首页> 外文期刊>Biological Cybernetics: Communication and Control in Organisms and Automata: = Nachrichtenubertragung, Nachrichtenverarbeitung, Steuerung und Regelung in Organismen und in Automaten >THE SPIKE GENERATION ZONE OF THE AMPULLARY ELECTRORECEPTOR .1. STIMULUS-RESPONSE CHARACTERISTICS OF A RELAXATION OSCILLATOR CIRCUIT MODEL
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THE SPIKE GENERATION ZONE OF THE AMPULLARY ELECTRORECEPTOR .1. STIMULUS-RESPONSE CHARACTERISTICS OF A RELAXATION OSCILLATOR CIRCUIT MODEL

机译:壶状电位器的峰值产生区1。松弛振荡器电路模型的激励响应特性

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Sensory input to the central nervous system begins with a transduction step, specialized to the sensory modality involved, resulting in the production of postsynaptic electrical input to the outermost branches of a dendritic tree. Spatiotemporal summation of this 'slow' input as it converges upon the axon then initiates the production of or modulates the rate of ongoing production of 'fast' neural spikes destined for the central nervous system. We present a novel circuit design consisting of an operational amplifier, a tunnel diode and linear passive components, intended to model the spike generation zone at which the transformation of neural input from slow to fast format takes place. Our circuit is shown to be a relaxation oscillator of the van der Pol type. Simulated postsynaptic current modulates the frequency of spike production by the relaxation oscillator model, producing a stimulus-response characteristic which can be compared with those observed in vivo. Stimulus-response data for our model match data available in the literature for the ampullary electroreceptor of elasmobranch fish. [References: 27]
机译:对中枢神经系统的感觉输入始于专门针对所涉及的感觉方式的转导步骤,从而导致向树突树的最外分支产生突触后电输入。当“慢”输入收敛到轴突上时,时空总和将启动或调节以中枢神经系统为目标的“快速”神经突波的持续产生速度。我们提出了一种由运算放大器,隧道二极管和线性无源元件组成的新颖电路设计,旨在对尖峰生成区域进行建模,在该区域中,神经输入会从慢速格式转换为快速格式。我们的电路显示为范德波尔型的张弛振荡器。模拟的突触后电流通过弛张振荡器模型调节尖峰产生的频率,产生可以与体内观察到的刺激响应特征。我们模型的刺激响应数据与文献中有关弹性鱼壶腹电感受器的数据相匹配。 [参考:27]

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