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首页> 外文期刊>Journal of Neurophysiology >Progressive alignment of inhibitory and excitatory delay may drive a rapid developmental switch in cortical network dynamics
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Progressive alignment of inhibitory and excitatory delay may drive a rapid developmental switch in cortical network dynamics

机译:抑制和兴奋性延迟的逐步对准可能会在皮质网络动态中驱动快速发展开关

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Nervous system maturation occurs on multiple levels-synaptic, circuit, and network-at divergent timescales. For example. many synaptic properties mature gradually. whereas emergent network dynamics can change abruptly. Here we combine experimental and theoretical approaches to investigate a sudden transition in spontaneous and sensory evoked thalamocortical activity necessary for the development of vision. Inspired by in vivo measurements of timescales and amplitudes of synaptic currents. we extend the Wilson and Cowan model to take into account the relative onset timing and amplitudes of inhibitory and excitatory neural population responses. We study this system as these parameters are varied within amplitudes and timescales consistent with developmental observations to identify the bifurcations of the dynamics that might explain the network behaviors in vivo. Our findings indicate that the inhibitory timing is a critical determinant of thalamocortical activity maturation; a gradual decay of the ratio of inhibitory to excitatory onset time drives the system through a bifurcation that leads to a sudden switch of the network spontaneous activity from high-amplitude oscillations to a nonoscillatory active state. This switch also drives a change from a threshold bursting to linear response to transient stimuli, also consistent with in vivo observation. Thus we show that inhibitory timing is likely critical to the development of network dynamics and may underlie rapid changes in activity without similarly rapid changes in the underlying synaptic and cellular parameters.
机译:神经系统成熟发生在多个级别 - 突触,电路和网络 - 处于不同的时间尺寸。例如。许多突触特性逐渐成熟。虽然紧急网络动态可以突然变化。在这里,我们将实验和理论方法结合起来调查自发和感官中突然过渡的诱发脑电图所需的脑电图活动。灵感在体内测量时间表和突触电流的振幅的启发。我们扩展了威尔逊和杨和杨模型,以考虑相对发病的时序和抑制性神经群体响应的巨大。我们研究该系统,因为这些参数在幅度和时间尺寸内变化,与发育观察一致,以确定可能解释体内网络行为的动态的分叉。我们的研究结果表明,抑制正时是脑皮质活性成熟的关键决定因素;逐渐衰减抑制与兴奋性起始时间的比率通过分叉驱动系统,该分叉导致网络自发性活动从高幅度振荡到非张敏状态的突然切换。该开关还驱动从阈值突发到线性响应到瞬态刺激的变化,也一致地与体内观察一致。因此,我们表明抑制时间可能对网络动态的发展至关重要,并且可能在没有潜在的突触和蜂窝参数的情况下的同样快速变化的活动变化。

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