Raethjen Jan, Govindan R B, Binder Sabine, Zeuner Kirsten E, Deuschl Günther, Stolze Henning
Department of Neurology, University of Kiel, Schittenhelmstrasse 10, 24105 Kiel, Germany.
Brain Res. 2008 Oct 21;1236:79-84. doi: 10.1016/j.brainres.2008.07.046. Epub 2008 Jul 22.
The cortex is involved in rhythmic hand movements. The cortical contribution to rhythmic motor patterns of the feet, however, has never been evaluated in humans. In this study we investigated EEG activity related to rhythmic stepping and tapping movements in 10 healthy subjects. Subjects performed self-paced fast bilateral anti-phase, in-phase and unilateral rhythmic foot movements as well as an isometric cocontraction of the calf muscles, while being seated as relaxed as possible. Surface EMG from the anterior tibial muscles was recorded in parallel with a 64 channel EEG. Power spectra, corticomuscular coherence and corticomuscular delay were calculated. All subjects showed corticomuscular coherence at the stepping frequencies in the central midline region that extended further to the frontal mesial area. The magnitude and the topography of this coherence were equal for the right and left anterior tibial muscle and all movement conditions. During cocontraction there was coherence in the 15-30 Hz range which was refined to the central midline area. EEG-EMG delays were significant in 9 subjects with values between 14 and 26 ms, EMG-EEG feedback was only found in 6 subjects with delays between 25 and 40 ms. We conclude that rhythmic motor patterns of the feet are represented in the cortex, transmitted to the muscles with delays compatible with fast corticospinal transmission and fed back to the cortex. A similar cortical contribution may be important also for gait control in humans.
大脑皮层参与有节奏的手部运动。然而,大脑皮层对足部有节奏运动模式的作用在人类中从未得到评估。在本研究中,我们调查了10名健康受试者与有节奏的踏步和轻敲运动相关的脑电图(EEG)活动。受试者尽可能放松地坐着,进行自我调节的快速双侧反相、同相和单侧有节奏的足部运动,以及小腿肌肉的等长协同收缩。同时记录胫前肌的表面肌电图(EMG)和64通道脑电图。计算功率谱、皮质-肌肉相干性和皮质-肌肉延迟。所有受试者在中央中线区域的踏步频率处均表现出皮质-肌肉相干性,且该相干性进一步延伸至额叶内侧区域。这种相干性的大小和地形图在左右胫前肌以及所有运动条件下均相等。在协同收缩期间,在15 - 30Hz范围内存在相干性,且该相干性在中央中线区域更为明显。9名受试者的脑电图-肌电图延迟显著,值在14至26毫秒之间,仅6名受试者发现肌电图-脑电图反馈,延迟在25至40毫秒之间。我们得出结论,足部的有节奏运动模式在大脑皮层中有所体现,以与快速皮质脊髓传导相适应的延迟传递至肌肉,并反馈至大脑皮层。类似的皮层作用对人类的步态控制可能也很重要。