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PMID: 15275778 Published · ppublish English Comparative Study Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Exaggerated nociceptive responses on morphine withdrawal: roles of protein kinase C epsilon and gamma.

Pain ·Vol. 110 ·No. 1-2 ·2004-07-00 ·Pages 281-9

Sweitzer SM, Wong SM, Tjolsen A, Allen CP, Mochly-Rosen D, Kendig JJ

Abstract

On withdrawal from opioids many patients experience a heightened sensitivity to stimuli and an exaggerated pain response. The phenomenon has been little studied in infants. We present evidence that in postnatal day 7 rats an exaggerated nociceptive ventral root response of spinal cords in vitro and withdrawal-associated thermal hyperalgesia in vivo are dependent on protein kinase C (PKC), and we document the roles of PKC and gamma isozymes. In vitro, the slow ventral root potential (sVRP) is a nociceptive-related response in spinal cord that is depressed by morphine and recovers to levels significantly above control on administration of naloxone. A broad-spectrum PKC antagonist, GF109213X, blocked withdrawal hyperresponsiveness of the sVRP whereas an antagonist specific to Ca(++)-dependent isozymes, Go69076, did not. Consistent with this finding, a specific peptide inhibitor of calcium-independent PKC, but not an inhibitor of calcium-dependent PKC gamma, blocked withdrawal hyperresponsiveness of the sVRP. Similarly, in vivo in 7-day-old rat pups, inhibition of PKC, but not PKC gamma, prevented thermal hyperalgesia precipitated by naloxone at 30 min post-morphine. In contrast, thermal hyperalgesia during spontaneous withdrawal was inhibited by both PKC and gamma inhibitors. The consistency between the in vivo and in vitro findings with respect to naloxone-precipitated withdrawal provides further evidence that the sVRP reflects nociceptive neurotransmission. In addition the difference between naloxone-precipitated and spontaneous withdrawal in vivo suggests that in postnatal day 7 rats, morphine exposure produces an early phase of primary afferent sensitization dependent upon PKC translocation, followed by a later phase involving spinal sensitization mediated by PKC gamma.

MeSH Terms
Analysis of Variance Animals Animals, Newborn Behavior, Animal Drug Interactions Enzyme Inhibitors/pharmacology Female Hyperalgesia/drug therapy,physiopathology In Vitro Techniques Indoles/pharmacology Male Maleimides/pharmacology Membrane Potentials/drug effects Morphine/pharmacology Naloxone/pharmacology Narcotic Antagonists/pharmacology Narcotics/pharmacology Neurons/drug effects,physiology Pain/etiology Peptides/pharmacology Protein Kinase C/physiology Protein Kinase C-epsilon Rats Rats, Sprague-Dawley Reaction Time/physiology Spinal Nerve Roots/cytology,drug effects,physiopathology Substance Withdrawal Syndrome/enzymology,physiopathology
Chemicals
Enzyme Inhibitors Indoles Maleimides Narcotic Antagonists Narcotics Peptides Naloxone Morphine Prkce protein, rat protein kinase C gamma Protein Kinase C Protein Kinase C-epsilon bisindolylmaleimide I
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Sweitzer Sarah M
Department of Anesthesia, Stanford University School of Medicine, Stanford, CA 94305, USA. [email protected]
Wong Shirley M E
Tjolsen Arne
Allen Caroline P
Mochly-Rosen Daria
Kendig Joan J
Article Info
Journal
Pain
Abbr.
Pain
ISSN
0304-3959
Published
2004-07-00
Pages
281-9
Language
English
Region
United States
NLM ID
7508686
Subset
IM
Grants
NIAAA NIH HHS · AA11417 · United States
NINDS NIH HHS · NS13108 · United States
NINDS NIH HHS · NS4472901 · United States
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