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Closed-loop feedback control and bifurcation analysis of epileptiform activity via optogenetic stimulation in a mathematical model of human cortex

机译:在人类皮层数学模型中通过光遗传学刺激对癫痫样活动进行闭环反馈控制和分叉分析

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摘要

Optogenetics provides a method of neuron stimulation that has high spatial, temporal, and cell-type specificity. Here we present a model of optogenetic feedback control that targets the inhibitory population, which expresses light-sensitive channelrhodopsin-2 channels, in a mean-field model of undifferentiated cortex that is driven to seizures. The inhibitory population is illuminated with an intensity that is a function of electrode measurements obtained via the cortical model. We test the efficacy of this control method on seizurelike activity observed in two parameter spaces of the cortical model that most closely correspond to seizures observed in patients. We also compare the effect of closed-loop and open-loop control on seizurelike activity using a less-complicated ordinary differential equation model of the undifferentiated cortex in parameter space. Seizurelike activity is successfully suppressed in both parameter planes using optimal illumination intensities less likely to have adverse effects on cortical tissue.
机译:光遗传学提供了一种具有高空间,时间和细胞类型特异性的神经元刺激方法。在这里,我们介绍了一种光遗传反馈控制模型,该模型以抑制未分化皮层的平均视野模型中的抑制种群为目标,该抑制种群表达光敏感的通道视紫红质2通道,从而导致癫痫发作。抑制种群的强度与通过皮层模型获得的电极测量值有关。我们测试此控制方法对在与患者中观察到的癫痫发作最接近对应的皮质模型的两个参数空间中观察到的癫痫样活动的功效。我们还使用参数空间中未分化皮质的较不复杂的常微分方程模型比较了闭环和开环控制对癫痫样活动的影响。使用不太可能对皮质组织产生不利影响的最佳照明强度,可以在两个参数平面中成功抑制癫痫样活动。

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