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首页> 外文期刊>Frontiers in Cellular Neuroscience >On the Basis of Synaptic Integration Constancy during Growth of a Neuronal Circuit
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On the Basis of Synaptic Integration Constancy during Growth of a Neuronal Circuit

机译:基于神经元回路生长过程中突触整合常数的基础

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We studied how a neuronal circuit composed of two neuron types connected by chemical and electrical synapses maintains constant its integrative capacities as neurons grow. For this we combined electrophysiological experiments with mathematical modeling in pairs of electrically-coupled Retzius neurons from postnatal to adult leeches. The electrically-coupled dendrites of both Retzius neurons receive a common chemical input, which produces excitatory postsynaptic potentials (EPSPs) with varying amplitudes. Each EPSP spreads to the soma, but also crosses the electrical synapse to arrive at the soma of the coupled neuron. The leak of synaptic current across the electrical synapse reduces the amplitude of the EPSPs in proportion to the coupling ratio. In addition, summation of EPSPs generated in both neurons generates the baseline action potentials of these serotonergic neurons. To study how integration is adjusted as neurons grow, we first studied the characteristics of the chemical and electrical connections onto the coupled dendrites of neuron pairs with soma diameters ranging from 21 to 75 μm. Then by feeding a mathematical model with the neuronal voltage responses to pseudorandom noise currents we obtained the values of the coupling ratio, the membrane resistance of the soma ( r_(m) ) and dendrites ( r _(dend)), the space constant (λ) and the characteristic dendritic length ( L = l /λ). We found that the EPSPs recorded from the somata were similar regardless on the neuron size. However, the amplitude of the EPSPs and the firing frequency of the neurons were inversely proportional to the coupling ratio of the neuron pair, which also was independent from the neuronal size. This data indicated that the integrative constancy relied on the passive membrane properties. We show that the growth of Retzius neurons was compensated by increasing the membrane resistance of the dendrites and therefore the λ value. By solely increasing the dendrite resistance this circuit maintains constant its integrative capacities as its neurons grow.
机译:我们研究了由化学和电突触连接的两种神经元类型组成的神经元回路如何随着神经元的生长保持其整合能力恒定。为此,我们将电生理实验与数学建模相结合,从出生后到成年的水ches成对电耦合的Retzius神经元对。两个Retzius神经元的电耦合树突接受共同的化学输入,产生变化幅度的兴奋性突触后电位(EPSP)。每个EPSP扩散到躯体,但也穿过电突触到达耦合神经元的躯体。跨越电突触的突触电流的泄漏与耦合比成比例地减小了EPSP的幅度。另外,在两个神经元中产生的EPSP的总和产生了这些血清素能神经元的基线动作电位。为了研究如何随着神经元的生长而调节整合,我们首先研究了体细胞直径在21至75μm之间的神经元对的耦合树突上的化学和电连接特征。然后,通过向神经模型提供对伪随机噪声电流的电压响应的数学模型,我们获得了耦合比,体细胞的膜电阻(r_(m))和树突(r _(dend))的值,空间常数( λ)和特征树突长度(L = 1 /λ)。我们发现,无论神经元大小如何,从躯体记录的EPSP都是相似的。但是,EPSP的振幅和神经元的激发频率与神经元对的耦合比成反比,这也与神经元大小无关。该数据表明整体恒定性依赖于被动膜性能。我们表明,Retzius神经元的生长被树突的膜电阻增加所补偿,因此被λ值所补偿。通过仅增加树突电阻,该电路就可以随着神经元的生长而保持恒定的积分能力。

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