Faculty of Physics, University of Warsaw, Pasteura 5, 02-093 Warsaw, Poland.
J Neural Eng. 2017 Dec;14(6):066002. doi: 10.1088/1741-2552/aa836f.
Steady-state evoked potentials (SSEPs), the brain responses to repetitive stimulation, are commonly used in both clinical practice and scientific research. Particular brain mechanisms underlying SSEPs in different modalities (i.e. visual, auditory and tactile) are very complex and still not completely understood. Each response has distinct resonant frequencies and exhibits a particular brain topography. Moreover, the topography can be frequency-dependent, as in case of auditory potentials. However, to study each modality separately and also to investigate multisensory interactions through multimodal experiments, a proper experimental setup appears to be of critical importance. The aim of this study was to design and evaluate a novel SSEP experimental setup providing a repetitive stimulation in three different modalities (visual, tactile and auditory) with a precise control of stimuli parameters. Results from a pilot study with a stimulation in a particular modality and in two modalities simultaneously prove the feasibility of the device to study SSEP phenomenon.
We developed a setup of three separate stimulators that allows for a precise generation of repetitive stimuli. Besides sequential stimulation in a particular modality, parallel stimulation in up to three different modalities can be delivered. Stimulus in each modality is characterized by a stimulation frequency and a waveform (sine or square wave). We also present a novel methodology for the analysis of SSEPs.
Apart from constructing the experimental setup, we conducted a pilot study with both sequential and simultaneous stimulation paradigms. EEG signals recorded during this study were analyzed with advanced methodology based on spatial filtering and adaptive approximation, followed by statistical evaluation.
We developed a novel experimental setup for performing SSEP experiments. In this sense our study continues the ongoing research in this field. On the other hand, the described setup along with the presented methodology is a considerable improvement and an extension of methods constituting the state-of-the-art in the related field. Device flexibility both with developed analysis methodology can lead to further development of diagnostic methods and provide deeper insight into information processing in the human brain.
稳态诱发电位(SSEP)是大脑对重复刺激的反应,常用于临床实践和科学研究。不同模式(即视觉、听觉和触觉)下 SSEP 的特定大脑机制非常复杂,仍不完全清楚。每种反应都有独特的共振频率,并表现出特定的大脑地形图。此外,地形图可能依赖于频率,如听觉电位。然而,为了分别研究每种模式,以及通过多模态实验研究多感觉相互作用,适当的实验设置似乎至关重要。本研究的目的是设计和评估一种新的 SSEP 实验设置,该设置可在三种不同模式(视觉、触觉和听觉)下提供重复刺激,并精确控制刺激参数。在特定模式和两种模式同时刺激的初步研究中,该设备用于研究 SSEP 现象的可行性得到了证明。
我们开发了一种由三个独立刺激器组成的装置,可精确产生重复刺激。除了特定模式的顺序刺激外,还可以提供多达三种不同模式的并行刺激。每种模式的刺激都具有刺激频率和波形(正弦波或方波)。我们还提出了一种新的 SSEP 分析方法。
除了构建实验设置外,我们还进行了一项初步研究,包括顺序和同时刺激范式。在这项研究中记录的 EEG 信号采用基于空间滤波和自适应逼近的先进方法进行分析,然后进行统计评估。
我们开发了一种用于执行 SSEP 实验的新型实验设置。从这个意义上说,我们的研究延续了该领域正在进行的研究。另一方面,所描述的设置以及所提出的方法是对构成相关领域现有技术的方法的重大改进和扩展。该设备的灵活性以及所开发的分析方法可以进一步开发诊断方法,并深入了解人类大脑的信息处理。