大脑皮层表面癫痫扩散的计算模型。

IF 1.5 4区 医学 Q3 MATHEMATICAL & COMPUTATIONAL BIOLOGY Journal of Computational Neuroscience Pub Date : 2022-02-01 Epub Date: 2021-10-23 DOI:10.1007/s10827-021-00802-8
Viktor Sip, Maxime Guye, Fabrice Bartolomei, Viktor Jirsa
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引用次数: 2

摘要

在计算癫痫领域,神经场模型有助于理解癫痫发作动力学的一些大规模特征。然而,这些见解仍然停留在一般水平上,没有通过具有患者特定结构的个性化模型转化为临床环境。特别是,在皮层表面扩散的癫痫发作与在颅内电信号上看到的所谓的θ - α活动(TAA)模式之间存在联系,但这种联系并未在患者特异性水平上得到证实。在这里,我们提出了一个单个患者的计算研究,将癫痫发作蔓延到患者特定的皮质表面与患者记录的TAA模式的特定实例联系起来。利用真实的皮质表面几何图形,我们在虚拟脑平台上进行了癫痫发作动态模拟,结果表明模拟的电信号与记录的信号在质量上一致。此外,与在替代表面上进行的模拟比较表明,对真实表面进行了最佳的定量拟合。这项工作说明了如何在虚拟大脑中利用患者特定的皮质几何形状进行个性化模型构建,以及这种方法的重要性。
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Computational modeling of seizure spread on a cortical surface.

In the field of computational epilepsy, neural field models helped to understand some large-scale features of seizure dynamics. These insights however remain on general levels, without translation to the clinical settings via personalization of the model with the patient-specific structure. In particular, a link was suggested between epileptic seizures spreading across the cortical surface and the so-called theta-alpha activity (TAA) pattern seen on intracranial electrographic signals, yet this link was not demonstrated on a patient-specific level. Here we present a single patient computational study linking the seizure spreading across the patient-specific cortical surface with a specific instance of the TAA pattern recorded in the patient. Using the realistic geometry of the cortical surface we perform the simulations of seizure dynamics in The Virtual Brain platform, and we show that the simulated electrographic signals qualitatively agree with the recorded signals. Furthermore, the comparison with the simulations performed on surrogate surfaces reveals that the best quantitative fit is obtained for the real surface. The work illustrates how the patient-specific cortical geometry can be utilized in The Virtual Brain for personalized model building, and the importance of such approach.

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来源期刊
CiteScore
2.00
自引率
8.30%
发文量
32
审稿时长
3 months
期刊介绍: The Journal of Computational Neuroscience provides a forum for papers that fit the interface between computational and experimental work in the neurosciences. The Journal of Computational Neuroscience publishes full length original papers, rapid communications and review articles describing theoretical and experimental work relevant to computations in the brain and nervous system. Papers that combine theoretical and experimental work are especially encouraged. Primarily theoretical papers should deal with issues of obvious relevance to biological nervous systems. Experimental papers should have implications for the computational function of the nervous system, and may report results using any of a variety of approaches including anatomy, electrophysiology, biophysics, imaging, and molecular biology. Papers investigating the physiological mechanisms underlying pathologies of the nervous system, or papers that report novel technologies of interest to researchers in computational neuroscience, including advances in neural data analysis methods yielding insights into the function of the nervous system, are also welcomed (in this case, methodological papers should include an application of the new method, exemplifying the insights that it yields).It is anticipated that all levels of analysis from cognitive to cellular will be represented in the Journal of Computational Neuroscience.
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