深部脑刺激如何影响脑磁图数据?

Vamsi Vijay Mohan Dattada, Sreedevi Sasidharan, A. Højlund, K. S. Sridharan
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引用次数: 1

摘要

脑深部刺激(DBS)是一种成熟有效的神经调节技术,可用于治疗多种神经和神经精神疾病,如帕金森病(PD)、癫痫、强迫症、抑郁症等。脑磁图(MEG)是临床队列中广泛使用的神经影像学策略,用于了解DBS的病理和治疗效果。其中一个重要的限制是无法区分DBS刺激伪影与实际的神经元兴奋,特别是在低频段,DBS伪影的次谐波可能会模糊生物反应,并且是一个混杂因素。本研究的主要目的是了解DBS刺激伪影如何影响MEG信号,为此,我们采用了基于西瓜的幻像。利用该模型,我们记录了在不同DBS频率和刺激电压下DBS刺激伪影的频谱特征,以及时空信号空间分离(tSSS)等标准伪影抑制方法的影响。本文给出了初步分析的结果。
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How Does Deep Brain Stimulation Affect Magnetoencephalography Data?
Deep Brain Stimulation (DBS) is an established and effective neuromodulation technique preferred in treating several neurological and neuropsychiatric disorders such as Parkinson’s Disease(PD), epilepsy, obsessive compulsive disorder, depression and several such disorders. Magnetoencephalography (MEG) is a widely used neuroimaging strategy to understand the pathology and the therapeutic effects of DBS in clinical cohorts. One of the significant limitations is the inability to differentiate the DBS stimulation artefact from actual neuronal excitations, especially in lower frequency bands of interest where sub-harmonics of DBS artefacts may obscure the biological response and is a confounder. The primary objective of this study is to understand how DBS stimulation artefacts affect MEG signals and to this end, we employ a phantom based on a water melon. Using this phantom, we record the spectral signature of the DBS stimulation artefact at various DBS frequencies and stimulation voltages, the effect of standard artefact rejection approaches like spatiotemporal signal space separation (tSSS). We present in this paper the results of the initial analysis.
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