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Cortical hot spots and labyrinths: why cortical neuromodulation for episodic migraine with aura should be personalized

机译:皮质热点和迷宫:为什么对具有先兆的发作性偏头痛的皮质神经调节应该个性化

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摘要

Stimulation protocols for medical devices should be rationally designed. For episodic migraine with aura we outline model-based design strategies toward preventive and acute therapies using stereotactic cortical neuromodulation. To this end, we regard a localized spreading depression (SD) wave segment as a central element in migraine pathophysiology. To describe nucleation and propagation features of the SD wave segment, we define the new concepts of cortical hot spots and labyrinths, respectively. In particular, we firstly focus exclusively on curvature-induced dynamical properties by studying a generic reaction-diffusion model of SD on the folded cortical surface. This surface is described with increasing level of details, including finally personalized simulations using patient's magnetic resonance imaging (MRI) scanner readings. At this stage, the only relevant factor that can modulate nucleation and propagation paths is the Gaussian curvature, which has the advantage of being rather readily accessible by MRI. We conclude with discussing further anatomical factors, such as areal, laminar, and cellular heterogeneity, that in addition to and in relation to Gaussian curvature determine the generalized concept of cortical hot spots and labyrinths as target structures for neuromodulation. Our numerical simulations suggest that these target structures are like fingerprints, they are individual features of each migraine sufferer. The goal in the future will be to provide individualized neural tissue simulations. These simulations should predict the clinical data and therefore can also serve as a test bed for exploring stereotactic cortical neuromodulation.
机译:应合理设计医疗器械的刺激方案。对于带有先兆的发作性偏头痛,我们概述了基于模型的设计策略,以使用立体定向皮质神经调节进行预防和急性治疗。为此,我们将局部扩散性抑郁(SD)波段视为偏头痛病理生理学的核心要素。为了描述SD波段的成核和传播特征,我们分别定义了皮质热点和迷宫的新概念。特别是,我们首先通过研究折叠皮质表面上SD的通用反应扩散模型,专门研究曲率引起的动力学特性。越来越详细地描述了此表面,包括最终使用患者的磁共振成像(MRI)扫描仪读数进行个性化模拟。在这一阶段,唯一可以调节成核和传播路径的相关因素是高斯曲率,其优点是可以很容易地通过MRI进行访问。最后,我们讨论了进一步的解剖学因素,例如面积,层流和细胞异质性,这些因素与高斯曲率有关并与之相关,将皮质热点和迷宫的广义概念确定为神经调节的目标结构。我们的数值模拟表明,这些目标结构就像指纹,它们是每位偏头痛患者的独特特征。未来的目标将是提供个性化的神经组织模拟。这些模拟应该可以预测临床数据,因此也可以作为探索立体定向皮质神经调节的试验床。

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