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Interaction of Cellular and Network Mechanisms in Spatiotemporal Pattern Formation in Neuronal Networks

机译:神经网络中时空模式形成中细胞和网络机制的相互作用

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摘要

Spatiotemporal patterning of neuronal activity is considered to be an important feature of cognitive processing in the brain as well as pathological brain states, such as seizures. Here, we investigate complex interactions between intrinsic properties of neurons and network structure in the generation of network spatiotemporal patterning in the context of seizure-like synchrony. We show that membrane excitability properties have differential effects on network activity patterning for different network topologies. We consider excitatory networks consisting of neurons with excitability properties varying between type I and type II that exhibit significantly different spike frequency responses to external current stimulation, especially at firing threshold. We find that networks with type II-like neurons show higher synchronization and bursting capacity across a range of network topologies than corresponding networks with type I-like neurons. These differences in activity patterning are persistent across different network sizes, connectivity strengths, magnitudes of random external input, and the addition of inhibitory interneurons to the network, making them highly likely to be relevant to brain function. Furthermore, we show that heterogeneous networks of mixed cell types show emergent dynamical patterns even for very low mixing ratios. Specifically, the addition of a small percentage of type II-like cells into a network of type I-like cells can markedly change the patterning of network activity. These findings suggest that cellular as well as network mechanisms can go hand in hand, leading to the generation of seizure-like discharges, suggesting that a single ictogenic mechanism alone may not be responsible for seizure generation.
机译:神经元活动的时空模式被认为是大脑以及诸如癫痫发作之类的病理性脑部状态中认知加工的重要特征。在这里,我们研究癫痫样同步的背景下网络时空模式的生成中神经元的内在特性与网络结构之间的复杂相互作用。我们表明,膜的兴奋性特性对不同网络拓扑的网络活动模式具有不同的影响。我们考虑由神经元组成的兴奋性网络,其中神经元的兴奋性在I型和II型之间变化,这些神经元对外部电流刺激(特别是在触发阈值时)表现出明显不同的尖峰频率响应。我们发现,与具有I型神经元的相应网络相比,具有II型神经元的网络在一系列网络拓扑中显示出更高的同步性和突发容量。活动模式的这些差异在不同的网络规模,连接强度,随机外部输入的大小以及向网络中添加抑制性中间神经元的过程中持续存在,从而使其很可能与大脑功能有关。此外,我们表明,即使对于非常低的混合比,混合细胞类型的异构网络也显示出动态模式。具体而言,将少量的类II型细胞添加到类I型细胞的网络中可以显着改变网络活动的模式。这些发现表明,细胞机制和网络机制可以并驾齐驱,从而导致癫痫样放电的产生,这表明单独的致癌机制可能并不与癫痫发作的产​​生有关。

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