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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.
Abstract:
Previous studies on cultured skeletal muscle cells have indicated that the insulin-induced expression of GLUT4 transporter protein is inhibited by nitric oxide (NO). Therefore, we determined the effect of NO on the insulin-induced autophosphorylation of the insulin receptor kinase (IRK), i.e., the first step in the insulin-mediated signal transduction pathway. The experiments showed that the insulin-induced autophosphorylation of the insulin receptor beta-chain is strongly inhibited by the NO donors 1,1-diethyl-2-hydroxy-2-nitrosohydrazine (DEA-NO) or S-nitroso-N-acetylpenicillamine (SNAP). The inhibitory effect was ameliorated in cells depleted of glutathione (GSH), suggesting the possibility that S-nitroso-glutathione may operate as an intermediate NO donor. Complementary experiments with different Cys --> Ala mutant proteins showed, surprisingly, that all mutant proteins were inhibited by DEA-NO. Three-dimensional models of the nonphosphorylated IR beta-chain nitrosylated at the accessible cysteine residues 1056, 1138, 1234, or 1245 revealed that derivatization of any of these four cysteine residues leads essentially to the same structural changes of the IRK domain. These changes involve a movement of the amino-terminal lobe against the carboxy-terminal lobe in a direction opposite to the direction of the "lobe closure" that was previously proposed to facilitate the accessibility for ATP and the expression of catalytic activity. Our findings suggest that the occurrence of several functionally relevant cysteine residues in distinct regions of the IRK protein increases the probability of regulatory redox interactions and thus the redox sensitivity of the IRK.
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.