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Cortical sources of ERP in prosaccade and antisaccade eye movements using realistic source models

机译:使用现实的源模型在前后眼运动中的ERP皮质源

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摘要

The cortical sources of event-related-potentials (ERP) using realistic source models were examined in a prosaccade and antisaccade procedure. College-age participants were presented with a preparatory interval and a target that indicated the direction of the eye movement that was to be made. In some blocks a cue was given in the peripheral location where the target was to be presented and in other blocks no cue was given. In Experiment 1 the prosaccade and antisaccade trials were presented randomly within a block; in Experiment 2 procedures were compared in which either prosaccade and antisaccade trials were mixed in the same block, or trials were presented in separate blocks with only one type of eye movement. There was a central negative slow wave occurring prior to the target, a slow positive wave over the parietal scalp prior to the saccade, and a parietal spike potential immediately prior to saccade onset. Cortical source analysis of these ERP components showed a common set of sources in the ventral anterior cingulate and orbital frontal gyrus for the presaccadic positive slow wave and the spike potential. In Experiment 2 the same cued- and non-cued blocks were used, but prosaccade and antisaccade trials were presented in separate blocks. This resulted in a smaller difference in reaction time between prosaccade and antisaccade trials. Unlike the first experiment, the central negative slow wave was larger on antisaccade than on prosaccade trials, and this effect on the ERP component had its cortical source primarily in the parietal and mid-central cortical areas contralateral to the direction of the eye movement. These results suggest that blocked prosaccade and antisaccade trials results in preparatory or set effects that decreases reaction time, eliminates some cueing effects, and is based on contralateral parietal-central brain areas.
机译:使用逼真的源模型对事件相关电位(ERP)的皮质源进行了扫盲和反扫视程序检查。向大学生提供了准备间隔和一个目标,该目标指示了要进行的眼球运动的方向。在某些方块中,在要显示目标的外围位置给出了提示,而在其他方块中,没有给出提示。在实验1中,prosaccade和antisaccade试验是在一个区块内随机进行的;在实验2中,比较了Prosaccade试验和Antisaccade试验在同一区块中混合使用,或仅在一种类型的眼动情况下在单独的区块中进行的试验。在靶之前有中央负慢波发生,扫视之前壁顶头有慢正波,扫视开始之前有顶突电位。对这些ERP组件的皮质来源分析显示,腹侧前扣带和眶额回中有常见的来源,用于声带前正慢波和突波电位。在实验2中,使用了相同的提示框和非提示框,但是在单独的框中分别进行了扫视和反扫视试验。这导致前扫视和反扫视试验之间反应时间的差异较小。与第一个实验不同,中央扫视慢波在扫视试验中要比在扫视试验中大,这种对ERP成分的影响主要是在与眼球运动方向相反的顶叶和中中皮质区域产生的。这些结果表明,封闭的扫盲和反扫盲试验会导致准备或固定效果,从而减少反应时间,消除某些提示效果,并且基于对侧顶中脑区域。

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