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整合神经元活动、脑电图、功能磁共振成像和新陈代谢的生物物理模型。

Biophysical model for integrating neuronal activity, EEG, fMRI and metabolism.

作者信息

Sotero Roberto C, Trujillo-Barreto Nelson J

机构信息

Brain Dynamics Department, Cuban Neuroscience Center, Avenue 25, Esq 158, #15202, PO Box 6412, 6414, Cubanacán, Playa, Havana, Cuba.

出版信息

Neuroimage. 2008 Jan 1;39(1):290-309. doi: 10.1016/j.neuroimage.2007.08.001. Epub 2007 Aug 16.

Abstract

Our goal is to model the coupling between neuronal activity, cerebral metabolic rates of glucose and oxygen consumption, cerebral blood flow (CBF), electroencephalography (EEG) and blood oxygenation level-dependent (BOLD) responses. In order to accomplish this, two previous models are coupled: a metabolic/hemodynamic model (MHM) for a voxel, linking BOLD signals and neuronal activity, and a neural mass model describing the neuronal dynamics within a voxel and its interactions with voxels of the same area (short-range interactions) and other areas (long-range interactions). For coupling both models, we take as the input to the BOLD model, the number of active synapses within the voxel, that is, the average number of synapses that will receive an action potential within the time unit. This is obtained by considering the action potentials transmitted between neuronal populations within the voxel, as well as those arriving from other voxels. Simulations are carried out for testing the integrated model. Results show that realistic evoked potentials (EP) at electrodes on the scalp surface and the corresponding BOLD signals for each voxel are produced by the model. In another simulation, the alpha rhythm was reproduced and reasonable similarities with experimental data were obtained when calculating correlations between BOLD signals and the alpha power curve. The origin of negative BOLD responses and the characteristics of EEG, PET and BOLD signals in Alzheimer's disease were also studied.

摘要

我们的目标是建立神经元活动、大脑葡萄糖代谢率、氧气消耗、脑血流量(CBF)、脑电图(EEG)和血氧水平依赖(BOLD)反应之间的耦合模型。为了实现这一目标,我们将两个先前的模型进行了耦合:一个用于体素的代谢/血液动力学模型(MHM),它将BOLD信号与神经元活动联系起来;另一个是神经团块模型,描述了体素内的神经元动力学及其与同一区域(短程相互作用)和其他区域(长程相互作用)的体素之间的相互作用。为了耦合这两个模型,我们将体素内活跃突触的数量作为BOLD模型的输入,即单位时间内将接收动作电位的突触平均数量。这是通过考虑体素内神经元群体之间传递的动作电位以及来自其他体素的动作电位来获得的。我们进行了模拟以测试集成模型。结果表明,该模型产生了头皮表面电极上逼真的诱发电位(EP)以及每个体素相应的BOLD信号。在另一个模拟中,当计算BOLD信号与阿尔法功率曲线之间的相关性时,该模型重现了阿尔法节律并获得了与实验数据合理的相似性。我们还研究了阿尔茨海默病中负性BOLD反应的起源以及EEG、PET和BOLD信号的特征。

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