Literature DB >> 34135098

Mice Expressing Regulators of G protein Signaling-insensitive Gαo Define Roles of μ Opioid Receptor Gαo and Gαi Subunit Coupling in Inhibition of Presynaptic GABA Release.

Courtney A Bouchet1, Kylie B McPherson1, Ming-Hua Li1, John R Traynor1, Susan L Ingram2.   

Abstract

Regulators of G protein signaling (RGS) proteins modulate signaling by G protein-coupled receptors. Using a knock-in transgenic mouse model with a mutation in Gαo that does not bind RGS proteins (RGS-insensitive), we determined the effect of RGS proteins on presynaptic μ opioid receptor (MOR)-mediated inhibition of GABA release in the ventrolateral periaqueductal gray (vlPAG). The MOR agonists [d-Ala2, N-MePhe4, Gly-ol]-enkephalin (DAMGO) and met-enkephalin (ME) inhibited evoked inhibitory postsynaptic currents (eIPSCs) in the RGS-insensitive mice compared with wild-type (WT) littermates, respectively. Fentanyl inhibited eIPSCs similarly in both WT and RGS-insensitive mice. There were no differences in opioid agonist inhibition of spontaneous GABA release between the genotypes. To further probe the mechanism underlying these differences between opioid inhibition of evoked and spontaneous GABA release, specific myristoylated Gα peptide inhibitors for Gαo1 and Gαi1-3 that block receptor-G protein interactions were used to test the preference of agonists for MOR-Gα complexes. The Gαo1 inhibitor reduced DAMGO inhibition of eIPSCs, but Gαi1-3 inhibitors had no effect. Both Gαo1 and Gαi1-3 inhibitors separately reduced fentanyl inhibition of eIPSCs but had no effects on ME inhibition. Gαi1-3 inhibitors blocked the inhibitory effects of ME and fentanyl on miniature postsynaptic current (mIPSC) frequency, but both Gαo1 and Gαi1-3 inhibitors were needed to block the effects of DAMGO. Finally, baclofen-mediated inhibition of GABA release is unaffected in the RGS-insensitive mice and in the presence of Gαo1 and Gαi1-3 inhibitor peptides, suggesting that GABAB receptor coupling to G proteins in vlPAG presynaptic terminals is different than MOR coupling. SIGNIFICANCE STATEMENT: Presynaptic μ opioid receptors (MORs) in the ventrolateral periaqueductal gray are critical for opioid analgesia and are negatively regulated by RGS proteins. These data in RGS-insensitive mice provide evidence that MOR agonists differ in preference for Gαo versus Gαi and regulation by RGS proteins in presynaptic terminals, providing a mechanism for functional selectivity between agonists. The results further define important differences in MOR and GABAB receptor coupling to G proteins that could be exploited for new pain therapies.
Copyright © 2021 by The American Society for Pharmacology and Experimental Therapeutics.

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Year:  2021        PMID: 34135098      PMCID: PMC8626785          DOI: 10.1124/molpharm.121.000249

Source DB:  PubMed          Journal:  Mol Pharmacol        ISSN: 0026-895X            Impact factor:   4.054


  54 in total

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Authors:  Kylie B McPherson; Emily R Leff; Ming-Hua Li; Claire Meurice; Sherrica Tai; John R Traynor; Susan L Ingram
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Authors:  Ikuo Masuho; Santhanam Balaji; Brian S Muntean; Nickolas K Skamangas; Sreenivas Chavali; John J G Tesmer; M Madan Babu; Kirill A Martemyanov
Journal:  Cell       Date:  2020-10-01       Impact factor: 41.582

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  2 in total

1.  Age-Induced Changes in μ-Opioid Receptor Signaling in the Midbrain Periaqueductal Gray of Male and Female Rats.

Authors:  Evan F Fullerton; Mary C Karom; John M Streicher; Larry J Young; Anne Z Murphy
Journal:  J Neurosci       Date:  2022-07-05       Impact factor: 6.709

Review 2.  Cellular and circuit diversity determines the impact of endogenous opioids in the descending pain modulatory pathway.

Authors:  Kylie B McPherson; Susan L Ingram
Journal:  Front Syst Neurosci       Date:  2022-08-15
  2 in total

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