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Research ArticleArticle

A Regional and Projection-Specific Role of RGSz1 in the Ventrolateral Periaqueductal Grey in the Modulation of Morphine Reward

Farhana Sakloth, Omar B. Sanchez-Reyes, Anne Ruiz, Andrew Nicolais, Randal A. Serafini, Kerri D. Pryce, Feodora Bertherat, Angélica Torres-Berrío, Ivone Gomes, Lakshmi A. Devi, Daniel Wacker and Venetia Zachariou
Molecular Pharmacology January 2023, 103 (1) 1-8; DOI: https://doi.org/10.1124/molpharm.122.000528
Farhana Sakloth
Nash Family Department of Neuroscience, Friedman Brain Institute (F.S., A.R., A.N., R.A.S., K.D.P., F.B., A.T.-B., L.A.D., D.W., V.Z.) and Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York (O.B.S.R., I.G., L.A.D., D.W., V.Z.)
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Omar B. Sanchez-Reyes
Nash Family Department of Neuroscience, Friedman Brain Institute (F.S., A.R., A.N., R.A.S., K.D.P., F.B., A.T.-B., L.A.D., D.W., V.Z.) and Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York (O.B.S.R., I.G., L.A.D., D.W., V.Z.)
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Anne Ruiz
Nash Family Department of Neuroscience, Friedman Brain Institute (F.S., A.R., A.N., R.A.S., K.D.P., F.B., A.T.-B., L.A.D., D.W., V.Z.) and Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York (O.B.S.R., I.G., L.A.D., D.W., V.Z.)
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Andrew Nicolais
Nash Family Department of Neuroscience, Friedman Brain Institute (F.S., A.R., A.N., R.A.S., K.D.P., F.B., A.T.-B., L.A.D., D.W., V.Z.) and Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York (O.B.S.R., I.G., L.A.D., D.W., V.Z.)
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Randal A. Serafini
Nash Family Department of Neuroscience, Friedman Brain Institute (F.S., A.R., A.N., R.A.S., K.D.P., F.B., A.T.-B., L.A.D., D.W., V.Z.) and Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York (O.B.S.R., I.G., L.A.D., D.W., V.Z.)
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Kerri D. Pryce
Nash Family Department of Neuroscience, Friedman Brain Institute (F.S., A.R., A.N., R.A.S., K.D.P., F.B., A.T.-B., L.A.D., D.W., V.Z.) and Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York (O.B.S.R., I.G., L.A.D., D.W., V.Z.)
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Feodora Bertherat
Nash Family Department of Neuroscience, Friedman Brain Institute (F.S., A.R., A.N., R.A.S., K.D.P., F.B., A.T.-B., L.A.D., D.W., V.Z.) and Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York (O.B.S.R., I.G., L.A.D., D.W., V.Z.)
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Angélica Torres-Berrío
Nash Family Department of Neuroscience, Friedman Brain Institute (F.S., A.R., A.N., R.A.S., K.D.P., F.B., A.T.-B., L.A.D., D.W., V.Z.) and Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York (O.B.S.R., I.G., L.A.D., D.W., V.Z.)
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Ivone Gomes
Nash Family Department of Neuroscience, Friedman Brain Institute (F.S., A.R., A.N., R.A.S., K.D.P., F.B., A.T.-B., L.A.D., D.W., V.Z.) and Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York (O.B.S.R., I.G., L.A.D., D.W., V.Z.)
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Lakshmi A. Devi
Nash Family Department of Neuroscience, Friedman Brain Institute (F.S., A.R., A.N., R.A.S., K.D.P., F.B., A.T.-B., L.A.D., D.W., V.Z.) and Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York (O.B.S.R., I.G., L.A.D., D.W., V.Z.)
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Daniel Wacker
Nash Family Department of Neuroscience, Friedman Brain Institute (F.S., A.R., A.N., R.A.S., K.D.P., F.B., A.T.-B., L.A.D., D.W., V.Z.) and Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York (O.B.S.R., I.G., L.A.D., D.W., V.Z.)
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Venetia Zachariou
Nash Family Department of Neuroscience, Friedman Brain Institute (F.S., A.R., A.N., R.A.S., K.D.P., F.B., A.T.-B., L.A.D., D.W., V.Z.) and Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York (O.B.S.R., I.G., L.A.D., D.W., V.Z.)
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Abstract

