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Role of protein kinase C and μ-opioid receptor (MOPr) desensitization in tolerance to morphine in rat locus coeruleus neurons

In morphine tolerance a key question that remains to be answered is whether μ-opioid receptor (MOPr) desensitization contributes to morphine tolerance, and if so by what cellular mechanisms. Here we demonstrate that MOPr desensitization can be observed in single rat brainstem locus coeruleus (LC) ne...

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Autores principales: Bailey, C P, Llorente, J, Gabra, B H, Smith, F L, Dewey, W L, Kelly, E, Henderson, G
Formato: Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2695152/
https://www.ncbi.nlm.nih.gov/pubmed/19200236
http://dx.doi.org/10.1111/j.1460-9568.2008.06573.x
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author Bailey, C P
Llorente, J
Gabra, B H
Smith, F L
Dewey, W L
Kelly, E
Henderson, G
author_facet Bailey, C P
Llorente, J
Gabra, B H
Smith, F L
Dewey, W L
Kelly, E
Henderson, G
author_sort Bailey, C P
collection PubMed
description In morphine tolerance a key question that remains to be answered is whether μ-opioid receptor (MOPr) desensitization contributes to morphine tolerance, and if so by what cellular mechanisms. Here we demonstrate that MOPr desensitization can be observed in single rat brainstem locus coeruleus (LC) neurons following either prolonged (> 4 h) exposure to morphine in vitro or following treatment of animals with morphine in vivo for 3 days. Analysis of receptor function by an operational model indicated that with either treatment morphine could induce a profound degree (70–80%) of loss of receptor function. Ongoing PKC activity in the MOPr-expressing neurons themselves, primarily by PKCα, was required to maintain morphine-induced MOPr desensitization, because exposure to PKC inhibitors for only the last 30–50 min of exposure to morphine reduced the MOPr desensitization that was induced both in vitro and in vivo. The presence of morphine was also required for maintenance of desensitization, as washout of morphine for > 2 h reversed MOPr desensitization. MOPr desensitization was homologous, as there was no change in α(2)-adrenoceptor or ORL1 receptor function. These results demonstrate that prolonged morphine treatment induces extensive homologous desensitization of MOPrs in mature neurons, that this desensitization has a significant PKC-dependent component and that this desensitization underlies the maintenance of morphine tolerance.
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spelling pubmed-26951522009-06-16 Role of protein kinase C and μ-opioid receptor (MOPr) desensitization in tolerance to morphine in rat locus coeruleus neurons Bailey, C P Llorente, J Gabra, B H Smith, F L Dewey, W L Kelly, E Henderson, G Eur J Neurosci Synaptic Mechanisms In morphine tolerance a key question that remains to be answered is whether μ-opioid receptor (MOPr) desensitization contributes to morphine tolerance, and if so by what cellular mechanisms. Here we demonstrate that MOPr desensitization can be observed in single rat brainstem locus coeruleus (LC) neurons following either prolonged (> 4 h) exposure to morphine in vitro or following treatment of animals with morphine in vivo for 3 days. Analysis of receptor function by an operational model indicated that with either treatment morphine could induce a profound degree (70–80%) of loss of receptor function. Ongoing PKC activity in the MOPr-expressing neurons themselves, primarily by PKCα, was required to maintain morphine-induced MOPr desensitization, because exposure to PKC inhibitors for only the last 30–50 min of exposure to morphine reduced the MOPr desensitization that was induced both in vitro and in vivo. The presence of morphine was also required for maintenance of desensitization, as washout of morphine for > 2 h reversed MOPr desensitization. MOPr desensitization was homologous, as there was no change in α(2)-adrenoceptor or ORL1 receptor function. These results demonstrate that prolonged morphine treatment induces extensive homologous desensitization of MOPrs in mature neurons, that this desensitization has a significant PKC-dependent component and that this desensitization underlies the maintenance of morphine tolerance. Blackwell Publishing Ltd 2009-01 /pmc/articles/PMC2695152/ /pubmed/19200236 http://dx.doi.org/10.1111/j.1460-9568.2008.06573.x Text en Journal compilation © 2009 Federation of European Neuroscience Societies and Blackwell Publishing Ltd
spellingShingle Synaptic Mechanisms
Bailey, C P
Llorente, J
Gabra, B H
Smith, F L
Dewey, W L
Kelly, E
Henderson, G
Role of protein kinase C and μ-opioid receptor (MOPr) desensitization in tolerance to morphine in rat locus coeruleus neurons
title Role of protein kinase C and μ-opioid receptor (MOPr) desensitization in tolerance to morphine in rat locus coeruleus neurons
title_full Role of protein kinase C and μ-opioid receptor (MOPr) desensitization in tolerance to morphine in rat locus coeruleus neurons
title_fullStr Role of protein kinase C and μ-opioid receptor (MOPr) desensitization in tolerance to morphine in rat locus coeruleus neurons
title_full_unstemmed Role of protein kinase C and μ-opioid receptor (MOPr) desensitization in tolerance to morphine in rat locus coeruleus neurons
title_short Role of protein kinase C and μ-opioid receptor (MOPr) desensitization in tolerance to morphine in rat locus coeruleus neurons
title_sort role of protein kinase c and μ-opioid receptor (mopr) desensitization in tolerance to morphine in rat locus coeruleus neurons
topic Synaptic Mechanisms
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2695152/
https://www.ncbi.nlm.nih.gov/pubmed/19200236
http://dx.doi.org/10.1111/j.1460-9568.2008.06573.x
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