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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Loss of NR1 subunit of NMDARs in primary sensory neurons leads to hyperexcitability and pain hypersensitivity: Involvement of Ca2+-activated small conductance potassium channels
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Loss of NR1 subunit of NMDARs in primary sensory neurons leads to hyperexcitability and pain hypersensitivity: Involvement of Ca2+-activated small conductance potassium channels

机译:初级感觉神经元中NMDARs NR1亚基的丢失导致兴奋性和疼痛超敏性:涉及Ca2 +激活的小电导钾通道

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摘要

It is well established that activation of NMDARs plays an essential role in spinal cord synaptic plasticity (i.e., central sensitization) and pain hypersensitivity after tissue injury. Despite prominent expression of NMDARs in DRG primary sensory neurons, the unique role of peripheral NMDARs in regulating intrinsic neuronal excitability and pain sensitivity is not well understood, in part due to the lack of selective molecular tools. To address this problem, we used Advillin-Cre driver to delete the NR1 subunit of NMDARs selectively in DRG neurons. In NR1 conditional knock-out (NR1-cKO) mice, NR1 expression is absent in DRG neurons but remains normal in spinal cord neurons; NMDA-induced currents are also eliminated in DRG neurons of these mice. Surprisingly, NR1-cKO mice displayed mechanical and thermal hypersensitivity compared with wild-type littermates. NR1-deficient DRG neurons show increased excitability, as indicated by increased frequency of action potentials, and enhanced excitatory synaptic transmission in spinal cord slices, as indicated by increased frequency of miniature EPSCs. This hyperexcitability can be reproduced by the NMDAR antagonist APV and by Ca2+-activated slow conductance K+ (SK) channel blocker apamin. Furthermore, NR1-positive DRG neurons coexpress SK1/SK2 and apamin-sensitive after hyperpolarization currents are elevated by NMDA and suppressed by APV in these neurons. Our findings reveal the hitherto unsuspected role of NMDARs in controlling the intrinsic excitability of primary sensory neurons possibly via Ca2+-activated SK channels. Our results also call attention to potential opposing effects of NMDAR antagonists as a treatment for pain and other neurological disorders.
机译:公认的是,NMDAR的激活在组织损伤后的脊髓突触可塑性(即中枢敏化)和疼痛超敏反应中起重要作用。尽管NMDARs在DRG初级感觉神经元中有突出表达,但外周NMDARs在调节内在神经元兴奋性和疼痛敏感性方面的独特作用尚未得到很好的理解,部分原因是缺乏选择性分子工具。为了解决此问题,我们使用Advillin-Cre驱动程序选择性地删除了DRG神经元中NMDAR的NR1亚基。在NR1条件性基因敲除(NR1-cKO)小鼠中,DRG神经元中不存在NR1表达,而脊髓神经元中则保持正常。在这些小鼠的DRG神经元中也消除了NMDA诱导的电流。令人惊讶的是,与野生同窝仔相比,NR1-cKO小鼠表现出机械和热超敏性。缺乏NR1的DRG神经元表现出增加的兴奋性,如动作电位的频率增加,以及脊髓切片中兴奋性突触传递的增强,如微型EPSC的频率增加。 NMDAR拮抗剂APV和Ca2 +激活的慢电导K +(SK)通道阻滞剂apamin可以复制这种过度兴奋性。此外,NR1阳性DRG神经元在NMDA升高并被APV抑制后,在超极化电流后共表达SK1 / SK2和对apamin敏感。我们的发现揭示了迄今为止,NMDAR在可能通过Ca2 +激活的SK通道控制初级感觉神经元的内在兴奋性中发挥了前所未有的作用。我们的研究结果还引起人们对NMDAR拮抗剂作为疼痛和其他神经系统疾病治疗的潜在不利影响的关注。

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