Opioid analgesics exert their therapeutic and adverse effects by activating μ opioid receptors (MOPR); however, functional responses to MOPR activation are modulated by distinct signal transduction complexes within the brain. The ventrolateral periaqueductal gray (vlPAG) plays a critical role in modulation of nociception and analgesia, but the exact intracellular pathways associated with opioid responses in this region are not fully understood. We previously showed that knockout of the signal transduction modulator Regulator of G protein Signaling z1 (RGSz1) enhanced analgesic responses to opioids, whereas it decreased the rewarding efficacy of morphine. Here, we applied viral mediated gene transfer methodology and delivered adeno-associated virus (AAV) expressing Cre recombinase to the vlPAG of RGSz1fl\fl mice to demonstrate that downregulation of RGSz1 in this region decreases sensitivity to morphine in the place preference paradigm, under pain-free as well as neuropathic pain states. We also used retrograde viral vectors along with flippase-dependent Cre vectors to conditionally downregulate RGSz1 in vlPAG projections to the ventral tegmental area (VTA) and show that downregulation of RGSz1 prevents the development of place conditioning to low morphine doses. Consistent with the role for RGSz1 as a negative modulator of MOPR activity, RGSz1KO enhances opioid-induced cAMP inhibition in periaqueductal gray (PAG) membranes. Furthermore, using a new generation of bioluminescence resonance energy transfer (BRET) sensors, we demonstrate that RGSz1 modulates Gαz but not other Gαi family subunits and selectively impedes MOPR-mediated Gαz signaling events invoked by morphine and other opioids. Our work highlights a regional and circuit-specific role of the G protein–signaling modulator RGSz1 in morphine reward, providing insights on midbrain intracellular pathways that control addiction-related behaviors.

SIGNIFICANCE STATEMENT This study used advanced genetic mouse models to highlight the role of the signal transduction modulator named RGSz1 in responses to clinically used opioid analgesics. We show that RGSz1 controls the rewarding efficacy of opioids by actions in ventrolateral periaqueductal gray projections to the ventral tegmental area, a key component of the midbrain dopamine pathway. These studies highlight novel mechanisms by which pain-modulating structures control the rewarding efficacy of opioids.

Footnotes

    • Received March 8, 2022.
    • Accepted October 11, 2022.
  • This study was supported by National Institutes of Health National Institute of Neurologic Disorders and Stroke [Grant R01-NS086444] and [Grant R01-NS111351] (to V.Z.) and [Grant R01-NS086444S1] (to R.A.S) and National Institute on Drug Abuse [Grant P01-DA047233] (to V.Z.) and [Grant R37-DA008863] (to L.A.D.). Additional support comes from National Institutes of Health National Institute of General Medical Sciences [Grant R35-GM133504] (to D.W.); a Sloan Research Fellowship in Neuroscience (to D.W.); an Edward Mallinckrodt, Jr. Foundation grant (to D.W.); and a McKnight Foundation Scholars Award (to D.W.).

  • The authors declare no conflicts of interest.

  • dx.doi.org/10.1124/molpharm.122.000528.

  • ↵1F.S. and O.B.S.R. contributed equally to this work.

  • Copyright © 2022 by The American Society for Pharmacology and Experimental Therapeutics
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Molecular Pharmacology: 103 (1)
Molecular Pharmacology
Vol. 103, Issue 1
1 Jan 2023
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Research ArticleArticle

RGSz1 in the Periaqueductal Gray Regulates Morphine Actions

Farhana Sakloth, Omar B. Sanchez-Reyes, Anne Ruiz, Andrew Nicolais, Randal A. Serafini, Kerri D. Pryce, Feodora Bertherat, Angélica Torres-Berrío, Ivone Gomes, Lakshmi A. Devi, Daniel Wacker and Venetia Zachariou
Molecular Pharmacology January 1, 2023, 103 (1) 1-8; DOI: https://doi.org/10.1124/molpharm.122.000528

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Research ArticleArticle

RGSz1 in the Periaqueductal Gray Regulates Morphine Actions

Farhana Sakloth, Omar B. Sanchez-Reyes, Anne Ruiz, Andrew Nicolais, Randal A. Serafini, Kerri D. Pryce, Feodora Bertherat, Angélica Torres-Berrío, Ivone Gomes, Lakshmi A. Devi, Daniel Wacker and Venetia Zachariou
Molecular Pharmacology January 1, 2023, 103 (1) 1-8; DOI: https://doi.org/10.1124/molpharm.122.000528
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