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首页> 外文期刊>Journal of Neurophysiology >Extensive excitatory network interactions shape temporal processing of communication signals in a model sensory system
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Extensive excitatory network interactions shape temporal processing of communication signals in a model sensory system

机译:广泛的兴奋性网络交互作用影响模型感官系统中通信信号的时间处理

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Many sensory brain regions are characterized by extensive local network interactions. However, we know relatively little about the contribution of this micro circuitry to sensory coding. Detailed analyses of neuronal micro circuitry are usually performed in vitro, whereas sensory processing is typically studied by recording from individual neurons in vivo. The electro sensory pathway of mormyrid fish provides a unique opportunity to link in vitro studies of synaptic physiology with in vivo studies of sensory processing. These fish communicate by actively varying the intervals between pulses of electricity. Within the mid-brain posterior exterolateral nucleus (ELp), the temporal filtering of afferent spike trains establishes interval tuning by single neurons. We characterized pairwise neuronal connectivity among ELp neurons with dual whole cell recording in an in vitro whole brain preparation. We found a densely connected network in which single neurons influenced the responses of other neurons throughout the network. Similarly tuned neurons were more likely to share an excitatory synaptic connection than differently tuned neurons, and synaptic connections between similarly tuned neurons were stronger than connections between differently tuned neurons. We propose a general model for excitatory network interactions in which strong excitatory connections both reinforce and adjust tuning and weak excitatory connections make smaller modifications to tuning. The diversity of interval tuning observed among this population of neurons can be explained, in part, by each individual neuron receiving a different complement of local excitatory inputs.
机译:许多感觉脑区域的特征是广泛的局部网络相互作用。但是,我们对这种微电路对感觉编码的贡献知之甚少。神经元微电路的详细分析通常在体外进行,而感觉过程通常是通过体内单个神经元的记录来研究的。 mormyrid鱼的电感觉途径提供了一个独特的机会,可以将突触生理学的体外研究与感觉过程的体内研究联系起来。这些鱼通过主动改变电脉冲之间的间隔来进行交流。在中脑后外侧核(ELp)内,传入突波序列的时间滤波建立了单个神经元的间隔调整。我们在体外全脑制备中用双重全细胞记录表征了ELp神经元之间的成对神经元连通性。我们发现了一个紧密连接的网络,其中单个神经元影响整个网络中其他神经元的响应。相似地,被调节的神经元比被不同地调节的神经元更可能具有兴奋性突触连接,并且被相似地调节的神经元之间的突触连接比被不同地调节的神经元之间的连接更强。我们为兴奋性网络交互提供了一个通用模型,其中强的兴奋性连接既可以增强和调整调优,弱的兴奋性连接也可以对调优进行较小的修改。在这部分神经元中观察到的间隔调节的多样性可以部分解释为每个神经元接受不同的局部兴奋性输入补体。

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