Copper in diseases and treatments, and copper‐based anticancer strategies
Медь при заболеваниях и в терапии, а также противоопухолевые стратегии на основе меди
2009-07-22
SCID: 54.1/52yv8ap8
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Menkes diseaseWilson diseasecopper chelation therapycopper homeostasiscopper-based anticancer strategies
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Abstract (AI)
Copper is found in all living organisms and is a crucial trace element in redox chemistry, growth and development. It is important for the function of several enzymes and proteins involved in energy metabolism, respiration, and DNA synthesis, notably cytochrome oxidase, superoxide dismutase, ascorbate oxidase, and tyrosinase. The major functions of copper-biological molecules involve oxidation-reduction reactions in which they react directly with molecular oxygen to produce free radicals. Therefore, copper requires tightly regulated homeostatic mechanisms to ensure adequate supplies without any toxic effects. Overload or deficiency of copper is associated, respectively, with Wilson disease (WD) and Menkes disease (MD), which are of genetic origin. Researches on Menkes and Wilson disorders have provided useful insights in the field of copper homeostasis and in particular into the understanding of intracellular trafficking and distribution of copper at molecular levels. Therapies based on metal supplementation with copper histidine or removal of copper excess by means of specific copper chelators are currently effective in treating MD and WD, respectively. Copper chelation therapy is now attracting much attention for the investigation and treatment of various neurodegenerative disorders such as Alzheimer, Parkinson and CreutzfeldtJakob. An excess of copper appears to be an essential co-factor for angiogenesis. Moreover, elevated levels of copper have been found in many types of human cancers, including prostate, breast, colon, lung, and brain. On these basis, the employment of copper chelators has been reported to be of therapeutic value in the treatment of several types of cancers as anti-angiogenic molecules. More recently, mixtures of copper chelators with copper salts have been found to act as efficient proteasome inhibitors and apoptosis inducers, specifically in cancer cells. Moreover, following the worldwide success of platinum(II) compounds in cancer chemotherapy, several families of individual copper complexes have been studied as potential antitumor agents. These investigations, revealing the occurrence of mechanisms of action quite different from platinum drugs, head toward the development of new anticancer metallodrugs with improved specificity and decreased toxic side effects.
Key Findings
1
Copper chelation is being investigated for neurodegenerative diseases, including Alzheimer’s, Parkinson’s, and Creutzfeldt–Jakob diseases.
2
Copper deficiency and overload cause genetically determined Menkes disease and Wilson disease, respectively, while studies of these disorders clarified intracellular copper trafficking and distribution.
3
Copper histidine supplementation effectively treats Menkes disease, whereas specific copper chelators remove excess copper in Wilson disease.
4
Copper is essential for redox chemistry, energy metabolism, respiration, DNA synthesis, growth, and development, but requires tightly regulated homeostasis because it can generate free radicals.
5
Elevated copper supports angiogenesis and occurs in multiple cancers; copper chelators may therefore provide anti-angiogenic therapy, while chelator–copper salt combinations can inhibit proteasomes and induce apoptosis selectively in cancer cells.
Research Object
Copper homeostasis and copper-related biological and pathological systems, including Menkes disease, Wilson disease, neurodegenerative disorders, and human cancers
Research Subject
The roles, dysregulation, therapeutic modulation, and anticancer effects of copper, copper chelators, and copper–chelator combinations
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2009-07-22
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