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Published on: July 7, 2014
Methylmercury-Mediated Oxidative Stress and Activation of the Cellular Protective System
Masatake Fujimura1, Fusako Usuki2
1Department of Basic Medical Sciences, National Institute for Minamata Disease, Kumamoto 867-0008, Japan.
Abstract:
Methylmercury (MeHg) is a well-known neurotoxicant that causes severe intoxication in humans. In Japan, it is referred to as Minamata disease, which involves two characteristic clinical forms: fetal type and adult type depending on the exposed age. In addition to MeHg burden level, individual susceptibility to MeHg plays a role in the manifestation of MeHg toxicity. Research progress has pointed out the importance of oxidative stress in the pathogenesis of MeHg toxicity. MeHg has a high affinity for selenohydryl groups, sulfhydryl groups, and selenides. It has been clarified that such affinity characteristics cause the impairment of antioxidant enzymes and proteins, resulting in the disruption of antioxidant systems. Furthermore, MeHg-induced intracellular selenium deficiency due to the greater affinity of MeHg for selenohydryl groups and selenides leads to failure in the recoding of a UGA codon for selenocysteine and results in the degradation of antioxidant selenoenzyme mRNA by nonsense-mediated mRNA decay. The defect of antioxidant selenoenzyme replenishment exacerbates MeHg-mediated oxidative stress. On the other hand, it has also been revealed that MeHg can directly activate the antioxidant Keap1/Nrf2 signaling pathway. This review summarizes the incidence of MeHg-mediated oxidative stress from the viewpoint of the individual intracellular redox system interactions and the MeHg-mediated aforementioned intracellular events. In addition, the mechanisms of cellular stress pathways and neuronal cell death triggered by MeHg-mediated oxidative stress and direct interactions of MeHg with reactive residues of proteins are mentioned.
Insights
Methylmercury (MeHg) causes neurotoxicity by disrupting antioxidant systems and leading to oxidative stress. Individual susceptibility influences MeHg toxicity, impacting cellular pathways and neuronal cell death.
Area of Science:
- Environmental toxicology
- Neuroscience
- Biochemistry
Background:
- Methylmercury (MeHg) is a potent neurotoxicant responsible for Minamata disease in humans.
- MeHg toxicity manifests in fetal and adult forms, influenced by exposure age and individual susceptibility.
- Oxidative stress is a key factor in the pathogenesis of MeHg toxicity.
Purpose of the Study:
- To review the role of oxidative stress in MeHg toxicity.
- To explore MeHg's interactions with intracellular redox systems.
- To summarize MeHg's effects on cellular stress pathways and neuronal death.
Main Methods:
- Literature review focusing on MeHg's biochemical interactions.
- Analysis of MeHg's impact on antioxidant enzymes and selenium metabolism.
- Examination of MeHg's effects on the Keap1/Nrf2 signaling pathway.
Main Results:
- MeHg disrupts antioxidant systems by binding to selenohydryl and sulfhydryl groups, impairing antioxidant enzymes.
- MeHg induces intracellular selenium deficiency, hindering selenocysteine incorporation and degrading selenoenzyme mRNA.
- MeHg can directly activate the Keap1/Nrf2 antioxidant pathway, while also exacerbating oxidative stress.
Conclusions:
- MeHg toxicity is closely linked to the disruption of intracellular redox balance and antioxidant defenses.
- Understanding MeHg's interactions with cellular systems is crucial for elucidating its neurotoxic mechanisms.
- Further research into MeHg-induced oxidative stress and cellular responses is warranted.
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