Targeting oxidative stress-mediated regulated cell death as a vulnerability in cancer
Danyao Chen1, Ziyu Guo2, Lei Yao3
1Department of Dermatology, Xiangya Hospital, Central South University, Changsha, China; National Engineering Research Center of Personalized Diagnostic and Therapeutic Technology, China; Furong Laboratory, Changsha, Hunan, China; Hunan Key Laboratory of Skin Cancer and Psoriasis, Hunan Engineering Research Center of Skin Health and Disease, Xiangya Hospital, Central South University, Changsha, China; National Clinical Research Center for Geriatric Disorders, Xiangya Hospital, China; Department of Thoracic Surgery, Xiangya Hospital, Central South University, Changsha, Hunan, China.
Abstract:
Reactive oxygen species (ROS), regulators of cellular behaviors ranging from signaling to cell death, have complex production and control mechanisms to maintain a dynamic redox balance under physiological conditions. Redox imbalance is frequently observed in tumor cells, where ROS within tolerable limits promote oncogenic transformation, while excessive ROS induce a range of regulated cell death (RCD). As such, targeting ROS-mediated regulated cell death as a vulnerability in cancer. However, the precise regulatory networks governing ROS-mediated cancer cell death and their therapeutic applications remain inadequately characterized. In this Review, we first provide a comprehensive overview of the mechanisms underlying ROS production and control within cells, highlighting their dynamic balance. Next, we discuss the paradoxical nature of the redox system in tumor cells, where ROS can promote tumor growth or suppress it, depending on the context. We also systematically explored the role of ROS in tumor signaling pathways and revealed the complex ROS-mediated cross-linking networks in cancer cells. Following this, we focus on the intricate regulation of ROS in RCD and its current applications in cancer therapy. We further summarize the potential of ROS-induced RCD-based therapies, particularly those mediated by drugs targeting specific redox balance mechanisms. Finally, we address the measurement of ROS and oxidative damage in research, discussing existing challenges and future prospects of targeting ROS-mediated RCD in cancer therapy. We hope this review will offer promise for the clinical application of targeting oxidative stress-mediated regulated cell death in cancer therapy.
Insights
Reactive oxygen species (ROS) are crucial for cell function, but their imbalance in cancer can be exploited. This review explores targeting ROS-mediated regulated cell death (RCD) for cancer therapy.
Area of Science:
- Cellular Biology
- Oncology
- Biochemistry
Background:
- Reactive oxygen species (ROS) are key regulators of cellular processes, maintaining redox balance.
- Tumor cells exhibit redox imbalance, where ROS can promote or suppress cancer depending on concentration.
- Targeting ROS-mediated regulated cell death (RCD) presents a potential cancer vulnerability.
Purpose of the Study:
- To provide a comprehensive overview of ROS production, control, and their role in cancer.
- To explore the intricate regulation of ROS in RCD and its therapeutic applications.
- To discuss challenges and future prospects in targeting ROS-mediated RCD for cancer therapy.
Main Methods:
- Systematic review of existing literature on ROS, redox balance, and cancer cell death.
- Analysis of ROS signaling pathways and cross-linking networks in cancer cells.
- Evaluation of current and potential therapeutic strategies targeting ROS-mediated RCD.
Main Results:
- ROS play a dual role in cancer, promoting oncogenesis at low levels and inducing RCD at high levels.
- Complex regulatory networks govern ROS-mediated cell death in cancer.
- Targeting specific redox balance mechanisms shows promise for drug development.
Conclusions:
- Understanding ROS dynamics is critical for cancer therapy development.
- Targeting ROS-induced RCD offers a promising therapeutic strategy.
- Further research is needed to overcome challenges in measuring ROS and applying these therapies clinically.
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