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首页> 外文期刊>Journal of Neurophysiology >Endogenous and half-center bursting in morphologically inspired models of leech heart interneurons.
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Endogenous and half-center bursting in morphologically inspired models of leech heart interneurons.

机译:水ech心脏中间神经元的形态学启发模型中的内源性和半中心爆发。

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Based on a detailed morphology "Full Model" of a leech heart interneuron, we previously developed a computationally efficient, morphologically inspired "Reduced Model" to expedite tuning the model to produce endogenous bursting and alternating bursting when configured as a half-center oscillator (paired with reciprocally inhibitory synapses). To find conductance density distributions that produce endogenous bursting, we implemented a genetic algorithm automated parameter search. With multiple searches, we found eight parameter sets that produced endogenous bursting in the Reduced Model. When these parameter sets were applied to the Full Model, all produced endogenous bursting, although when the simulation time was extended from 80 to 300 s, only four parameter sets produced sustained bursting in the Reduced Models. All parameter sets produced alternating half-center bursting in the Reduced and Full Models throughout the entire 300 s. When conductance amplitudes were systematically varied for each of the four sustained burster sets, the effects on bursting activity differed, both for the same parameter set in the ReducedDollars ajdDollars Full ModehsDollars ajdDollars fkr dmfbevejt paremetarDollars satw wiph the sema level of morphological detail. This implies that morphological detail can affect burst activity and that these parameter sets may represent different mechanisms for burst generation and/or regulation. We also tested the models with parameter variations that correspond to experimental manipulations. We conclude that, whereas similar output can be achieved with multiple different parameter sets, perturbations such as conductance variations can highlight differences. Additionally, this work demonstrates both the utility and limitations of using simplified models to represent more morphologically accurate models.
机译:基于水ech心脏中间神经元的详细形态学“全模型”,我们先前开发了一种计算效率高,受形态学启发的“简化模型”,以加快对模型的调整,以将其配置为半中心振荡器(配对时,产生内生性爆发和交替爆发)与相互抑制的突触)。为了找到产生内生爆裂的电导密度分布,我们实施了遗传算法自动参数搜索。通过多次搜索,我们发现了八个参数集,这些参数集在简化模型中产生了内源性爆发。当将这些参数集应用于完整模型时,尽管模拟时间从80 s延长至300 s,但所有模型均会产生内源性爆发,而在简化模型中,只有四个参数集会产生持续性爆发。在整个300 s的缩减模型和完整模型中,所有参数集都产生交替的半中心猝发。当针对四个持续爆破器组中的每一个系统地改变电导幅度时,对爆破活动的影响是不同的,这对于减少参数中的相同参数集而言,都是相同的参数集。这意味着形态学细节可能会影响爆发活动,并且这些参数集可能代表爆发产生和/或调节的不同机制。我们还用与实验操作相对应的参数变化测试了模型。我们得出的结论是,尽管可以通过多个不同的参数集获得相似的输出,但是电导变化等扰动可能会突出差异。此外,这项工作展示了使用简化模型来表示更准确的形态学模型的实用性和局限性。

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