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人类伸手准备过程中额顶网络的脑电图动态变化

EEG dynamics of the frontoparietal network during reaching preparation in humans.

作者信息

Naranjo J R, Brovelli A, Longo R, Budai R, Kristeva R, Battaglini P P

机构信息

Cognitive Neuroscience Sector, International School for Advanced Studies (SISSA), Trieste, Italy.

出版信息

Neuroimage. 2007 Feb 15;34(4):1673-82. doi: 10.1016/j.neuroimage.2006.07.049. Epub 2006 Dec 27.

Abstract

Visuomotor transformation processes are essential when accurate reaching movements towards a visual target have to be performed. In contrast, those transformations are not needed for similar, but non-visually guided, arm movements. According to previous studies, these transformations are carried out by neuronal populations located in the parietal and frontal cortical areas (the so-called "dorsal visual stream"). However, it is still debated whether these processes are mediated by the sequential and/or parallel activation of the frontoparietal areas. To investigate this issue, we designed a task where the same visual cue could represent either the target of a reaching/pointing movement or the go-signal for a similar but non-targeting arm movement. By subtracting the event-related potentials (ERPs) recorded from healthy subjects performing the two conditions, we identified the brain processes underlying the visuomotor transformations needed for accurate reaching/pointing movements. We then localized the generators by means of cortical current density (CCD) reconstruction and studied their dynamics from visual cue presentation to movement onset. The results showed simultaneous activation of the parietal and frontal areas from 140 to 260 ms. The results are interpreted as neural correlates of two critical phases of visuomotor integration, namely target selection and movement selection. Our findings suggest that the visuomotor transformation processes required for correct reaching/pointing movements do not rely on a purely sequential activation of the frontoparietal areas, but mainly on a parallel information processing system, where feedback circuits play an important role before movement onset.

摘要

当必须朝着视觉目标执行精确的伸手动作时,视觉运动转换过程至关重要。相比之下,对于类似的但非视觉引导的手臂动作,则不需要这些转换。根据先前的研究,这些转换由位于顶叶和额叶皮质区域(即所谓的“背侧视觉通路”)的神经元群来执行。然而,这些过程是否由额顶叶区域的顺序和/或并行激活介导,仍存在争议。为了研究这个问题,我们设计了一个任务,其中相同的视觉线索既可以代表伸手/指向动作的目标,也可以代表类似但非目标指向的手臂动作的启动信号。通过减去在执行这两种条件的健康受试者身上记录的事件相关电位(ERP),我们确定了精确伸手/指向动作所需的视觉运动转换背后的大脑过程。然后,我们通过皮质电流密度(CCD)重建来定位发生器,并研究从视觉线索呈现到动作开始期间它们的动态变化。结果显示,在140至260毫秒期间,顶叶和额叶区域同时被激活。这些结果被解释为视觉运动整合两个关键阶段的神经关联,即目标选择和动作选择。我们的研究结果表明,正确的伸手/指向动作所需的视觉运动转换过程并不依赖于额顶叶区域的纯粹顺序激活,而是主要依赖于并行信息处理系统,其中反馈回路在动作开始前起着重要作用。

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