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首页> 外文期刊>Biological Cybernetics >Extracting non-linear integrate-and-fire models from experimental data using dynamic I–V curves
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Extracting non-linear integrate-and-fire models from experimental data using dynamic I–V curves

机译:使用动态IV曲线从实验数据中提取非线性积分和发射模型

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The dynamic I–V curve method was recently introduced for the efficient experimental generation of reduced neuron models. The method extracts the response properties of a neuron while it is subject to a naturalistic stimulus that mimics in vivo-like fluctuating synaptic drive. The resulting history-dependent, transmembrane current is then projected onto a one-dimensional current–voltage relation that provides the basis for a tractable non-linear integrate-and-fire model. An attractive feature of the method is that it can be used in spike-triggered mode to quantify the distinct patterns of post-spike refractoriness seen in different classes of cortical neuron. The method is first illustrated using a conductance-based model and is then applied experimentally to generate reduced models of cortical layer-5 pyramidal cells and interneurons, in injected-current and injected- conductance protocols. The resulting low-dimensional neuron models—of the refractory exponential integrate-and-fire type—provide highly accurate predictions for spike-times. The method therefore provides a useful tool for the construction of tractable models and rapid experimental classification of cortical neurons.
机译:动态I–V曲线方法最近被引入,用于简化神经元模型的高效实验生成。该方法提取神经元的响应特性,同时它受到模仿体内类似波动的突触驱动力的自然刺激。然后将所得的与历史相关的跨膜电流投影到一维电流-电压关系上,该关系为可处理的非线性积分点火模型提供了基础。该方法的一个吸引人的特点是,它可以以尖峰触发模式使用,以量化在不同类别的皮质神经元中看到的尖峰后难治性的独特模式。该方法首先使用基于电导的模型进行说明,然后在注入电流和注入电导方案中通过实验应用于生成皮质5层锥体细胞和中间神经元的简化模型。由此产生的低维神经元模型-耐火指数积分和发射类型-为尖峰时间提供了高度准确的预测。因此,该方法为构建易于处理的模型和对皮层神经元进行快速实验分类提供了有用的工具。

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