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Regulation of insulin receptor kinase by multisite phosphorylation
Abstract:
The regulation of the insulin receptor kinase by phosphorylation and dephosphorylation has been examined. Under in vitro conditions, the tyrosine kinase activity of the insulin receptor toward histone is markedly activated when the receptor either undergoes autophosphorylation or is phosphorylated by a purified preparation of src tyrosine kinase on tyrosine residues of its beta subunit. The elevated kinase activity of the phosphorylated insulin receptor is readily reversed when the receptor is dephosphorylated with alkaline phosphatase. Analysis of tryptic digests of phosphorylated insulin receptor using reverse-phase high pressure liquid chromatography suggests that phosphorylation of a specific tyrosine site on the receptor beta subunit may be involved in the mechanism of the receptor kinase activation. Further studies indicate that tyrosine phosphorylation-mediated increase in insulin receptor activity also occurs in intact cells. Thus, when the histone kinase activities of insulin receptor from control and insulin-treated H-35 hepatoma cells are assayed in vitro following the purification of the receptors under conditions which preserve the phosphorylation state of the receptors, the insulin receptors extracted from insulin-treated cells exhibit histone kinase activities 100% higher than those from control cells. The elevated receptor kinase activity from insulin-treated cells appears to result from the increase in phosphotyrosine content of the receptor. Taken together, these results indicate that tyrosine phosphorylation of the insulin receptor beta subunit exerts a major stimulatory effect on the kinase activity of the receptor. Insulin receptor partially purified by specific immunoprecipitation from detergent extracts of control and isoproterenol-treated cells have similar basal but diminished insulin-stimulated beta subunit autophosphorylation activities when incubated with [gamma-32 P]ATP. Similarly, the ability of insulin to stimulate the receptor beta subunit phosphorylation in intact isoproterenol-treated adipocytes is greatly attenuated, whereas, the basal phosphorylation of the insulin receptor is slightly increased by the beta-catecholamine. These data indicate that in rat adipocytes, a cyclic AMP-mediated mechanism, possibly through serine and threonine phosphorylation of the receptor or its regulatory components, may uncouple the receptor tyrosine kinase activity from activation by insulin. Treatment of 32P-labeled H-35 hepatoma cells with phorbol myristate acetate (PMA) results in a marked increase in serine phosphorylation of the insulin receptor beta subunit.(ABSTRACT TRUNCATED AT 400 WORDS)
Insights
Tyrosine phosphorylation activates insulin receptor kinase activity, while dephosphorylation reverses it. This phosphorylation mechanism is crucial for insulin receptor function in both cell-free systems and intact cells.
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Endocrinology
Background:
- The insulin receptor kinase activity is tightly regulated by phosphorylation and dephosphorylation events.
- Understanding these regulatory mechanisms is key to comprehending insulin signaling pathways.
Purpose of the Study:
- To investigate the role of tyrosine phosphorylation in the regulation of insulin receptor kinase activity.
- To explore how different cellular conditions affect insulin receptor phosphorylation and activity.
Main Methods:
- In vitro kinase assays using histone as a substrate.
- Phosphorylation and dephosphorylation of the insulin receptor using purified enzymes and alkaline phosphatase.
- Analysis of tryptic digests by reverse-phase high-pressure liquid chromatography.
- In vivo studies using insulin-treated H-35 hepatoma cells and isoproterenol-treated adipocytes.
- Immunoprecipitation and assessment of receptor autophosphorylation.
Main Results:
- Tyrosine phosphorylation, either via autophosphorylation or src tyrosine kinase, markedly activates insulin receptor kinase activity.
- Dephosphorylation by alkaline phosphatase reverses this activation.
- Insulin treatment of H-35 hepatoma cells significantly increases insulin receptor kinase activity due to elevated phosphotyrosine levels.
- In rat adipocytes, isoproterenol treatment attenuates insulin-stimulated receptor phosphorylation, suggesting a cAMP-mediated uncoupling mechanism.
- Phorbol myristate acetate (PMA) treatment increases serine phosphorylation of the insulin receptor beta subunit.
Conclusions:
- Tyrosine phosphorylation of the insulin receptor beta subunit is a major stimulatory factor for its kinase activity.
- Cellular signaling pathways, including cAMP-mediated mechanisms, can modulate insulin receptor activity by altering its phosphorylation state.
- Serine and threonine phosphorylation may play a role in regulating insulin receptor function in response to specific stimuli.