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Published on: May 28, 2014
Arsenic-based antineoplastic drugs and their mechanisms of action
1School of Medical Sciences, Griffith University, Parklands Drive, Southport, Queensland 4215, Australia.
Abstract:
Arsenic-based compounds have become accepted agents for cancer therapy providing high rates of remission of some cancers such as acute promyelocytic leukemia (APL). The mechanisms by which arsenic-containing compounds kill cells and reasons for selective killing of only certain types of cancer cells such as APLs have recently been delineated. This knowledge was gained in parallel with increasing understanding and awareness of the importance of intracellular redox systems and regulation of the production of reactive oxygen species (ROS) by controlling mitochondrial function. Many of the targets for the arsenic-containing compounds are mitochondrial proteins involved in regulating the production of ROS. Inhibition of these proteins by disulfide linkage of vicinal thiol groups often leads to increased production of ROS and induction of apoptotic signalling pathways. Sensitivity or resistance to the actions of arsenic-containing compounds on cancer cells and normal cells depends on the levels of transport systems for their uptake or efflux from the cells as well as their redox defence mechanisms. The exact mechanisms of arsenic toxicity as well as its anticancer properties are likely to be related and these aspects of arsenic metabolism are covered in this review. Greater understanding of the mechanisms of action of arsenic will help determine the risks of human exposure to this chemical. Novel organic arsenic-containing compounds and the lessons learned from studying their selective sensitivity in targeting dividing endothelial cells to inhibit angiogenesis raise the future possibility for designing better targeted antineoplastic arsenic-containing compounds with less toxicity to normal cells.
Insights
Arsenic compounds show promise in cancer therapy by targeting mitochondrial proteins, leading to cancer cell death. Understanding arsenic
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Arsenic-based compounds are effective cancer therapeutics, particularly for acute promyelocytic leukemia (APL).
- Their efficacy is linked to intracellular redox systems and mitochondrial regulation of reactive oxygen species (ROS).
Purpose of the Study:
- To delineate the mechanisms of arsenic-containing compounds in cancer cell killing.
- To understand the selective toxicity of arsenic against certain cancer cells like APL.
- To explore the role of intracellular redox and mitochondrial function in arsenic's action.
Main Methods:
- Review of literature on arsenic metabolism, redox systems, and mitochondrial function.
- Analysis of molecular targets of arsenic, including mitochondrial proteins.
- Investigation of cellular uptake, efflux, and defense mechanisms against arsenic.
Main Results:
- Arsenic compounds target mitochondrial proteins, inhibiting ROS production regulation.
- Disulfide linkage of vicinal thiol groups leads to increased ROS and apoptosis.
- Cellular sensitivity to arsenic depends on transport systems and redox defense mechanisms.
Conclusions:
- Arsenic's anticancer properties and toxicity are interconnected and related to its metabolism.
- Understanding arsenic's mechanism of action is crucial for assessing human exposure risks.
- Future development of targeted antineoplastic arsenic compounds with reduced toxicity is possible.
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