Rueda-Delgado L M, Solesio-Jofre E, Mantini D, Dupont P, Daffertshofer A, Swinnen S P
KU Leuven, Movement Control and Neuroplasticity Research Group, Group Biomedical Sciences, Tervuurse Vest 101, 3001 Leuven, Belgium.
KU Leuven, Movement Control and Neuroplasticity Research Group, Group Biomedical Sciences, Tervuurse Vest 101, 3001 Leuven, Belgium; Department of Basic Psychology, University Autónoma of Madrid, 6 Ivan P. Pavlov, 28049, Madrid, Spain.
Neuroimage. 2017 Feb 1;146:883-893. doi: 10.1016/j.neuroimage.2016.10.030. Epub 2016 Oct 19.
The neural network and the task-dependence of (local) activity changes involved in bimanual coordination are well documented. However, much less is known about the functional connectivity within this neural network and its modulation according to manipulations of task complexity. Here, we assessed neural activity via high-density electroencephalography, focussing on changes of activity in the beta frequency band (~15-30Hz) across the motor network in 26 young adult participants (19-29 years old). We investigated how network connectivity was modulated with task difficulty and errors of performance during a bimanual visuomotor movement consisting of dial rotation according to three different ratios of speed: an isofrequency movement (1:1), a non-isofrequency movement with the right hand keeping the fast pace (1:3), and the converse ratio with the left hand keeping the fast pace (3:1). To quantify functional coupling, we determined neural synchronization which might be key for the timing of the activity within brain regions during task execution. Individual source activity with realistic head models was reconstructed at seven regions of interest including frontal and parietal areas, among which we estimated phase-based connectivity. Partial least squares analysis revealed a significant modulation of connectivity with task difficulty, and significant correlations between connectivity and errors in performance, in particular between sensorimotor cortices. Our findings suggest that modulation of long-range synchronization is instrumental for coping with increasing task demands in bimanual coordination.
神经网络以及双手协调中所涉及的(局部)活动变化的任务依赖性已有充分记录。然而,对于该神经网络内的功能连接及其根据任务复杂性操作的调制情况,我们了解得要少得多。在此,我们通过高密度脑电图评估神经活动,重点关注26名年轻成年参与者(19 - 29岁)运动网络中β频段(约15 - 30Hz)的活动变化。我们研究了在由按三种不同速度比进行转盘旋转组成的双手视觉运动任务中,网络连接如何随任务难度和表现错误而调制:等频率运动(1:1)、右手保持快节奏的非等频率运动(1:3)以及左手保持快节奏的相反比例(3:1)。为了量化功能耦合,我们确定了神经同步,这可能是任务执行期间脑区内活动定时的关键。利用真实头部模型在包括额叶和顶叶区域在内的七个感兴趣区域重建个体源活动,我们在这些区域中估计基于相位的连接性。偏最小二乘分析揭示了连接性随任务难度的显著调制,以及连接性与表现错误之间的显著相关性,特别是在感觉运动皮层之间。我们的研究结果表明,长程同步的调制有助于应对双手协调中不断增加