Gonzalez Andino Sara L, Murray Micah M, Foxe John J, de Peralta Menendez Rolando Grave
Electrical Neuroimaging Group, Functional Brain Mapping Laboratory, University Hospital of Geneva, 24 Rue Micheli du Crest, 1211, Geneva, Switzerland.
Exp Brain Res. 2005 Oct;166(3-4):298-304. doi: 10.1007/s00221-005-2371-1. Epub 2005 Aug 3.
This study details a method to statistically determine, on a millisecond scale and for individual subjects, those brain areas whose activity differs between experimental conditions, using single-trial scalp-recorded EEG data. To do this, we non-invasively estimated local field potentials (LFPs) using the ELECTRA distributed inverse solution and applied non-parametric statistical tests at each brain voxel and for each time point. This yields a spatio-temporal activation pattern of differential brain responses. The method is illustrated here in the analysis of auditory-somatosensory (AS) multisensory interactions in four subjects. Differential multisensory responses were temporally and spatially consistent across individuals, with onset at approximately 50 ms and superposition within areas of the posterior superior temporal cortex that have traditionally been considered auditory in their function. The close agreement of these results with previous investigations of AS multisensory interactions suggests that the present approach constitutes a reliable method for studying multisensory processing with the temporal and spatial resolution required to elucidate several existing questions in this field. In particular, the present analyses permit a more direct comparison between human and animal studies of multisensory interactions and can be extended to examine correlation between electrophysiological phenomena and behavior.
本研究详细介绍了一种方法,该方法利用单次试验头皮记录的脑电图(EEG)数据,在毫秒尺度上针对个体受试者统计确定那些在实验条件之间活动存在差异的脑区。为此,我们使用ELECTRA分布式逆解非侵入性地估计局部场电位(LFP),并在每个脑体素和每个时间点应用非参数统计检验。这产生了脑差异反应的时空激活模式。本文在对四名受试者的听觉 - 体感(AS)多感官相互作用分析中展示了该方法。不同受试者之间的多感官差异反应在时间和空间上具有一致性,起始时间约为50毫秒,且在传统上被认为具有听觉功能的后颞上回区域内叠加。这些结果与先前对AS多感官相互作用的研究结果高度一致,表明本方法构成了一种可靠的方法,可用于以阐明该领域若干现有问题所需的时间和空间分辨率来研究多感官处理。特别是,本分析允许在人类和动物多感官相互作用研究之间进行更直接的比较,并且可以扩展到检查电生理现象与行为之间的相关性。