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Network Activity Due to Topographic Organization of Schaffer Collaterals in a Large-Scale Model of Rat CA1

机译:网络活动归因于大鼠CA1大规模模型中Schaffer侧支的地形组织。

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Connectivity between neural regions, particularly in the hippocampus, is seldom all-to-all or random, yet it is the predominant method by which connectivity is implemented in most models of neuronal networks. We have been developing a computational platform for simulating the trisynaptic circuit of rat hippocampus with which we have constructed a large-scale, biologically-realistic, spiking neuronal network model of the entorhinal-dentate-CA3 system. Using the model, we had demonstrated a non-trivial effect of topographic connectivity on network dynamics and function. In this work, we detail the introduction of the CA1 subregion to the large-scale model. Using anatomical data, we constrained the distribution of axon collaterals, i.e., Schaffer collaterals, projected from CA3 to CA1 and preserved the topographic organization of the projections. Using a simplified multi-compartmental model of CA1 pyramidal cells and a single compartment model of CA1 parvalbumin basket cells, that were connected with disynaptic feedforward inhibition and feedback inhibition, we demonstrate the network activity of the CA1 network given a topographic organization of Schaffer collaterals. From this introduction of CA1 to the large-scale model, we can then observe the successive transformation of spatio-temporal, spiking neural activity as it propagates through the trisynaptic circuit.
机译:神经区域之间,尤其是海马区域之间的连通性很少是全部或随机的,但这是在大多数神经元网络模型中实现连通性的主要方法。我们已经在开发一个用于模拟大鼠海马三突触回路的计算平台,借助该平台我们已构建了一个内嗅齿CA3系统的大规模,生物逼真,尖峰的神经元网络模型。使用该模型,我们证明了地形连接对网络动力学和功能的重要影响。在这项工作中,我们详细介绍了将CA1子区域引入大型模型。使用解剖数据,我们限制了从CA3投影到CA1的轴突侧支(即Schaffer侧支)的分布,并保留了投影的地形组织。使用CA1锥体细胞的简化的多室模型和CA1小白蛋白篮子细胞的单室模型,并与突触前馈抑制和反馈抑制相联系,我们证明了给定Schaffer侧支的地形组织的CA1网络的网络活动。通过将CA1引入大规模模型,我们可以观察到时空,尖峰神经活动在三突触回路中传播时的连续变换。

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