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Updated: Oct 21, 2025

Controlled Cortical Impact Model for Traumatic Brain Injury
Published on: August 5, 2014
Blockade of TRPC Channels Limits Cholinergic-Driven Hyperexcitability and Seizure Susceptibility After Traumatic
Chase M Carver1, Haley R DeWitt1, Aiola P Stoja1
1Department of Cellular and Integrative Physiology, University of Texas Health San Antonio, San Antonio, TX, United States.
Abstract:
We investigated the contribution of excitatory transient receptor potential canonical (TRPC) cation channels to posttraumatic hyperexcitability in the brain 7 days following controlled cortical impact model of traumatic brain injury (TBI) to the parietal cortex in male adult mice. We investigated if TRPC1/TRPC4/TRPC5 channel expression is upregulated in excitatory neurons after TBI in contribution to epileptogenic hyperexcitability in key hippocampal and cortical circuits that have substantial cholinergic innervation. This was tested by measuring TRPC1/TRPC4/TRPC5 protein and messenger RNA (mRNA) expression, assays of cholinergic function, neuronal Ca2+ imaging in brain slices, and seizure susceptibility after TBI. We found region-specific increases in expression of TRPC1, TRPC4, and TRPC5 subunits in the hippocampus and cortex following TBI. The dentate gyrus, CA3 region, and cortex all exhibited robust upregulation of TRPC4 mRNA and protein. TBI increased cFos activity in dentate gyrus granule cells (DGGCs) and layer 5 pyramidal neurons both at the time of TBI and 7 days post-TBI. DGGCs displayed greater magnitude and duration of acetylcholine-induced rises in intracellular Ca2+ in brain slices from mice subjected to TBI. The TBI mice also exhibited greater seizure susceptibility in response to pentylenetetrazol-induced kindling. Blockade of TRPC4/TRPC5 channels with M084 reduced neuronal hyperexcitation and impeded epileptogenic progression of kindling. We observed that the time-dependent upregulation of TRPC4/TRPC5-containing channels alters cholinergic responses and activity of principal neurons acting to increase proexcitatory sensitivity. The underlying mechanism includes acutely decreased acetylcholinesterase function, resulting in greater G / 11-coupled muscarinic receptor activation of TRPC channels. Overall, our evidence suggests that TBI-induced plasticity of TRPC channels strongly contributes to overt hyperexcitability and primes the hippocampus and cortex for seizures.
Insights
Traumatic brain injury (TBI) upregulates excitatory TRPC channels in the brain, increasing neuronal hyperexcitability and seizure risk. Blocking these channels reduces hyperexcitation and epileptogenic progression after TBI.
Area of Science:
- Neuroscience
- Neurobiology
- Channelopathies
Background:
- Traumatic brain injury (TBI) can lead to long-term neurological deficits, including hyperexcitability and seizures.
- Excitatory cation channels, particularly Transient Receptor Potential Canonical (TRPC) channels, are implicated in neuronal function and plasticity.
- Cholinergic pathways play a critical role in regulating neuronal excitability in the hippocampus and cortex.
Purpose of the Study:
- To investigate the role of TRPC1, TRPC4, and TRPC5 channels in post-TBI hyperexcitability.
- To determine if TBI upregulates TRPC channel expression in excitatory neurons within key brain circuits.
- To explore the contribution of TRPC channels to cholinergic dysfunction and seizure susceptibility following TBI.
Main Methods:
- Controlled cortical impact model of TBI in adult male mice.
- Measurement of TRPC1, TRPC4, and TRPC5 protein and mRNA expression.
- Assessment of cholinergic function, neuronal calcium (Ca2+) imaging, and seizure susceptibility.
- Pharmacological blockade of TRPC4/TRPC5 channels using M084.
Main Results:
- TBI induced region-specific upregulation of TRPC1, TRPC4, and TRPC5 subunits in the hippocampus and cortex.
- Increased TRPC4 expression was observed in the dentate gyrus, CA3 region, and cortex.
- TBI enhanced acetylcholine-induced Ca2+ responses in neurons and increased seizure susceptibility.
- Blockade of TRPC4/TRPC5 channels with M084 reduced neuronal hyperexcitation and epileptogenic progression.
Conclusions:
- TBI-induced plasticity of TRPC channels contributes significantly to brain hyperexcitability.
- Upregulated TRPC4/TRPC5 channels alter cholinergic responses and neuronal activity, increasing seizure susceptibility.
- Reduced acetylcholinesterase function following TBI enhances muscarinic receptor-mediated TRPC channel activation.
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