Differential Effects of Oxycodone, Hydrocodone, and Morphine on Activation Levels of Signaling Molecules

Michael A Emery1, M L Shawn Bates1, Paul J Wellman1

  • 1Department of Psychology, Behavioral and Cellular Neuroscience Program, and the Interdisciplinary Program in Neuroscience, Texas A&M Institute for Neuroscience (TAMIN), Texas A&M University, 4235 TAMU, College Station, TX, USA.

Abstract

Insights

Different opioids alter dopamine receptor signaling pathways, impacting addiction risk. Understanding these opioid and D2-like dopamine receptor interactions is crucial for safe pain management.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Molecular Biology

Background:

  • Opioids affect D2-like dopamine receptors (D2DRs), implicated in addiction and mental health disorders.
  • Previous findings indicate diverse opioid modulation of D2DR behavioral responses.

Purpose of the Study:

  • To investigate how various opioids influence striatal Akt and ERK1/2 activation.
  • To analyze D2DR signaling responses after opioid exposure.

Main Methods:

  • Mice received daily morphine, hydrocodone, or oxycodone for 6 days.
  • Following a 24-hour washout, mice were administered quinpirole (a D2/D3 agonist) or vehicle.
  • Dorsal striatum tissue was collected for Western blot analysis.

Main Results:

  • Morphine pretreatment reduced Akt activation post-quinpirole; hydrocodone and oxycodone reduced baseline Akt.
  • All opioids increased ERK2 activation with quinpirole, but only morphine showed significantly higher induction than controls.
  • Opioid pretreatment differentially affected baseline and agonist-induced signaling.

Conclusions:

  • Opioids differentially modulate signaling molecules, leading to varied D2DR agonist responses.
  • A complex opioid receptor-D2DR interplay exists, with varying risks to the dopamine reward system.
  • Consider these differential risks when prescribing opioids to balance efficacy and safety.

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