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Antagonism by haloperidol and its metabolites of mechanical hypersensitivity induced by intraplantar capsaicin in mice: role of sigma-1 receptors

RATIONALE: We evaluated the effects of haloperidol and its metabolites on capsaicin-induced mechanical hypersensitivity (allodynia) and on nociceptive pain induced by punctate mechanical stimuli in mice. RESULTS: Subcutaneous administration of haloperidol or its metabolites I or II (reduced haloperi...

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Autores principales: Entrena, José M., Cobos, Enrique J., Nieto, Francisco R., Cendán, Cruz M., Baeyens, José M., Del Pozo, Esperanza
Formato: Texto
Lenguaje:English
Publicado: Springer-Verlag 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2695546/
https://www.ncbi.nlm.nih.gov/pubmed/19326101
http://dx.doi.org/10.1007/s00213-009-1513-8
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author Entrena, José M.
Cobos, Enrique J.
Nieto, Francisco R.
Cendán, Cruz M.
Baeyens, José M.
Del Pozo, Esperanza
author_facet Entrena, José M.
Cobos, Enrique J.
Nieto, Francisco R.
Cendán, Cruz M.
Baeyens, José M.
Del Pozo, Esperanza
author_sort Entrena, José M.
collection PubMed
description RATIONALE: We evaluated the effects of haloperidol and its metabolites on capsaicin-induced mechanical hypersensitivity (allodynia) and on nociceptive pain induced by punctate mechanical stimuli in mice. RESULTS: Subcutaneous administration of haloperidol or its metabolites I or II (reduced haloperidol) dose-dependently reversed capsaicin-induced (1 μg, intraplantar) mechanical hypersensitivity of the hind paw (stimulated with a nonpainful, 0.5-g force, punctate stimulus). The order of potency of these drugs to induce antiallodynic effects was the order of their affinity for brain sigma-1 (σ(1)) receptor ([(3)H](+)-pentazocine-labeled). Antiallodynic activity of haloperidol and its metabolites was dose-dependently prevented by the selective σ(1) receptor agonist PRE-084, but not by naloxone. These results suggest the involvement of σ(1) receptors, but discard any role of the endogenous opioid system, on the antiallodynic effects. Dopamine receptor antagonism also appears unlikely to be involved in these effects, since the D(2)/D(3) receptor antagonist (−)-sulpiride, which had no affinity for σ(1) receptors, showed no antiallodynic effect. None of these drugs modified hind-paw withdrawal after a painful (4 g force) punctate mechanical stimulus in noncapsaicin-sensitized animals. As expected, the control drug gabapentin showed antiallodynic but not antinociceptive activity, whereas clonidine exhibited both activities and rofecoxib, used as negative control, showed neither. CONCLUSION: These results show that haloperidol and its metabolites I and II produce antiallodynic but not antinociceptive effects against punctate mechanical stimuli and suggest that their antiallodynic effect may be due to blockade of σ(1) receptors but not to dopamine receptor antagonism.
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spelling pubmed-26955462009-06-16 Antagonism by haloperidol and its metabolites of mechanical hypersensitivity induced by intraplantar capsaicin in mice: role of sigma-1 receptors Entrena, José M. Cobos, Enrique J. Nieto, Francisco R. Cendán, Cruz M. Baeyens, José M. Del Pozo, Esperanza Psychopharmacology (Berl) Original Investigation RATIONALE: We evaluated the effects of haloperidol and its metabolites on capsaicin-induced mechanical hypersensitivity (allodynia) and on nociceptive pain induced by punctate mechanical stimuli in mice. RESULTS: Subcutaneous administration of haloperidol or its metabolites I or II (reduced haloperidol) dose-dependently reversed capsaicin-induced (1 μg, intraplantar) mechanical hypersensitivity of the hind paw (stimulated with a nonpainful, 0.5-g force, punctate stimulus). The order of potency of these drugs to induce antiallodynic effects was the order of their affinity for brain sigma-1 (σ(1)) receptor ([(3)H](+)-pentazocine-labeled). Antiallodynic activity of haloperidol and its metabolites was dose-dependently prevented by the selective σ(1) receptor agonist PRE-084, but not by naloxone. These results suggest the involvement of σ(1) receptors, but discard any role of the endogenous opioid system, on the antiallodynic effects. Dopamine receptor antagonism also appears unlikely to be involved in these effects, since the D(2)/D(3) receptor antagonist (−)-sulpiride, which had no affinity for σ(1) receptors, showed no antiallodynic effect. None of these drugs modified hind-paw withdrawal after a painful (4 g force) punctate mechanical stimulus in noncapsaicin-sensitized animals. As expected, the control drug gabapentin showed antiallodynic but not antinociceptive activity, whereas clonidine exhibited both activities and rofecoxib, used as negative control, showed neither. CONCLUSION: These results show that haloperidol and its metabolites I and II produce antiallodynic but not antinociceptive effects against punctate mechanical stimuli and suggest that their antiallodynic effect may be due to blockade of σ(1) receptors but not to dopamine receptor antagonism. Springer-Verlag 2009-03-27 2009-07 /pmc/articles/PMC2695546/ /pubmed/19326101 http://dx.doi.org/10.1007/s00213-009-1513-8 Text en © The Author(s) 2009
spellingShingle Original Investigation
Entrena, José M.
Cobos, Enrique J.
Nieto, Francisco R.
Cendán, Cruz M.
Baeyens, José M.
Del Pozo, Esperanza
Antagonism by haloperidol and its metabolites of mechanical hypersensitivity induced by intraplantar capsaicin in mice: role of sigma-1 receptors
title Antagonism by haloperidol and its metabolites of mechanical hypersensitivity induced by intraplantar capsaicin in mice: role of sigma-1 receptors
title_full Antagonism by haloperidol and its metabolites of mechanical hypersensitivity induced by intraplantar capsaicin in mice: role of sigma-1 receptors
title_fullStr Antagonism by haloperidol and its metabolites of mechanical hypersensitivity induced by intraplantar capsaicin in mice: role of sigma-1 receptors
title_full_unstemmed Antagonism by haloperidol and its metabolites of mechanical hypersensitivity induced by intraplantar capsaicin in mice: role of sigma-1 receptors
title_short Antagonism by haloperidol and its metabolites of mechanical hypersensitivity induced by intraplantar capsaicin in mice: role of sigma-1 receptors
title_sort antagonism by haloperidol and its metabolites of mechanical hypersensitivity induced by intraplantar capsaicin in mice: role of sigma-1 receptors
topic Original Investigation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2695546/
https://www.ncbi.nlm.nih.gov/pubmed/19326101
http://dx.doi.org/10.1007/s00213-009-1513-8
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