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.

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.

Related Concept Videos

Toxic Reactions: Overview01:26

Toxic Reactions: Overview

When toxic substances penetrate the human body, they disseminate to various tissues, undergoing metabolic changes. This process yields reactive metabolites that may covalently bind with specific target molecules, resulting in toxicity.
Toxicity falls into two primary categories: local and systemic.
Local toxicity appears at the exposure site, such as protein denaturation caused by caustic substances.
In contrast, systemic toxicity requires the toxic agent's absorption and distribution,...
1.6K
Electron Transport Chain: Complex I and II01:46

Electron Transport Chain: Complex I and II

The mitochondrial electron transport chain (ETC) is the main energy generation system in the eukaryotic cells. However, mitochondria also produce cytotoxic reactive oxygen species (ROS) due to the large electron flow during oxidative phosphorylation. While Complex I is one of the primary sources of superoxide radicals, ROS production by Complex II is uncommon and may only be observed in cancer cells with mutated complexes.
ROS generation is regulated and maintained at moderate levels necessary...
17.5K
Radical Autoxidation01:20

Radical Autoxidation

The oxidation of an organic compound in the presence of air or oxygen is called autoxidation. For example, cumene reacts with oxygen to form hydroperoxide. Autoxidation involves initiation, propagation, and termination steps. Many organic compounds are susceptible to autoxidation—especially ethers in the presence of oxygen, which form hydroperoxides. Even though this reaction is slow, old ether bottles contain small amounts of peroxide, which leads to laboratory explosions during ether...
2.8K
Peroxisomes01:24

Peroxisomes

Peroxisomes are specialized organelles present in fungi, plant, and animal cells. It can vary in number, size, morphology, and activity depending on the type of tissue and the nutritional state of the cell. For example, cells with active lipid metabolism, such as adipocytes, neurons, and hepatocytes, have more peroxisomes than other cells in the body. Besides their primary role in breaking down complex organic molecules, peroxisomes can also synthesize specific macromolecules and participate in...
18.9K
Phase II Reactions: Methylation Reactions01:17

Phase II Reactions: Methylation Reactions

Methylation is a phase II biotransformation process involving the attachment of a methyl group to a substrate. Enzymes known as methyltransferases orchestrate this reaction.
The mechanism of methylation unfolds in two stages. The first stage sees a methyltransferase enzyme facilitating the transfer of a methyl group from S-adenosylmethionine (SAM) to the substrate, forming S-adenosylhomocysteine (SAH). The second stage involves further metabolism of SAH into homocysteine, which can be recycled...
551
Oxygen Requirements and Growth Patterns01:29

Oxygen Requirements and Growth Patterns

Microorganisms exhibit diverse oxygen requirements and growth patterns driven by their metabolic strategies and environmental adaptations. Oxygen, while essential for many organisms, can also be toxic under certain conditions, shaping how microorganisms grow and survive.Oxygen Requirements of MicroorganismsMicroorganisms are classified based on their ability to use or tolerate oxygen:● Obligate aerobes like Mycobacterium tuberculosis need oxygen for energy production, as it serves as the...
976