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Morphine induces desensitization of insulin receptor signaling
Yu Li1, Shoshana Eitan, Jiong Wu
1Cell Signaling Technology, Inc., Beverly, Massachusetts, USA.
Abstract:
Morphine analgesia is mediated principally by the micro -opioid receptor (MOR). Since morphine and other opiates have been shown to influence glucose homeostasis, we investigated the hypothesis of direct cross talk between the MOR and the insulin receptor (IR) signaling cascades. We show that prolonged morphine exposure of cell lines expressing endogenous or transfected MOR, IR, and the insulin substrate 1 (IRS-1) protein specifically desensitizes IR signaling to Akt and ERK cascades. Morphine caused serine phosphorylation of the IR and impaired the formation of the signaling complex among the IR, Shc, and Grb2. Morphine also resulted in IRS-1 phosphorylation at serine 612 and reduced tyrosine phosphorylation at the YMXM p85-binding motifs, weakening the association of the IRS-1/p85 phosphatidylinositol 3-kinase complex. However, the IRS-1/Grb2 complex was unaffected by chronic morphine treatment. These results suggest that morphine attenuates IR signaling to Akt by disrupting the IRS-1-p85 interaction but inhibits signaling to ERK by disruption of the complex among the IR, Shc, and Grb2. Finally, we show that systemic morphine induced IRS-1 phosphorylation at Ser612 in the hypothalamus and hippocampus of wild type, but not MOR knockout, mice. Our results demonstrate that opiates can inhibit insulin signaling through direct cross talk between the downstream signaling pathways of the MOR and the IR.
Insights
Morphine disrupts insulin receptor signaling by directly interacting with its pathways. This cross-talk affects glucose homeostasis, highlighting a novel mechanism of opiate action.
Area of Science:
- Biochemistry
- Neuropharmacology
- Cellular Signaling
Background:
- Morphine analgesia is primarily mediated by the micro-opioid receptor (MOR).
- Opiates are known to influence glucose homeostasis.
- Potential cross-talk between MOR and insulin receptor (IR) signaling pathways is unexplored.
Purpose of the Study:
- To investigate the hypothesis of direct cross-talk between MOR and IR signaling cascades.
- To elucidate the molecular mechanisms by which morphine affects insulin signaling.
Main Methods:
- Exposure of cell lines expressing MOR and IR to prolonged morphine.
- Analysis of IR signaling to Akt and ERK cascades.
- Assessment of protein phosphorylation (IR, IRS-1) and complex formation (IR, Shc, Grb2, IRS-1, p85 PI3K).
- In vivo studies in wild type and MOR knockout mice.
Main Results:
- Prolonged morphine exposure desensitizes IR signaling to Akt and ERK.
- Morphine induces serine phosphorylation of IR and impairs IR/Shc/Grb2 complex formation.
- Morphine causes IRS-1 phosphorylation at Ser612, weakening IRS-1/p85 PI3K association but not IRS-1/Grb2.
- Systemic morphine induces IRS-1 phosphorylation at Ser612 in mouse hypothalamus and hippocampus.
Conclusions:
- Morphine attenuates IR signaling to Akt by disrupting IRS-1/p85 interaction.
- Morphine inhibits IR signaling to ERK by disrupting IR/Shc/Grb2 complex formation.
- Opiates inhibit insulin signaling via direct cross-talk between MOR and IR downstream pathways.