Related Experiment Video
Updated: Feb 28, 2026

Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Iron-sulfur glutaredoxin 2 protects oligodendrocytes against damage induced by nitric oxide release from activated
Klaudia Lepka1, Katrin Volbracht1, Eckhard Bill2
1Department of Neurology, Medical Faculty, Heinrich-Heine Universität, Düsseldorf, 40225, Germany.
Abstract:
Demyelinated brain lesions, a hallmark of autoimmune neuroinflammatory diseases like multiple sclerosis, result from oligodendroglial cell damage. Activated microglia are considered a major source of nitric oxide and subsequent peroxynitrite-mediated damage of myelin. Here, we provide biochemical and biophysical evidence that the oxidoreductase glutaredoxin 2 inhibits peroxynitrite formation by transforming nitric oxide into dinitrosyl-diglutathionyl-iron-complexes. Glutaredoxin 2 levels influence both survival rates of primary oligodendrocyte progenitor cells and preservation of myelin structure in cerebellar organotypic slice cultures challenged with activated microglia or nitric oxide donors. Of note, glutaredoxin 2-mediated protection is not linked to its enzymatic activity as oxidoreductase, but to the disassembly of its uniquely coordinated iron-sulfur cluster using glutathione as non-protein ligand. The protective effect of glutaredoxin 2 is connected to decreased protein carbonylation and nitration. In line, brain lesions of mice suffering from experimental autoimmune encephalomyelitis, an animal model of multiple sclerosis, show decreased glutaredoxin 2 expression and increased nitrotyrosine formation indicating that this type of protection is missing in the inflamed central nervous system. Our findings link inorganic biochemistry to neuroinflammation and identify glutaredoxin 2 as a protective factor against neuroinflammation-mediated myelin damage. Thus, improved availability of glutathione-coordinated iron-sulfur clusters emerges as a potential therapeutic approach in inflammatory demyelination.
Insights
Glutaredoxin 2 protects against myelin damage in neuroinflammation by inhibiting peroxynitrite formation. This protein, crucial for oligodendrocyte survival, shows reduced expression in multiple sclerosis models, suggesting a therapeutic target.
Area of Science:
- Neuroscience
- Biochemistry
- Immunology
Background:
- Demyelinated brain lesions, characteristic of multiple sclerosis, stem from damage to oligodendroglial cells.
- Activated microglia release nitric oxide, leading to peroxynitrite formation and myelin damage.
Purpose of the Study:
- To investigate the role of glutaredoxin 2 in protecting against peroxynitrite-mediated myelin damage.
- To explore the mechanism by which glutaredoxin 2 exerts its protective effects.
Main Methods:
- Biochemical and biophysical analyses of glutaredoxin 2 function.
- Assessment of oligodendrocyte progenitor cell survival and myelin structure in organotypic slice cultures.
- Analysis of glutaredoxin 2 expression and nitrotyrosine formation in experimental autoimmune encephalomyelitis mouse models.
Main Results:
- Glutaredoxin 2 inhibits peroxynitrite formation by converting nitric oxide into dinitrosyl-diglutathionyl-iron-complexes.
- Glutaredoxin 2 enhances oligodendrocyte progenitor cell survival and preserves myelin structure.
- Protection is mediated by the disassembly of glutaredoxin 2's iron-sulfur cluster using glutathione, not its oxidoreductase activity.
- Reduced glutaredoxin 2 expression and increased nitrotyrosine were observed in experimental autoimmune encephalomyelitis lesions.
Conclusions:
- Glutaredoxin 2 acts as a protective factor against neuroinflammation-induced myelin damage.
- Its protective mechanism involves iron-sulfur cluster disassembly and is independent of its enzymatic activity.
- Targeting glutathione-coordinated iron-sulfur clusters may offer a therapeutic strategy for inflammatory demyelination.
More Related Videos
Related Concept Videos
Sulfur Assimilation
Protein Modifications in the RER
Broadly, these modifications can be categorized into four main categories — glycosylation, formation of disulfide bonds, assembly of protein subunits, and specific proteolytic cleavages like removal of signal...
Glial Cells
Nervous Tissue: Glial Cells
The CNS glial cell includes the astrocytes, the oligodendrocytes, the microglia, and the ependymal cells.
Astrocytes are star-shaped glial...

