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前腹侧耳蜗核中斩波器单元房室模型的规律性分析

Regularity analysis in a compartmental model of chopper units in the anteroventral cochlear nucleus.

作者信息

Banks M I, Sachs M B

机构信息

Neurosciences Training Program, University of Wisconsin Medical School, Madison 53706.

出版信息

J Neurophysiol. 1991 Mar;65(3):606-29. doi: 10.1152/jn.1991.65.3.606.

Abstract
  1. We investigate the discharge patterns of chopper units in the anteroventral cochlear nucleus (AVCN) by developing an equivalent cylinder compartmental model of AVCN stellate cells, which are the sources of the chopper response pattern. The model consists of a passive dendritic tree connected to somatic and axonal compartments with voltage-sensitive channels. Synaptic inputs to the model are simulated auditory nerve fiber responses to best-frequency tones. 2. We adjust the anatomic and electrical parameters of the model to agree with available intracellular data from stellate cells in the AVCN of the mouse and the cat and compare the response of the model to injected current with responses recorded in vitro. The model shows approximately linear current-voltage characteristics for small hyperpolarizing currents. The model's input resistance and the time course of its response to hyperpolarizing current applied at the soma are comparable with those measured from stellate cells in vitro. In response to sustained depolarizing current, the model fires repetitively with nearly perfect regularity, a property also observed in vitro. 3. Auditory nerve inputs to the cell are modeled as deadtime-modified Poisson processes with a multiexponential adaptation in the Poisson rate. We are able to adjust the number, rate, and location of excitatory and inhibitory inputs to the model and succeed in simulating chopper response patterns seen in vivo. 4. Chopper units exhibit a variety of regularity and adaptation patterns in response to tone stimuli. Physiological data from brain slice experiments and experiments in vivo imply that this heterogeneity is primarily due to differences in input configurations. By systematically varying the number and position of excitatory and inhibitory inputs, we can simulate a range of chopper response patterns. 5. We quantify the regularity of the model's response using the coefficient of variation (CV) of the interspike interval. We find that the CV decreases, i.e., the regularity increases, as the number of converging inputs or their distance from the soma increases. The regularity of the output is more sensitive to the number of converging inputs than to their location on the dendritic tree. The statistics of the first spike latency (FSL) are also sensitive to the configuration of excitatory inputs. The mean and minimum FSL are more sensitive to the electrotonic distance of the inputs from the soma than to the number of inputs, whereas the standard deviation of the FSL is highly dependent on the number of converging inputs and is nearly independent of their location.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 我们通过构建前腹侧蜗神经核(AVCN)星状细胞的等效圆柱房室模型来研究AVCN中斩波器单元的放电模式,这些星状细胞是斩波器响应模式的来源。该模型由一个与具有电压敏感通道的胞体和轴突房室相连的被动树突组成。模型的突触输入模拟听神经纤维对最佳频率音调的反应。2. 我们调整模型的解剖学和电学参数,使其与来自小鼠和猫AVCN中星状细胞的现有细胞内数据一致,并将模型对注入电流的反应与体外记录的反应进行比较。对于小的超极化电流,模型显示出近似线性的电流 - 电压特性。模型的输入电阻及其对施加于胞体的超极化电流的反应时间进程与体外从星状细胞测量的结果相当。响应持续的去极化电流时,模型以几乎完美的规律性重复放电,这也是在体外观察到的特性。3. 细胞的听神经输入被建模为具有泊松率多指数适应的死时间修正泊松过程。我们能够调整模型中兴奋性和抑制性输入的数量、速率和位置,并成功模拟体内观察到的斩波器响应模式。4. 斩波器单元对音调刺激表现出各种规律性和适应模式。来自脑片实验和体内实验的生理数据表明,这种异质性主要是由于输入配置的差异。通过系统地改变兴奋性和抑制性输入的数量和位置,我们可以模拟一系列斩波器响应模式。5. 我们使用峰间间隔的变异系数(CV)来量化模型响应的规律性。我们发现,随着汇聚输入的数量或它们与胞体的距离增加,CV减小,即规律性增加。输出的规律性对汇聚输入的数量比对它们在树突上的位置更敏感。第一个峰潜伏期(FSL)的统计数据也对兴奋性输入的配置敏感。平均和最小FSL对输入与胞体的电紧张距离比对输入数量更敏感,而FSL的标准差高度依赖于汇聚输入的数量,并且几乎与它们的位置无关。(摘要截断于400字)

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