Related Experiment Video
Updated: Mar 11, 2026

3D-Neuronavigation In Vivo Through a Patient's Brain During a Spontaneous Migraine Headache
Published on: June 2, 2014
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.
Abstract:
Blood oxygen level dependent (BOLD) imaging in awake mice was used to identify differences in brain activity between wild-type, and Mu (μ) opioid receptor knock-outs (MuKO) in response to oxycodone (OXY). Using a segmented, annotated MRI mouse atlas and computational analysis, patterns of integrated positive and negative BOLD activity were identified across 122 brain areas. The pattern of positive BOLD showed enhanced activation across the brain in WT mice within 15 min of intraperitoneal administration of 2.5 mg of OXY. BOLD activation was detected in 72 regions out of 122, and was most prominent in areas of high μ opioid receptor density (thalamus, ventral tegmental area, substantia nigra, caudate putamen, basal amygdala, and hypothalamus), and focus on pain circuits indicated strong activation in major pain processing centers (central amygdala, solitary tract, parabrachial area, insular cortex, gigantocellularis area, ventral thalamus primary sensory cortex, and prelimbic cortex). Importantly, the OXY-induced positive BOLD was eliminated in MuKO mice in most regions, with few exceptions (some cerebellar nuclei, CA3 of the hippocampus, medial amygdala, and preoptic areas). This result indicates that most effects of OXY on positive BOLD are mediated by the μ opioid receptor (on-target effects). OXY also caused an increase in negative BOLD in WT mice in few regions (16 out of 122) and, unlike the positive BOLD response the negative BOLD was only partially eliminated in the MuKO mice (cerebellum), and in some case intensified (hippocampus). Negative BOLD analysis therefore shows activation and deactivation events in the absence of the μ receptor for some areas where receptor expression is normally extremely low or absent (off-target effects). Together, our approach permits establishing opioid-induced BOLD activation maps in awake mice. In addition, comparison of WT and MuKO mutant mice reveals both on-target and off-target activation events, and set an OXY brain signature that should, in the future, be compared to other μ opioid agonists.
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.
Related Concept Videos
Opioid Receptors: Overview
Analgesia and Pain Management

