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A theoretical framework for analyzing coupled neuronal networks: Application to the olfactory system

机译:分析耦合神经元网络的理论框架:在嗅觉系统中的应用

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摘要

Determining how synaptic coupling within and between regions is modulated during sensory processing is an important topic in neuroscience. Electrophysiological recordings provide detailed information about neural spiking but have traditionally been confined to a particular region or layer of cortex. Here we develop new theoretical methods to study interactions between and within two brain regions, based on experimental measurements of spiking activity simultaneously recorded from the two regions. By systematically comparing experimentally-obtained spiking statistics to (efficiently computed) model spike rate statistics, we identify regions in model parameter space that are consistent with the experimental data. We apply our new technique to dual micro-electrode array in vivo recordings from two distinct regions: olfactory bulb (OB) and anterior piriform cortex (PC). Our analysis predicts that: i) inhibition within the afferent region (OB) has to be weaker than the inhibition within PC, ii) excitation from PC to OB is generally stronger than excitation from OB to PC, iii) excitation from PC to OB and inhibition within PC have to both be relatively strong compared to presynaptic inputs from OB. These predictions are validated in a spiking neural network model of the OB–PC pathway that satisfies the many constraints from our experimental data. We find when the derived relationships are violated, the spiking statistics no longer satisfy the constraints from the data. In principle this modeling framework can be adapted to other systems and be used to investigate relationships between other neural attributes besides network connection strengths. Thus, this work can serve as a guide to further investigations into the relationships of various neural attributes within and across different regions during sensory processing.
机译:在感觉过程中,如何调节区域内和区域之间的突触耦合是神经科学中的重要课题。电生理记录可提供有关神经突刺的详细信息,但传统上仅局限于特定的区域或皮质层。在这里,我们基于从两个区域同时记录的尖峰活动的实验测量结果,开发了新的理论方法来研究两个大脑区域之间和内部的相互作用。通过系统地比较实验获得的峰值统计数据与(有效计算的)模型峰值速率统计数据,我们确定了模型参数空间中与实验数据一致的区域。我们将这项新技术应用于来自两个不同区域的双微电极阵列体内记录:嗅球( OB )和梨状前皮质( PC )。我们的分析预测:i)传入区域(OB)内的抑制作用必须弱于PC内的抑制作用; ii)PC到OB的激发通常要强于OB到PC的激发,iii)PC到OB的激发以及与OB的突触前输入相比,PC内的抑制作用都必须相对较强。这些预测在OB–PC路径的尖峰神经网络模型中得到了验证,该模型满足了我们实验数据的许多限制。我们发现,当违反派生关系时,峰值统计不再满足数据约束。原则上,该建模框架可以适用于其他系统,并用于调查除网络连接强度以外的其他神经属性之间的关系。因此,这项工作可以作为进一步研究感觉处理过程中不同区域内和不同区域内各种神经属性之间关系的指南。

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