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.

Glia
|June 16, 2017
PubMed

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.

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