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Early-Stage Waves in the Retinal Network Emerge Close to a Critical State Transition between Local and Global Functional Connectivity

机译:视网膜网络中的早期浪潮接近于本地和全局功能连接之间的临界状态转换

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摘要

A novel, biophysically realistic model for early-stage, acetylcholine-mediated retinal waves is presented. In this model, neural excitability is regulated through a slow after-hyperpolarization (sAHP) operating on two different temporal scales. As a result, the simulated network exhibits competition between a desynchronizing effect of spontaneous, cell-intrinsic bursts, and the synchronizing effect of synaptic transmission during retinal waves. Cell-intrinsic bursts decouple the retinal network through activation of the sAHP current, and we show that the network is capable of operating at a transition point between purely local and global functional connectedness, which corresponds to a percolation phase transition. Multielectrode array recordings show that, at this point, the properties of retinal waves are reliably predicted by the model. These results indicate that early spontaneous activity in the developing retina is regulated according to a very specific principle, which maximizes randomness and variability in the resulting activity patterns.
机译:提出了一种新颖的,生物物理现实的模型,用于早期乙酰胆碱介导的视网膜波。在该模型中,神经兴奋性通过在两个不同时间尺度上运行的缓慢的超极化后(sAHP)来调节。结果,模拟网络展现出自发的细胞内源性猝发的去同步作用与视网膜波期间突触传递的同步作用之间的竞争。细胞内源性爆发通过激活sAHP电流使视网膜网络解耦,并且我们证明该网络能够在纯本地功能连接和全局功能连接之间的过渡点上运行,这与渗透阶段过渡相对应。多电极阵列记录表明,此时,模型可以可靠地预测视网膜波的属性。这些结果表明,发育中的视网膜的早期自发活动是根据非常具体的原则进行调节的,该原则可以最大程度地提高最终活动模式的随机性和可变性。

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