Department of Nutrition, Exercise and Sports, University of Copenhagen, Copenhagen, Denmark.
Exp Brain Res. 2013 Sep;230(1):101-15. doi: 10.1007/s00221-013-3633-y. Epub 2013 Jul 10.
The underlying neural mechanisms of a perceptual bias for in-phase bimanual coordination movements are not well understood. In the present study, we measured brain activity with functional magnetic resonance imaging in healthy subjects during a task, where subjects performed bimanual index finger adduction-abduction movements symmetrically or in parallel with real-time congruent or incongruent visual feedback of the movements. One network, consisting of bilateral superior and middle frontal gyrus and supplementary motor area (SMA), was more active when subjects performed parallel movements, whereas a different network, involving bilateral dorsal premotor cortex (PMd), primary motor cortex, and SMA, was more active when subjects viewed parallel movements while performing either symmetrical or parallel movements. Correlations between behavioral instability and brain activity were present in right lateral cerebellum during the symmetric movements. These findings suggest the presence of different error-monitoring mechanisms for symmetric and parallel movements. The results indicate that separate areas within PMd and SMA are responsible for both perception and performance of ongoing movements and that the cerebellum supports symmetric movements by monitoring deviations from the stable coordination pattern.
对于同相双手协调运动的知觉偏差的潜在神经机制尚不清楚。在本研究中,我们在健康受试者进行任务时使用功能磁共振成像测量大脑活动,在该任务中,受试者对称地或与运动的实时一致或不一致的视觉反馈平行地执行双手食指内收 - 外展运动。当受试者进行平行运动时,一个由双侧额上回和辅助运动区(SMA)组成的网络更为活跃,而当受试者在执行对称或平行运动时观察平行运动时,涉及双侧背侧运动前皮质(PMd)、初级运动皮质和 SMA 的不同网络更为活跃。在对称运动期间,右侧外侧小脑的脑活动与行为不稳定性之间存在相关性。这些发现表明,对称和平行运动存在不同的错误监测机制。结果表明,PMd 和 SMA 内的单独区域负责正在进行的运动的感知和执行,并且小脑通过监测与稳定协调模式的偏差来支持对称运动。