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Adaptive frequency-based modeling of whole-brain oscillations: Predicting regional vulnerability and hazardousness rates

机译:基于自适应频率的全脑振荡建模:预测区域脆弱性和危险率

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摘要

Whole-brain computational modeling based on structural connectivity has shown great promise in successfully simulating fMRI BOLD signals with temporal coactivation patterns that are highly similar to empirical functional connectivity patterns during resting state. Importantly, previous studies have shown that spontaneous fluctuations in coactivation patterns of distributed brain regions have an inherent dynamic nature with regard to the frequency spectrum of intrinsic brain oscillations. In this modeling study, we introduced frequency dynamics into a system of coupled oscillators, where each oscillator represents the local mean-field model of a brain region. We first showed that the collective behavior of interacting oscillators reproduces previously shown features of brain dynamics. Second, we examined the effect of simulated lesions in gray matter by applying an in silico perturbation protocol to the brain model. We present a new approach to map the effects of vulnerability in brain networks and introduce a measure of regional hazardousness based on mapping of the degree of divergence in a feature space.
机译:基于结构连通性的全脑计算模型在成功模拟具有时间共激活模式的fMRI BOLD信号方面显示出了巨大的希望,该信号与静止状态下的经验功能连通性模式高度相似。重要的是,先前的研究表明,就大脑固有振动的频谱而言,分布的大脑区域的共激活模式的自发波动具有固有的动态特性。在此建模研究中,我们将频率动力学引入到耦合振荡器的系统中,其中每个振荡器代表大脑区域的局部平均场模型。我们首先表明相互作用的振荡器的集体行为再现了先前显示的大脑动力学特征。第二,我们通过将计算机微扰方案应用于大脑模型,检查了灰质模拟病变的影响。我们提出了一种在大脑网络中绘制脆弱性影响图的新方法,并基于在特征空间中散度的映射来介绍一种区域危险性度量。

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