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Updated: Jul 23, 2025

Production and Detection of Reactive Oxygen Species ROS in Cancers
Published on: November 21, 2011
"Double-edged sword" effect of reactive oxygen species (ROS) in tumor development and carcinogenesis
1Key Laboratory of Medical Microecology (Putian University), Fujian Province University, School of Pharmacy and Medical Technology, Putian University, Putian, China. lunyz@163.com.
Abstract:
Reactive oxygen species (ROS) are small reactive molecules produced by cellular metabolism and regulate various physiological and pathological functions. Many studies have shown that ROS plays an essential role in the proliferation and inhibition of tumor cells. Different concentrations of ROS can have a "double-edged sword" effect on the occurrence and development of tumors. A certain concentration of ROS can activate growth-promoting signals, enhance the proliferation and invasion of tumor cells, and cause damage to biomacromolecules such as proteins and nucleic acids. However, ROS can enhance the body's antitumor signal at higher levels by initiating oxidative stress-induced apoptosis and autophagy in tumor cells. This review analyzes ROS's unique bidirectional regulation mechanism on tumor cells, focusing on the key signaling pathways and regulatory factors that ROS affect the occurrence and development of tumors and providing ideas for an in-depth understanding of the mechanism of ROS action and its clinical application.
Insights
Reactive oxygen species (ROS) exhibit a dual role in cancer, promoting tumor growth at lower concentrations but triggering cell death at higher levels. Understanding this complex mechanism is key for developing novel cancer therapies.
Area of Science:
- Biochemistry
- Cell Biology
- Oncology
Background:
- Reactive oxygen species (ROS) are critical signaling molecules involved in cellular metabolism.
- ROS play a complex, concentration-dependent role in tumor cell proliferation and inhibition.
- The dual effect of ROS on tumors, often termed a "double-edged sword," necessitates detailed investigation.
Approach:
- This review synthesizes current research on the bidirectional regulatory mechanisms of ROS in tumor development.
- Key signaling pathways and regulatory factors influenced by ROS in tumorigenesis are analyzed.
- The study focuses on understanding the intricate effects of ROS on cancer cells.
Key Points:
- Low ROS concentrations can enhance tumor cell proliferation, invasion, and damage biomacromolecules.
- High ROS concentrations can induce oxidative stress, promoting apoptosis and autophagy in tumor cells, thereby enhancing antitumor responses.
- ROS signaling pathways are crucial for both promoting and inhibiting tumor progression.
Conclusions:
- ROS exhibit a unique bidirectional regulatory role in tumor cell behavior.
- Elucidating ROS mechanisms offers potential for novel clinical applications in cancer treatment.
- Further research into ROS signaling is vital for advancing cancer therapy strategies.
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