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Glutathione and glutathione-dependent enzymes represent a co-ordinately regulated defence against oxidative stress
1Biomedical Research Centre, Ninewells Hospital and Medical School, University of Dundee, Scotland, UK.
Abstract:
Increases in the intracellular levels of reactive oxygen species (ROS), frequently referred to as oxidative stress, represents a potentially toxic insult which if not counteracted will lead to membrane dysfunction, DNA damage and inactivation of proteins. Chronic oxidative stress has numerous pathological consequences including cancer, arthritis and neurodegenerative disease. Glutathione-associated metabolism is a major mechanism for cellular protection against agents which generate oxidative stress. It is becoming increasingly apparent that the glutathione tripeptide is central to a complex multifaceted detoxification system, where there is substantial inter-dependence between separate component members. Glutathione participates in detoxification at several different levels, and may scavenge free radicals, reduce peroxides or be conjugated with electrophilic compounds. Thus, glutathione provides the cell with multiple defences not only against ROS but also against their toxic products. This article discusses how glutathione biosynthesis, glutathione peroxidases, glutathione S-transferases and glutathione S-conjugate efflux pumps function in an integrated fashion to allow cellular adaption to oxidative stress. Co-ordination of this response is achieved, at least in part, through the antioxidant responsive element (ARE) which is found in the promoters of many of the genes that are inducible by oxidative and chemical stress. Transcriptional activation through this enhancer appears to be mediated by basic leucine zipper transcription factors such as Nrf and small Maf proteins. The nature of the intracellular sensor(s) for ROS and thiol-active chemicals which induce genes through the ARE is described. Gene activation through the ARE appears to account for the enhanced antioxidant and detoxification capacity of normal cells effected by many cancer chemopreventive agents. In certain instances it may also account for acquired resistance of tumours to cancer chemotherapeutic drugs. It is therefore clear that determining the mechanisms involved in regulation of ARE-driven gene expression has enormous medical implications.
Insights
Cellular defense against oxidative stress relies on integrated glutathione metabolism. This system, regulated by the antioxidant responsive element (ARE), enhances protection against toxins and influences cancer treatment outcomes.
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Biology
Background:
- Oxidative stress from reactive oxygen species (ROS) causes cellular damage, contributing to diseases like cancer and neurodegeneration.
- Glutathione metabolism is a key cellular defense mechanism against oxidative stress and toxic compounds.
- This system involves multiple interdependent components crucial for cellular protection.
Purpose of the Study:
- To discuss the integrated function of glutathione biosynthesis, peroxidases, S-transferases, and efflux pumps in adapting cells to oxidative stress.
- To explain the role of the antioxidant responsive element (ARE) in coordinating cellular responses to oxidative and chemical stress.
- To describe the sensors for ROS and thiol-active chemicals that activate ARE-driven gene expression.
Main Methods:
- Review of literature on glutathione metabolism and cellular defense mechanisms.
- Analysis of the role of the antioxidant responsive element (ARE) in gene regulation.
- Discussion of transcription factors (Nrf, small Maf) involved in ARE activation.
Main Results:
- Glutathione participates in detoxification by scavenging free radicals, reducing peroxides, and conjugating electrophiles.
- Integrated function of glutathione pathways allows cellular adaptation to oxidative stress.
- ARE-driven gene expression enhances antioxidant and detoxification capacity, influenced by cancer chemopreventive agents.
Conclusions:
- The coordinated action of glutathione metabolism and ARE-regulated genes provides robust cellular defense.
- Understanding ARE-driven gene expression mechanisms has significant implications for cancer prevention and therapy.
- This integrated system may contribute to acquired resistance in tumors treated with chemotherapeutic drugs.