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Metal Complexes or Chelators with ROS Regulation Capacity: Promising Candidates for Cancer Treatment
Xiang Li1, Yuhui Wang2, Man Li2
1College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, China.
Abstract:
Reactive oxygen species (ROS) are rapidly eliminated and reproduced in organisms, and they always play important roles in various biological functions and abnormal pathological processes. Evaluated ROS have frequently been observed in various cancers to activate multiple pro-tumorigenic signaling pathways and induce the survival and proliferation of cancer cells. Hydrogen peroxide (H2O2) and superoxide anion (O2•-) are the most important redox signaling agents in cancer cells, the homeostasis of which is maintained by dozens of growth factors, cytokines, and antioxidant enzymes. Therefore, antioxidant enzymes tend to have higher activity levels to maintain the homeostasis of ROS in cancer cells. Effective intervention in the ROS homeostasis of cancer cells by chelating agents or metal complexes has already developed into an important anti-cancer strategy. We can inhibit the activity of antioxidant enzymes using chelators or metal complexes; on the other hand, we can also use metal complexes to directly regulate the level of ROS in cancer cells via mitochondria. In this review, metal complexes or chelators with ROS regulation capacity and with anti-cancer applications are collectively and comprehensively analyzed, which is beneficial for the development of the next generation of inorganic anti-cancer drugs based on ROS regulation. We expect that this review will provide a new perspective to develop novel inorganic reagents for killing cancer cells and, further, as candidates or clinical drugs.
Insights
Reactive oxygen species (ROS) play key roles in cancer. This review analyzes metal complexes and chelators that regulate ROS, offering a new strategy for developing inorganic anti-cancer drugs.
Area of Science:
- Inorganic Chemistry
- Cancer Biology
- Pharmacology
Background:
- Reactive oxygen species (ROS) are crucial in biological functions and disease, particularly cancer.
- Elevated ROS levels in cancer activate pro-tumorigenic pathways, promoting cancer cell survival and proliferation.
- Hydrogen peroxide (H2O2) and superoxide anion (O2•−) are key redox signaling molecules in cancer cells.
Purpose of the Study:
- To comprehensively analyze metal complexes and chelators with ROS regulation capacity for anti-cancer applications.
- To provide insights for developing next-generation inorganic anti-cancer drugs based on ROS modulation.
- To offer a new perspective for novel inorganic reagents targeting cancer cell death.
Main Methods:
- Review of existing literature on metal complexes and chelators targeting ROS in cancer.
- Analysis of mechanisms for inhibiting antioxidant enzymes and directly regulating mitochondrial ROS.
- Evaluation of anti-cancer applications of ROS-regulating agents.
Main Results:
- Metal complexes and chelators can effectively intervene in cancer cell ROS homeostasis.
- Inhibition of antioxidant enzymes and direct mitochondrial ROS regulation are viable anti-cancer strategies.
- ROS-regulating agents show promise as anti-cancer therapeutics.
Conclusions:
- Metal complexes and chelators offer a promising avenue for inorganic anti-cancer drug development.
- Targeting ROS homeostasis presents a novel strategy for cancer treatment.
- Further research into these agents could lead to new clinical drugs.
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