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A Mean Field Model of Acute Hepatic Encephalopathy

机译:急性肝性脑病的平均视野模型

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Acute hepatic encephalopathy (AHE) is a common form of delirium, a state of confusion, impaired attention, and decreased arousal due to acute liver failure. However, the neurophysiological mechanisms underlying AHE are poorly understood. In order to develop hypotheses for mechanisms of AHE, our work builds on an existing neural mean field model for similar EEG patterns in cerebral anoxia, the bursting Liley model. The model proposes that generalized periodic discharges, similar to the triphasic waves (TPWs) seen in severe AHE, arise through three types of processes a) increased neuronal excitability; b) defective brain energy metabolism leading to impaired synaptic transmission; c) and enhanced postsynaptic inhibition mediated by increased GABA-ergic and glycinergic transmission. We relate the model parameters to human EEG data using a particle-filter based optimization method that matches the TPW inter-event-interval distribution of the model with that observed in patients EEGs. In this way our model relates microscopic mechanisms to EEG patterns. Our model represents a starting point for exploring the underlying mechanisms of brain dynamics in delirium.
机译:急性肝性脑病(AHE)是del妄的一种常见形式,是一种混乱状态,注意力不集中以及由于急性肝衰竭引起的觉醒减少。但是,对AHE的神经生理机制了解甚少。为了提出有关AHE机理的假设,我们的工作建立在现有的神经均场模型上,即脑缺氧中类似的EEG模式,即爆发性Liley模型。该模型建议通过三种类型的过程产生类似于严重AHE中出现的三相波(TPW)的广义周期性放电。 b)脑能量代谢缺陷导致突触传递受损; c)由增加的GABA能和甘氨酸能传递介导的突触后抑制作用增强。我们使用基于粒子过滤器的优化方法将模型参数与人脑电图数据相关联,该方法将模型的TPW事件间间隔与患者脑电图中观察到的相匹配。通过这种方式,我们的模型将微观机制与EEG模式相关联。我们的模型代表了探索exploring妄的大脑动力学潜在机制的起点。

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