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NMDA Receptors Mediate Stimulus-Timing-Dependent Plasticity and Neural Synchrony in the Dorsal Cochlear Nucleus

机译:NMDA受体介导背侧耳蜗核的刺激时间依赖性可塑性和神经同步。

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Auditory information relayed by auditory nerve fibers and somatosensory information relayed by granule cell parallel fibers converge on the fusiform cells (FCs) of the dorsal cochlear nucleus, the first brain station of the auditory pathway. In vitro , parallel fiber synapses on FCs exhibit spike-timing-dependent plasticity with Hebbian learning rules, partially mediated by the NMDA receptor (NMDAr). Well-timed bimodal auditory-somatosensory stimulation, in vivo equivalent of spike-timing-dependent plasticity, can induce stimulus-timing-dependent plasticity (StTDP) of the FCs spontaneous and tone-evoked firing rates. In healthy guinea pigs, the resulting distribution of StTDP learning rules across a FC neural population is dominated by a Hebbian profile while anti-Hebbian, suppressive and enhancing LRs are less frequent. In this study, we investigate in vivo , the NMDAr contribution to FC baseline activity and long term plasticity. We find that blocking the NMDAr decreases the synchronization of FC- spontaneous activity and mediates differential modulation of FC rate-level functions such that low, and high threshold units are more likely to increase, and decrease, respectively, their maximum amplitudes. Three significant alterations in mean learning-rule profiles were identified: transitions from an initial Hebbian profile towards (1) an anti-Hebbian; (2) a suppressive profile; and (3) transitions from an anti-Hebbian to a Hebbian profile. FC units preserving their learning rules showed instead, NMDAr-dependent plasticity to unimodal acoustic stimulation, with persistent depression of tone-evoked responses changing to persistent enhancement following the NMDAr antagonist. These results reveal a crucial role of the NMDAr in mediating FC baseline activity and long-term plasticity which have important implications for signal processing and auditory pathologies related to maladaptive plasticity of dorsal cochlear nucleus circuitry.
机译:由听觉神经纤维传递的听觉信息和由颗粒细胞平行纤维传递的体感信息在听觉通路的第一个大脑站-耳蜗背面的梭形细胞(FC)上汇聚。在体外,FC上的平行纤维突触显示出与希伯来学习规则相关的穗定时依赖性可塑性,部分由NMDA受体(NMDAr)介导。适时的双峰听觉体感刺激,体内等同于尖峰时间依赖的可塑性,可以诱导FC的自发时间刺激和音调诱发的发射速率。在健康的豚鼠中,由此产生的StTDP学习规则在FC神经群中的分布主要由Hebbian谱决定,而抗Hebbian,抑制性LLR和增强LR的频率较低。在这项研究中,我们调查了体内NMDAr对FC基线活性和长期可塑性的贡献。我们发现阻塞NMDAr会降低FC自发活动的同步,并介导FC速率级别函数的差分调制,从而使低阈值单元和高阈值单元分别更有可能分别增大和减小其最大幅度。确定了平均学习规则概貌的三个重大变化:从最初的希伯来概貌向(1)反希伯来概貌的转变; (2)抑制性特征; (3)从反希伯来人档案过渡到希伯来人档案。保留其学习规则的功能单元显示,NMDAr依赖于对单峰声刺激的可塑性,随着NMDAr拮抗剂的出现,持续降低的语气诱发反应变为持续增强。这些结果揭示了NMDAr在介导FC基线活动和长期可塑性中的关键作用,这对与后耳蜗神经核回路适应不良可塑性有关的信号处理和听觉病理学具有重要意义。

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