdi Syahputra2
1College of Korean Medicine, Kyung Hee University, 1-5 Hoegidong, Dongdaemun-gu, Seoul 02447, Republic of Korea.
Abstract:
Reactive oxygen species (ROS) have traditionally been viewed as pathological by-products of metabolism that drive tissue damage through oxidative stress. However, accumulating evidence across chronic diseases, including metabolic, cardiovascular, neurodegenerative disorders, and cancer, indicates that ROS also function as tightly regulated signaling molecules essential for cellular adaptation and survival. This paradigm shift from oxidative stress to redox signaling necessitates a fundamental re-evaluation of how redox imbalance contributes to chronic disease pathogenesis. In this review, we propose that chronic diseases should be understood as disorders of maladaptive redox homeostasis rather than simple consequences of excessive oxidative damage. We delineate the distinction between oxidative stress and redox signaling, emphasizing how chronic redox remodeling stabilizes pathological cellular states through coordinated regulation of key redox-sensitive transcriptional nodes, including KEAP1-NRF2, FOXO, HIFs, and NF-κB. Using cancer as a representative model, we illustrate how elevated but buffered ROS levels support oncogenic signaling, metabolic rewiring, and therapeutic resistance through redox addiction. We further discuss why non-specific antioxidant strategies have largely failed and argue that effective intervention requires context-dependent redox modulation rather than global ROS suppression. Finally, we introduce therapeutic redox reprogramming and outline future directions for precision redox medicine based on biomarker-guided stratification and disease stage-specific targeting strategies.
Insights
Reactive oxygen species (ROS) are now understood as vital signaling molecules, not just damaging agents. Chronic diseases stem from disrupted redox homeostasis, requiring targeted therapies over broad antioxidant approaches.
Area of Science:
- Biochemistry
- Cell Biology
- Pathophysiology
Background:
- Reactive oxygen species (ROS) traditionally linked to oxidative stress and tissue damage.
- Emerging evidence highlights ROS as critical signaling molecules in cellular adaptation and survival.
- Chronic diseases involve complex redox biology beyond simple oxidative damage.
Purpose of the Study:
- Re-evaluate the role of redox imbalance in chronic disease pathogenesis.
- Distinguish between oxidative stress and redox signaling.
- Propose a new framework for understanding chronic diseases as disorders of redox homeostasis.
Main Methods:
- Review of current literature on ROS and chronic diseases.
- Analysis of redox-sensitive transcriptional nodes (KEAP1-NRF2, FOXO, HIFs, NF-κB).
- Case study using cancer as a model for redox addiction and signaling.
Main Results:
- Chronic diseases result from maladaptive redox homeostasis, not just oxidative damage.
- Elevated ROS levels in cancer support oncogenic signaling and therapeutic resistance.
- Non-specific antioxidant strategies are ineffective due to the dual role of ROS.
Conclusions:
- Effective disease intervention requires context-dependent redox modulation.
- Therapeutic redox reprogramming offers a new strategy for precision redox medicine.
- Future directions include biomarker-guided stratification and stage-specific targeting.
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