Chronic opioid antagonist treatment selectively regulates trafficking and signaling proteins in mouse spinal cord

Chintan N Patel1, Vikram Rajashekara, Kaushal Patel

  • 1Department of Pharmaceutical Sciences, St. John's University, Queens, New York 11439, USA.

Insights

Opioid antagonist treatment increases mu-opioid receptor (muOR) density and analgesic potency by altering the expression of receptor trafficking proteins like GRK-2 and dynamin-2 (DYN-2). These changes may reduce constitutive receptor cycling.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Molecular Biology

Background:

  • Chronic opioid antagonist treatment leads to functional supersensitivity and mu-opioid receptor (muOR) upregulation.
  • G-protein receptor kinases (GRKs) and dynamin (DYN) are implicated in muOR regulation, but not signaling proteins like G(ialpha2).

Purpose of the Study:

  • To investigate the effects of opioid antagonist treatment on muOR density, agonist potency, and the expression of GRK-2, DYN-2, and G(ialpha2) in the mouse spinal cord.

Main Methods:

  • Mice received naltrexone (NTX) or placebo pellets for 8 days.
  • Assessed spinal DAMGO analgesia, muOR density via [(3)H] DAMGO binding, and protein/mRNA levels of GRK-2, DYN-2, and G(ialpha2) at 0 and 192 hours post-NTX removal.

Main Results:

  • NTX treatment acutely increased muOR density (+135%) and DAMGO analgesic potency (3.1-fold at 24h), with normalization by 192h.
  • NTX decreased GRK-2 and DYN-2 protein and mRNA levels at 0h.
  • At 192h, GRK-2 returned to control levels, while DYN-2 protein remained decreased despite normalized mRNA.

Conclusions:

  • Opioid antagonist-induced muOR upregulation involves changes in the expression of receptor trafficking proteins (GRK-2, DYN-2).
  • These molecular alterations may contribute to reduced constitutive receptor cycling and functional supersensitivity.

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