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The Sciatic Nerve Cuffing Model of Neuropathic Pain in Mice
Published on: July 16, 2014
Fbxo3-Dependent Fbxl2 Ubiquitination Mediates Neuropathic Allodynia through the TRAF2/TNIK/GluR1 Cascade
Tzer-Bin Lin1, Ming-Chun Hsieh2, Cheng-Yuan Lai3
1Department of Physiology, School of Medicine, College of Medicine, Taipei Medical University, Taipei 11049, Taiwan, Graduate Institute of Basic Medical Science, China Medical University, Taichung 40402, Taiwan, Department of Biotechnology, Asia University, Taichung 41354, Taiwan.
Abstract:
Emerging evidence has indicated that the pathogenesis of neuropathic pain is mediated by spinal neural plasticity in the dorsal horn, which provides insight for analgesic therapy. Here, we report that the abundance of tumor necrosis factor receptor-associated factor 2 and NcK-interacting kinase (TNIK), a kinase that is presumed to regulate neural plasticity, was specifically enhanced in ipsilateral dorsal horn neurons after spinal nerve ligation (SNL; left L5 and L6). Spinal TNIK-associated allodynia is mediated by downstream TNIK-GluR1 coupling and the subsequent phosphorylation-dependent trafficking of GluR1 toward the plasma membrane in dorsal horn neurons. Tumor necrosis factor receptor-associated factor 2 (TRAF2), which is regulated by spinal F-box protein 3 (Fbxo3)-dependent F-box and leucine-rich repeat protein 2 (Fbxl2) ubiquitination, contributes to SNL-induced allodynia by modifying TNIK/GluR1 phosphorylation-associated GluR1 trafficking. Although exhibiting no effect on Fbxo3/Fbxl2/TRAF2 signaling, focal knockdown of spinal TNIK expression prevented SNL-induced allodynia by attenuating TNIK/GluR1 phosphorylation-dependent subcellular GluR1 redistribution. In contrast, intrathecal administration of BC-1215 (N1,N2-Bis[[4-(2-pyridinyl)phenyl]methyl]-1,2-ethanediamine) (a novel Fbxo3 inhibitor) prevented SNL-induced Fbxl2 ubiquitination and subsequent TFAF2 de-ubiquitination to ameliorate behavioral allodynia via antagonizing TRAF2/TNIK/GluR1 signaling. By targeting spinal Fbxo3-dependent Fbxl2 ubiquitination and the subsequent TRAF2/TNIK/GluR1 cascade, spinal application of a TNF-α-neutralizing antibody ameliorated SNL-induced allodynia, and, conversely, intrathecal TNF-α injection into naive rats induced allodynia via a spinal Fbxo3/Fbxl2-dependent modification of the TRAF2/TNIK/GluR1 cascade. Together, our results suggest that spinal TNF-α contributes to the development of neuropathic pain by upregulating TRAF2/TNIK/GluR1 signaling via Fbxo3-dependent Fbxl2 ubiquitination and degradation. Thus, we propose a potential medical treatment strategy for neuropathic pain by targeting the F-box protein or TNIK.
Significance Statement:
TNF-α participates in neuropathic pain development by facilitating the spinal TRAF2-dependent TNIK-GluR1 association, which drives GluR1-containing AMPA receptor trafficking toward the plasma membrane. In addition, F-box protein 3 modifies this pathway by inhibiting F-box and leucine-rich repeat protein 2-mediated TRAF2 ubiquitination, suggesting that protein ubiquitination contributes crucially to the development of neuropathic pain. These results provide a novel therapeutic strategy for pain relief.
Insights
Spinal tumor necrosis factor-alpha (TNF-α) drives neuropathic pain by enhancing TRAF2/TNIK/GluR1 signaling. Targeting F-box protein 3 or TNIK offers a novel therapeutic strategy for pain relief.
Area of Science:
- Neuroscience
- Molecular Biology
- Pain Research
Background:
- Neuropathic pain pathogenesis involves spinal neural plasticity in the dorsal horn.
- Tumor necrosis factor receptor-associated factor 2 (TRAF2) and NcK-interacting kinase (TNIK) are implicated in this process.
Purpose of the Study:
- To investigate the role of TRAF2 and TNIK in spinal nerve ligation (SNL)-induced neuropathic pain.
- To elucidate the molecular mechanisms underlying TNIK and TRAF2 involvement in pain signaling.
- To identify potential therapeutic targets for neuropathic pain.
Main Methods:
- Spinal nerve ligation (SNL) in rats to induce neuropathic pain.
- Assessment of TNIK and TRAF2 expression and activity in dorsal horn neurons.
- Pharmacological inhibition of TNIK and F-box protein 3 (Fbxo3).
- Analysis of protein ubiquitination and trafficking pathways.
Main Results:
- SNL increased TNIK and TRAF2 abundance in dorsal horn neurons, correlating with allodynia.
- TNIK-GluR1 coupling and GluR1 trafficking were critical for SNL-induced allodynia.
- Fbxo3-dependent Fbxl2 ubiquitination regulated TRAF2 levels and contributed to allodynia.
- Inhibition of Fbxo3 or TNIK ameliorated neuropathic pain behaviors.
Conclusions:
- Spinal TNF-α promotes neuropathic pain via TRAF2-dependent TNIK-GluR1 signaling and GluR1 trafficking.
- Fbxo3 regulates this pathway by controlling TRAF2 ubiquitination, highlighting protein ubiquitination's role in pain.
- Targeting Fbxo3 or TNIK presents a promising therapeutic avenue for neuropathic pain.
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