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中间神经元突触处的短期突触可塑性可塑造节律性运动模式。

Short-Term Synaptic Plasticity at Interneuronal Synapses Could Sculpt Rhythmic Motor Patterns.

作者信息

Jia Yan, Parker David

机构信息

Department of Physiology, Development and Neuroscience, University of Cambridge Cambridge, UK.

出版信息

Front Neural Circuits. 2016 Feb 3;10:4. doi: 10.3389/fncir.2016.00004. eCollection 2016.

Abstract

The output of a neuronal network depends on the organization and functional properties of its component cells and synapses. While the characterization of synaptic properties has lagged cellular analyses, a potentially important aspect in rhythmically active networks is how network synapses affect, and are in turn affected by, network activity. This could lead to a potential circular interaction where short-term activity-dependent synaptic plasticity is both influenced by and influences the network output. The analysis of synaptic plasticity in the lamprey locomotor network was extended here to characterize the short-term plasticity of connections between network interneurons and to try and address its potential network role. Paired recordings from identified interneurons in quiescent networks showed synapse-specific synaptic properties and plasticity that supported the presence of two hemisegmental groups that could influence bursting: depression in an excitatory interneuron group, and facilitation in an inhibitory feedback circuit. The influence of activity-dependent synaptic plasticity on network activity was investigated experimentally by changing Ringer Ca(2+) levels, and in a simple computer model. A potential caveat of the experimental analyses was that changes in Ringer Ca(2+) (and compensatory adjustments in Mg(2+) in some cases) could alter several other cellular and synaptic properties. Several of these properties were tested, and while there was some variability, these were not usually significantly affected by the Ringer changes. The experimental analyses suggested that depression of excitatory inputs had the strongest influence on the patterning of network activity. The simulation supported a role for this effect, and also suggested that the inhibitory facilitating group could modulate the influence of the excitatory synaptic depression. Short-term activity-dependent synaptic plasticity has not generally been considered in spinal cord models. These results provide further evidence for short-term plasticity between locomotor network interneurons. As this plasticity could influence the patterning of the network output it should be considered as a potential functional component of spinal cord networks.

摘要

神经网络的输出取决于其组成细胞和突触的组织及功能特性。虽然突触特性的表征落后于细胞分析,但在节律性活动网络中一个潜在的重要方面是网络突触如何影响网络活动,以及反过来如何受到网络活动的影响。这可能导致一种潜在的循环相互作用,即短期活动依赖性突触可塑性既受网络输出影响,又影响网络输出。在此扩展了对七鳃鳗运动网络中突触可塑性的分析,以表征网络中间神经元之间连接的短期可塑性,并试图探讨其潜在的网络作用。对静止网络中已识别中间神经元的配对记录显示了突触特异性的突触特性和可塑性,支持存在两个可能影响爆发的半节段组:一个兴奋性中间神经元组中的抑制,以及一个抑制性反馈回路中的易化。通过改变林格氏液中的钙离子水平,并在一个简单的计算机模型中,对活动依赖性突触可塑性对网络活动的影响进行了实验研究。实验分析的一个潜在问题是,林格氏液中钙离子的变化(以及在某些情况下镁离子的补偿性调整)可能会改变其他几个细胞和突触特性。对其中一些特性进行了测试,虽然存在一些变异性,但这些通常不会受到林格氏液变化的显著影响。实验分析表明,兴奋性输入的抑制对网络活动模式的影响最强。模拟结果支持了这种效应的作用,并且还表明抑制性易化组可以调节兴奋性突触抑制的影响。脊髓模型中一般没有考虑短期活动依赖性突触可塑性。这些结果为运动网络中间神经元之间的短期可塑性提供了进一步的证据。由于这种可塑性可能影响网络输出的模式,因此应将其视为脊髓网络的一个潜在功能组成部分。

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