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Research Articles, Cellular/Molecular

Opioid Withdrawal Abruptly Disrupts Amygdala Circuit Function by Reducing Peptide Actions

Gabrielle C. Gregoriou, Sahil D. Patel, Sebastian Pyne, Bryony L. Winters and Elena E. Bagley
Journal of Neuroscience 8 March 2023, 43 (10) 1668-1681; DOI: https://doi.org/10.1523/JNEUROSCI.1317-22.2022
Gabrielle C. Gregoriou
Sydney Pharmacy School, Faculty of Medicine and Health and Charles Perkins Centre, University of Sydney, Sydney, New South Wales, Australia, 2111
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Sahil D. Patel
Sydney Pharmacy School, Faculty of Medicine and Health and Charles Perkins Centre, University of Sydney, Sydney, New South Wales, Australia, 2111
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Sebastian Pyne
Sydney Pharmacy School, Faculty of Medicine and Health and Charles Perkins Centre, University of Sydney, Sydney, New South Wales, Australia, 2111
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Bryony L. Winters
Sydney Pharmacy School, Faculty of Medicine and Health and Charles Perkins Centre, University of Sydney, Sydney, New South Wales, Australia, 2111
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  • ORCID record for Bryony L. Winters
Elena E. Bagley
Sydney Pharmacy School, Faculty of Medicine and Health and Charles Perkins Centre, University of Sydney, Sydney, New South Wales, Australia, 2111
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Abstract

While the physical signs of opioid withdrawal are most readily observable, withdrawal insidiously drives relapse and contributes to compulsive drug use, by disrupting emotional learning circuits. How these circuits become disrupted during withdrawal is poorly understood. Because amygdala neurons mediate relapse, and are highly opioid sensitive, we hypothesized that opioid withdrawal would induce adaptations in these neurons, opening a window of disrupted emotional learning circuit function. Under normal physiological conditions, synaptic transmission between the basolateral amygdala (BLA) and the neighboring main island (Im) of GABAergic intercalated cells (ITCs) is strongly inhibited by endogenous opioids. Using patch-clamp electrophysiology in brain slices prepared from male rats, we reveal that opioid withdrawal abruptly reduces the ability of these peptides to inhibit neurotransmission, a direct consequence of a protein kinase A (PKA)-driven increase in the synaptic activity of peptidases. Reduced peptide control of neurotransmission in the amygdala shifts the excitatory/inhibitory balance of inputs onto accumbens-projecting amygdala cells involved in relapse. These findings provide novel insights into how peptidases control synaptic activity within the amygdala and presents restoration of endogenous peptide activity during withdrawal as a viable option to mitigate withdrawal-induced disruptions in emotional learning circuits and rescue the relapse behaviors exhibited during opioid withdrawal and beyond into abstinence.

SIGNIFICANCE STATEMENT We find that opioid withdrawal dials down inhibitory neuropeptide activity in the amygdala. This disrupts both GABAergic and glutamatergic transmission through amygdala circuits, including reward-related outputs to the nucleus accumbens. This likely disrupts peptide-dependent emotional learning processes in the amygdala during withdrawal and may direct behavior toward compulsive drug use.

  • addiction
  • amygdala
  • opioids
  • peptidase
  • withdrawal

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The Journal of Neuroscience: 43 (10)
Journal of Neuroscience
Vol. 43, Issue 10
8 Mar 2023
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Opioid Withdrawal Abruptly Disrupts Amygdala Circuit Function by Reducing Peptide Actions
Gabrielle C. Gregoriou, Sahil D. Patel, Sebastian Pyne, Bryony L. Winters, Elena E. Bagley
Journal of Neuroscience 8 March 2023, 43 (10) 1668-1681; DOI: 10.1523/JNEUROSCI.1317-22.2022

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Opioid Withdrawal Abruptly Disrupts Amygdala Circuit Function by Reducing Peptide Actions
Gabrielle C. Gregoriou, Sahil D. Patel, Sebastian Pyne, Bryony L. Winters, Elena E. Bagley
Journal of Neuroscience 8 March 2023, 43 (10) 1668-1681; DOI: 10.1523/JNEUROSCI.1317-22.2022
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Keywords

  • addiction
  • amygdala
  • opioids
  • peptidase
  • withdrawal

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