首页> 美国卫生研究院文献>The Journal of Neuroscience >Synaptic Excitation in Spinal Motoneurons Alternates with Synaptic Inhibition and Is Balanced by Outward Rectification during Rhythmic Motor Network Activity
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Synaptic Excitation in Spinal Motoneurons Alternates with Synaptic Inhibition and Is Balanced by Outward Rectification during Rhythmic Motor Network Activity

机译:在节律性运动网络活动期间脊柱运动神经元中的突触兴奋与突触抑制交替发生并且通过向外整流来平衡。

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摘要

Regular firing in spinal motoneurons of red-eared turtles (Trachemys scripta elegans, either sex) evoked by steady depolarization at rest is replaced by irregular firing during functional network activity. The transition caused by increased input conductance and synaptic fluctuations in membrane potential was suggested to originate from intense concurrent inhibition and excitation. We show that the conductance increase in motoneurons during functional network activity is mainly caused by intrinsic outward rectification near threshold for action potentials by activation of voltage and Ca2+ gated K channels. Intrinsic outward rectification facilitates spiking by focusing synaptic depolarization near threshold for action potentials. By direct recording of synaptic currents, we also show that motoneurons are activated by out-of-phase peaks in excitation and inhibition during network activity, whereas continuous low-level concurrent inhibition and excitation may contribute to irregular firing.>SIGNIFICANCE STATEMENT Neurons embedded in active neural networks can enter a high-conductance state. High-conductance states were observed in spinal motoneurons during rhythmic motor behavior. Assuming no change in intrinsic conductance, it was suggested that the high-conductance state in motoneurons originated from balanced inhibition and excitation. In this study, we demonstrate that intrinsic outward rectification significantly contributes to the high-conductance state. Outward rectification balances synaptic excitation and maintains membrane potential near spike threshold. In addition, direct synaptic current recordings show out-of-phase excitation and inhibition in motoneurons during rhythmic network activity.
机译:休息时稳定去极化引起的红耳海龟的脊神经运动神经元的正常发射被功能性网络活动期间的不规则发射所取代。建议由增加的输入电导和膜电位的突触波动引起的过渡源自强烈的同时抑制和激发。结果表明,运动神经元在功能网络活动过程中的电导增加主要是由于电压和Ca 2 + 门控K通道的激活引起的内在向外整流接近动作电位阈值。通过将突触去极化集中在动作电位的阈值附近,内在的向外矫正促进尖峰。通过直接记录突触电流,我们还显示运动神经元在网络活动期间被激发和抑制中的异相峰激活,而连续的低水平同时抑制和激发可能会导致不规则激发。>意义声明< / strong>嵌入到主动神经网络中的神经元可以进入高电导状态。在节律性运动行为期间,在脊髓运动神经元中观察到高电导状态。假定内在电导没有变化,则表明运动神经元中的高电导状态源自平衡的抑制和激发。在这项研究中,我们证明了固有的向外整流显着有助于高电导状态。向外整流可平衡突触激发,并使膜电位保持在峰值阈值附近。此外,直接的突触电流记录显示在有节奏的网络活动过程中运动神经元的异相激发和抑制。

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