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The response of cortical neurons to in vivo-like input current: theory and experiment

机译:皮质神经元对体内类输入电流的响应:理论与实验

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摘要

The study of several aspects of the collective dynamics of interacting neurons can be highly simplified if one assumes that the statistics of the synaptic input is the same for a large population of similarly behaving neurons (mean field approach). In particular, under such an assumption, it is possible to determine and study all the equilibrium points of the network dynamics when the neuronal response to noisy, in vivo-like, synaptic currents is known. The response function can be computed analytically for simple integrate-and-fire neuron models and it can be measured directly in experiments in vitro. Here we review theoretical and experimental results about the neural response to noisy inputs with stationary statistics. These response functions are important to characterize the collective neural dynamics that are proposed to be the neural substrate of working memory, decision making and other cognitive functions. Applications to the case of time-varying inputs are reviewed in a companion paper (Giugliano et al. in Biol Cybern, 2008). We conclude that modified integrate-and-fire neuron models are good enough to reproduce faithfully many of the relevant dynamical aspects of the neuronal response measured in experiments on real neurons in vitro.
机译:如果人们假设大量行为相似的神经元的突触输入统计量相同(均值场方法),则可以极大地简化相互作用神经元集体动力学几个方面的研究。特别地,在这样的假设下,当已知对嘈杂的,体内样突触电流的神经元反应时,可以确定和研究网络动力学的所有平衡点。响应函数可以通过简单的积分和发射神经元模型进行解析计算,并且可以直接在体外实验中进行测量。在这里,我们用固定的统计数据回顾有关对噪声输入的神经反应的理论和实验结果。这些响应函数对于表征集体神经动力学至关重要,这些神经动力​​学被认为是工作记忆,决策和其他认知功能的神经基础。在随行输入的情况下的应用程序在随附的论文中进行了综述(Giugliano等人,Biol Cyber​​n,2008)。我们得出的结论是,修改后的“整合并发射”神经元模型足以忠实地再现在真实神经元体外实验中测得的神经元反应的许多相关动力学方面。

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