Opioid desensitization: interactions with G-protein-coupled receptors in the locus coeruleus

C D Fiorillo1, J T Williams

  • 1Vollum Institute, Oregon Health Sciences University, Portland 97201, USA.

Insights

Opioid receptor desensitization in rat locus coeruleus (LC) neurons is specific, with homologous desensitization observed for mu-opioid agonists. Acute desensitization shares characteristics with chronic morphine tolerance.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Cellular Biology

Background:

  • Alpha 2 adrenoceptors, mu-opioid receptors, and somatostatin receptors activate a common potassium conductance in rat locus coeruleus (LC) neurons.
  • Chronic morphine treatment leads to a loss of mu-opioid receptor sensitivity, but not alpha 2 adrenoceptor sensitivity.

Purpose of the Study:

  • To investigate acute desensitization of inhibitory G-protein-coupled receptors in rat LC neurons.
  • To compare acute desensitization with chronic morphine tolerance.

Main Methods:

  • Intracellular recording in brain slices of rat LC.
  • Application of supramaximal concentrations of Met5-enkephalin (opioid agonist) and UK 14304 (alpha 2-adrenoceptor agonist).
  • Assessment of homologous and heterologous desensitization and receptor recovery.

Main Results:

  • Met5-enkephalin induced profound homologous desensitization with minimal heterologous desensitization to UK 14304 or somatostatin.
  • UK 14304 caused minimal desensitization.
  • Muscarinic agonists enhanced opioid desensitization but did not affect alpha 2-adrenoceptor desensitization.

Conclusions:

  • Acute desensitization of mu-opioid receptors is largely homologous.
  • Interactions between inhibitory G-protein-coupled receptors are limited, but excitatory receptor activation influences inhibitory responses.
  • Acute desensitization mechanisms resemble those underlying chronic morphine tolerance.

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