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Distributed open-loop optogenetic control of cortical epileptiform activity in a Wilson-Cowan network

机译:Wilson-Cowan网络中皮质癫痫样活动的分布式开环光遗传学控制。

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This paper presents a distributed open-loop optogenetic control for suppression of epileptiform activity in a neural population model of cortex. In epilepsy, cortical seizures or epileptiform activities occur when pyramidal cells become hyper-excitable due to the loss of inhibitory interneurons. A straightforward way to suppress these epileptiform activities is to inhibit pyramidal cells by exciting interneurons. Thus, in this paper, the inhibitory neural population is targeted for the application of open-loop optogenetic control. By introducing computational model of the light-gated Channelrhodopsin-2 (ChR2) ion channels into the well-known Wilson-Cowan model, we first establish a neural population model for optogenetic control of cortical dynamics. Then, we investigate the effects of open-loop optogenetic control parameters (irradiance intensity and pulse duration) on the control performance. Finally, we use a spatially distributed control strategy to normalize cortical dynamics with minimum optical stimulations. The simulation results demonstrate the effectiveness of our propose control method for suppression of epileptiform activities.
机译:本文提出了一种分布式开环光遗传学控制,以抑制皮层神经种群模型中的癫痫样活动。在癫痫病中,当锥体细胞由于抑制性中枢神经元的丧失而变得过度兴奋时,就会发生皮质性癫痫发作或癫痫样活动。抑制这些癫痫样活动的直接方法是通过激发中间神经元来抑制锥体细胞。因此,在本文中,抑制性神经群体是开环光遗传学控制应用的目标。通过将光门控通道蛋白2(ChR2)离子通道的计算模型引入著名的Wilson-Cowan模型,我们首先建立了用于光动力学控制皮层动力学的神经种群模型。然后,我们研究了开环光遗传学控制参数(辐照强度和脉冲持续时间)对控制性能的影响。最后,我们使用空间分布的控制策略以最小的光刺激来标准化皮层动力学。仿真结果证明了我们提出的控制方法对抑制癫痫样活动的有效性。

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