Neurological Clinic, University Freiburg, Freiburg, Germany.
J Neurophysiol. 2013 Mar;109(6):1579-88. doi: 10.1152/jn.00187.2012. Epub 2012 Dec 19.
Isometric compensation of predictably frequency-modulated low forces is associated with corticomuscular coherence (CMC) in beta and low gamma range. It remains unclear how the CMC is influenced by unpredictably modulated forces, which create a mismatch between expected and actual sensory feedback. We recorded electroencephalography from the contralateral hand motor area, electromyography (EMG), and the motor performance of 16 subjects during a visuomotor task in which they had to isometrically compensate target forces at 8% of the maximum voluntary contraction with their right index finger. The modulated forces were presented with predictable or unpredictable frequencies. We calculated the CMC, the cortical motor alpha-, beta-, and gamma-range spectral powers (SP), and the task-related desynchronization (TRD), as well as the EMG SP and the performance. We found that in the unpredictable condition the CMC was significantly lower and associated with lower cortical motor SP, stronger TRD, higher EMG SP, and worse performance. The findings suggest that due to the mismatch between predicted and actual sensory feedback leading to higher computational load and less stationary motor state, the unpredictable modulation of the force leads to a decrease in corticospinal synchrony, an increase in cortical and muscle activation, and a worse performance.
可预测频率调制的低力等距补偿与β和低γ频段的皮质肌相干性(CMC)有关。目前尚不清楚 CMC 如何受到不可预测调制力的影响,这些力会导致预期和实际感觉反馈之间不匹配。我们在一项视觉运动任务中记录了 16 名受试者的对侧手部运动区的脑电图、肌电图(EMG)和运动表现,他们需要用右手食指等距补偿最大自主收缩的 8%的目标力。调制力以可预测或不可预测的频率呈现。我们计算了 CMC、皮质运动的α、β和γ频带的光谱功率(SP)以及与任务相关的去同步(TRD),以及 EMG SP 和表现。我们发现,在不可预测的情况下,CMC 显著降低,与皮质运动 SP 降低、TRD 增强、EMG SP 升高和表现更差有关。研究结果表明,由于预测和实际感觉反馈之间的不匹配导致计算负荷增加和运动状态不稳定,力的不可预测调制会导致皮质脊髓同步性降低、皮质和肌肉激活增加以及表现更差。