BOLD Imaging in Awake Wild-Type and Mu-Opioid Receptor Knock-Out Mice Reveals On-Target Activation Maps in Response

Kelsey Moore1, Dan Madularu2, Sade Iriah1

  • 1Department of Psychology, Center for Translational NeuroImaging, Northeastern University Boston, MA, USA.

Frontiers in Neuroscience
|November 19, 2016
PubMed

Insights

Oxycodone activates brain regions via the mu opioid receptor in wild-type mice, but this effect is largely absent in knock-out mice. Some off-target effects were also observed, indicating complex drug-induced brain activity patterns.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Medical Imaging

Background:

  • Opioid analgesics like oxycodone are widely used but their precise brain activity patterns are not fully understood.
  • Understanding the mechanisms of action, including receptor specificity, is crucial for developing safer and more effective pain management strategies.

Purpose of the Study:

  • To investigate the brain activity patterns induced by oxycodone in awake mice using Blood Oxygen Level Dependent (BOLD) imaging.
  • To differentiate between mu (μ) opioid receptor-dependent (on-target) and independent (off-target) effects of oxycodone on brain activation.

Main Methods:

  • Utilized awake BOLD imaging in wild-type and mu opioid receptor knock-out (MuKO) mice following oxycodone administration.
  • Employed a segmented, annotated MRI mouse atlas and computational analysis to map BOLD activity across 122 brain regions.
  • Analyzed both positive and negative BOLD signal changes to identify distinct patterns of neural activation and deactivation.

Main Results:

  • Oxycodone induced widespread positive BOLD activation in wild-type mice, primarily in regions with high mu opioid receptor density and pain processing centers.
  • This oxycodone-induced positive BOLD response was largely eliminated in MuKO mice, confirming mu opioid receptor-mediated on-target effects.
  • Negative BOLD responses were less widespread and only partially reduced or intensified in MuKO mice, suggesting off-target effects in specific brain areas like the cerebellum and hippocampus.

Conclusions:

  • The study establishes a method for mapping opioid-induced BOLD activation in awake mice.
  • Comparison between wild-type and MuKO mice revealed distinct on-target and off-target effects of oxycodone.
  • The identified oxycodone brain signature provides a basis for future comparisons with other mu opioid agonists.