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Published on: January 18, 2019
Calcium/calmodulin dependent kinase II contributes to persistent central neuropathic pain following spinal cord
Eric D Crown1, Young S Gwak, Zaiming Ye
1Department of Neuroscience and Cell Biology, University of Texas Medical Branch, Galveston, TX 77555-1043, USA.
Abstract:
Chronic central neuropathic pain after central nervous system injuries remains refractory to therapeutic interventions. A novel approach would be to target key intracellular signaling proteins that are known to contribute to continued activation by phosphorylation of kinases, transcription factors, and/or receptors that contribute to changes in membrane excitability. We demonstrate that one signaling kinase, calcium/calmodulin-dependent kinase II (CaMKII), is critical in maintaining aberrant dorsal horn neuron hyperexcitability in the neuropathic pain condition after spinal cord injury (SCI). After contusion SCI at spinal level T10, activated CaMKII (phosphorylated, pCaMKII) expression is significantly upregulated in the T7/8 spinal dorsal horn in neurons, but not glial cells, and in oligodendrocytes in the dorsal column in the same rats that displayed at-level mechanical allodynia. Furthermore, identified spinothalamic neurons demonstrated significant increases of pCaMKII after SCI compared to sham-treated control animals. However, neither astrocytes nor microglia showed pCaMKII expression in either sham-treated or SCI rats. To demonstrate causality, treatment of SCI rats with KN-93, which prevents CaMKII activation, significantly attenuated at-level mechanical allodynia and aberrant wide dynamic range neuronal activity evoked by brush, pressure, and pinch stimuli and a graded series of von Frey stimuli, respectively. Persistent CaMKII activation contributes to chronic central neuropathic pain by mechanisms that involve maintained hyperexcitability of wide dynamic range dorsal horn neurons. Furthermore, targeting key signaling proteins is a novel, useful therapeutic strategy for treating chronic central neuropathic pain.
Insights
Chronic central neuropathic pain after spinal cord injury (SCI) involves persistent activation of calcium/calmodulin-dependent kinase II (CaMKII). Inhibiting CaMKII reduces pain and neuronal hyperexcitability, suggesting it as a therapeutic target.
Area of Science:
- Neuroscience
- Pain Research
- Molecular Biology
Background:
- Chronic neuropathic pain following central nervous system injuries is difficult to treat.
- Targeting intracellular signaling proteins involved in neuronal hyperexcitability is a potential therapeutic strategy.
Purpose of the Study:
- To investigate the role of calcium/calmodulin-dependent kinase II (CaMKII) in maintaining neuropathic pain after spinal cord injury (SCI).
- To determine if CaMKII inhibition can alleviate pain and associated neuronal dysfunction.
Main Methods:
- Spinal cord contusion injury was induced in rats.
- Expression of activated CaMKII (pCaMKII) was assessed in dorsal horn neurons and glial cells.
- Spinothalamic neurons were identified and analyzed for pCaMKII.
- Rats were treated with KN-93, a CaMKII inhibitor, to assess its effects on allodynia and neuronal activity.
Main Results:
- pCaMKII expression was significantly upregulated in dorsal horn neurons and oligodendrocytes after SCI.
- Spinothalamic neurons showed increased pCaMKII post-SCI.
- KN-93 treatment significantly attenuated mechanical allodynia and aberrant neuronal activity in SCI rats.
- Astrocytes and microglia did not show increased pCaMKII expression.
Conclusions:
- Persistent CaMKII activation contributes to chronic central neuropathic pain by maintaining dorsal horn neuron hyperexcitability.
- Targeting CaMKII represents a novel therapeutic strategy for chronic neuropathic pain.
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