Related Experiment Video
Updated: Feb 28, 2026

Oromucosal as an Alternative Method for Administration of Cannabis Products in Rodents
Published on: August 22, 2025
CB1 augments mGluR5 function in medial prefrontal cortical neurons to inhibit amygdala hyperactivity in an arthritis
Guangchen Ji1, Volker Neugebauer
1Department of Neuroscience and Cell Biology, University of Texas Medical Branch, Galveston, TX, 77555-1069, USA.
Abstract:
The medial prefrontal cortex (mPFC) serves executive control functions and forms direct connections with subcortical areas such as the amygdala. Our previous work showed abnormal inhibition of mPFC pyramidal cells and hyperactivity of amygdala output neurons in an arthritis pain model. To restore mPFC activity and hence control pain-related amygdala hyperactivity this study focused on CB1 and mGluR5 receptors, which are important modulators of cortical functions. Extracellular single-unit recordings of infralimbic mPFC pyramidal cells and of amygdala output neurons in the laterocapsular division of the central nucleus (CeLC) were made in anesthetised adult male rats. mPFC neurons were classified as 'excited' or 'inhibited' based on their response to brief innocuous and noxious test stimuli. After arthritis pain induction, background activity and evoked responses of excited neurons and background activity and inhibition of inhibited neurons decreased. Stereotaxic application of an mGluR5-positive allosteric modulator (N-cyclobutyl-6-((3-fluorophenyl)ethynyl) nicotinamide hydrochloride, VU0360172) into the mPFC increased background and evoked activity of excited, but not inhibited, mPFC neurons under normal conditions but not in arthritis. A selective CB1 receptor agonist (arachidonyl-2-chloroethylamide) alone had no effect but restored the facilitatory effects of VU0360172 in the pain model. Coactivation of CB1 and mGluR5 in the mPFC inhibited the pain-related activity increase of CeLC neurons but had no effect under normal conditions. The data suggest that excited mPFC neurons are inversely linked to amygdala output (CeLC) and that CB1 can increase mGluR5 function in this subset of mPFC neurons to engage cortical control of abnormally enhanced amygdala output in pain.
Insights
This study found that activating CB1 and mGluR5 receptors in the medial prefrontal cortex (mPFC) can restore normal neuron activity and control pain-related amygdala hyperactivity in an arthritis pain model.
Area of Science:
- Neuroscience
- Pain Research
- Receptor Pharmacology
Background:
- The medial prefrontal cortex (mPFC) is crucial for executive functions and connects to subcortical areas like the amygdala.
- Previous research indicated abnormal mPFC pyramidal cell inhibition and amygdala hyperactivity in an arthritis pain model.
- CB1 and mGluR5 receptors modulate cortical functions and are potential targets for pain management.
Purpose of the Study:
- To investigate the role of CB1 and mGluR5 receptors in the mPFC for controlling pain-related amygdala hyperactivity.
- To restore normal mPFC activity in an arthritis pain model.
Main Methods:
- Extracellular single-unit recordings were performed on mPFC pyramidal cells and amygdala output neurons (CeLC) in anesthetized rats.
- Neurons were classified as 'excited' or 'inhibited' based on responses to stimuli.
- Stereotaxic application of an mGluR5 positive allosteric modulator (VU0360172) and a CB1 receptor agonist were used.
Main Results:
- Arthritis pain induction decreased activity in excited mPFC neurons and inhibited inhibited mPFC neurons.
- mGluR5 activation increased activity in excited mPFC neurons under normal conditions but not in arthritis.
- CB1 receptor activation restored the effects of mGluR5 modulation in the pain model, inhibiting amygdala output.
Conclusions:
- Excited mPFC neurons are inversely related to amygdala output (CeLC).
- CB1 receptors can enhance mGluR5 function in specific mPFC neurons.
- This interaction offers a potential mechanism for cortical control of pain-related amygdala hyperactivity.

