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Updated: Mar 13, 2026

Controlled Cortical Impact Model for Traumatic Brain Injury
Published on: August 5, 2014
Mild Traumatic Brain Injury Produces Neuron Loss That Can Be Rescued by Modulating Microglial Activation Using a CB2
Wei Bu1, Huiling Ren1, Yunping Deng1
1Department of Anatomy and Neurobiology, University of Tennessee Health Science Center Memphis, TN, USA.
Abstract:
We have previously reported that mild TBI created by focal left-side cranial blast in mice produces widespread axonal injury, microglial activation, and a variety of functional deficits. We have also shown that these functional deficits are reduced by targeting microglia through their cannabinoid type-2 (CB2) receptors using 2-week daily administration of the CB2 inverse agonist SMM-189. CB2 inverse agonists stabilize the G-protein coupled CB2 receptor in an inactive conformation, leading to increased phosphorylation and nuclear translocation of the cAMP response element binding protein (CREB), and thus bias activated microglia from a pro-inflammatory M1 to a pro-healing M2 state. In the present study, we showed that SMM-189 boosts nuclear pCREB levels in microglia in several brain regions by 3 days after TBI, by using pCREB/CD68 double immunofluorescent labeling. Next, to better understand the basis of motor deficits and increased fearfulness after TBI, we used unbiased stereological methods to characterize neuronal loss in cortex, striatum, and basolateral amygdala (BLA) and assessed how neuronal loss was affected by SMM-189 treatment. Our stereological neuron counts revealed a 20% reduction in cortical and 30% reduction in striatal neurons bilaterally at 2-3 months post blast, with SMM-189 yielding about 50% rescue. Loss of BLA neurons was restricted to the blast side, with 33% of Thy1+ fear-suppressing pyramidal neurons and 47% of fear-suppressing parvalbuminergic (PARV) interneurons lost, and Thy1-negative fear-promoting pyramidal neurons not significantly affected. SMM-189 yielded 50-60% rescue of Thy1+ and PARV neuron loss in BLA. Thus, fearfulness after mild TBI may result from the loss of fear-suppressing neuron types in BLA, and SMM-189 may reduce fearfulness by their rescue. Overall, our findings indicate that SMM-189 rescues damaged neurons and thereby alleviates functional deficits resulting from TBI, apparently by selectively modulating microglia to the beneficial M2 state. CB2 inverse agonists thus represent a promising therapeutic approach for mitigating neuroinflammation and neurodegeneration.
Insights
This study shows SMM-189, a CB2 receptor inverse agonist, rescues neurons and improves function after mild traumatic brain injury (TBI). It shifts microglia to a healing state, reducing neuroinflammation and neurodegeneration.
Area of Science:
- Neuroscience
- Pharmacology
- Immunology
Background:
- Mild traumatic brain injury (TBI) causes axonal injury, microglial activation, and functional deficits.
- Cannabinoid type-2 (CB2) receptor inverse agonists, like SMM-189, can reduce TBI-induced functional deficits by modulating microglia.
Purpose of the Study:
- To investigate SMM-189's effects on neuronal loss and functional deficits after TBI.
- To understand the mechanism by which SMM-189 modulates microglia and rescues neurons.
Main Methods:
- Administered SMM-189 daily for 2 weeks to mice post-TBI.
- Used pCREB/CD68 immunofluorescence to assess microglial activation.
- Employed stereological methods to quantify neuronal loss in cortex, striatum, and basolateral amygdala (BLA).
Main Results:
- SMM-189 increased nuclear pCREB levels in microglia within 3 days post-TBI.
- SMM-189 rescued approximately 50% of cortical and striatal neuron loss.
- SMM-189 rescued 50-60% of specific fear-suppressing neuron types (Thy1+ and parvalbuminergic) in the BLA.
Conclusions:
- SMM-189 mitigates neuroinflammation and neurodegeneration following TBI.
- SMM-189 rescues damaged neurons, alleviating motor deficits and fearfulness.
- CB2 inverse agonists show therapeutic potential for TBI treatment.
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