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Inhibition of the insulin receptor kinase phosphorylation by nitric oxide: functional and structural aspects

E Schmid1, A Hotz-Wagenblatt, W Dröge

  • 1Division of Immunochemistry, Deutsches Krebsforschungszentrum, Heidelberg, Germany.

Insights

Nitric oxide (NO) inhibits insulin receptor kinase (IRK) autophosphorylation, a key step in insulin signaling. This inhibition, potentially mediated by glutathione, impacts IRK structure and function.

Area of Science:

  • Biochemistry
  • Cellular signaling
  • Molecular biology

Background:

  • Nitric oxide (NO) is known to inhibit GLUT4 transporter expression in skeletal muscle.
  • Insulin signaling is crucial for glucose uptake and metabolism.
  • The insulin receptor kinase (IRK) is the initial component of the insulin signal transduction pathway.

Purpose of the Study:

  • To investigate the effect of nitric oxide (NO) on the insulin-induced autophosphorylation of the insulin receptor kinase (IRK).
  • To elucidate the mechanism by which NO inhibits IRK activity and its structural consequences.

Main Methods:

  • Utilized NO donors (DEA-NO, SNAP) to treat cultured skeletal muscle cells.
  • Assessed insulin-induced autophosphorylation of the IRK beta-chain.
  • Employed glutathione (GSH) depletion experiments.
  • Generated Cys --> Ala mutant IRK proteins for functional analysis.
  • Performed three-dimensional modeling of nitrosylated IRK beta-chain.

Main Results:

  • NO donors strongly inhibited insulin-induced IRK autophosphorylation.
  • Inhibition was partially reversed in GSH-depleted cells, suggesting S-nitroso-glutathione involvement.
  • All tested Cys --> Ala mutants remained sensitive to NO inhibition.
  • Structural modeling indicated nitrosylation at key cysteine residues alters IRK domain conformation, hindering catalytic activity.

Conclusions:

  • Nitric oxide (NO) directly inhibits insulin receptor kinase (IRK) autophosphorylation.
  • Glutathione (GSH) may act as an intermediate NO donor in this process.
  • Multiple cysteine residues in the IRK protein contribute to its redox sensitivity and regulation by NO.
  • NO-induced structural changes in IRK impede its kinase activity, impacting insulin signaling.

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