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Modeling spiking activity of in vitro neuronal networks through non linear methods

机译:非线性方法模拟体外神经元网络的尖峰活动

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Neuroscience research is even more exploiting technologies developed for electronic engineering use: this is the case of Micro-Electrode Array (MEA) technology, an instrumentation which is able to acquire in vitro neuron spiking activity from a finite number of channels. In this work we present three models of synaptic neuronal network connections, called "Full-Connected", "Hierarchical" and "Closed-Path". Related to each one we implemented an index giving quantitative measures of similarity and of statistical dependence among neuron activities recorded in different MEA channels. They are based on Information Theory techniques as Mutual and Multi Information: the last one extending the pair-wise information to higher-order connections on the entire MEA neuronal network. We calculated indexes for each model in order to test the presence of self-synchronization among neurons evolving in time, in response to external stimuli such as the application of chemical neuron-inhibitors. The availability of such different models helps us to investigate also how much the synaptic connections are spatially sparse or hierarchically structured and finally how much of the information exchanged on the neuronal network is regulated by higher-order correlations.
机译:神经科学研究甚至更具利用技术用于电子工程用途:这是微电极阵列(MEA)技术的情况,一种能够从有限数量的通道获取体外神经元尖刺活动的仪器。在这项工作中,我们呈现了三种突触神经元网络连接模型,称为“全连接”,“分层”和“闭合路径”。与每个人相关的,我们实施了在不同MEA通道中记录的神经元活动中获得相似性和统计依赖性的定量测量。它们基于作为互相和多信息的信息理论技术:最后一个将对信息扩展到整个MEA神经元网络上的高阶连接。我们计算了每个模型的指标,以便在诸如应用化学神经元抑制剂的外部刺激的外部刺激时,在进行时间内发展的神经元之间的存在。这种不同车型的推出有助于我们调查的突触连接也多少在空间上稀疏或分层结构,最后有多少的神经元网络上交换的信息是由高阶的相关规定。

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